Book - Comparative Study of the Sensory Areas of the Human Cortex 2

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Cajal SR. Comparative Study of the Sensory Areas of the Human Cortex (1899)

1899 Human Sensory Cortex: 1. The Visual Cortex | 2. Layer of the Large Stellate Cells | 3. The Sensori-Motor Cortex | Figures | Cajal
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Lecture II. Layer of the Large Stellate Cells

Comparative Study Of The Sensory Areas Of The Human Cortex


By Santiago Ramón y Cajal

1899


Comparative Study of the Sensory Areas of the Human Cortex

  1. LECTURE I. The Visual Cortex
  2. LECTURE II. Layer of the Large Stellate Cells
  3. LECTURE III. The Sensori-Motor Cortex


My recent researches in the visual cortex of man have led to the unexpected discovery of certain large cells of stellate form possessing an axon which descends to the white matter. Figs. 9 and 10 represent very clearly the most common forms of these strange elements. They are differentiated immediately from pyramidal cells by their lack of a radial trimk. Generally speaking, the cell body is stellate, but there is no lack of semilunar, triangular, and even mitral forms. Their dendrites are thick and much branched, and extend in all directions, especially horizontally, without ever leaving the territory of the 4th layer. In man these processes are sparsely provided with contact granules, while they are very numerous in the homologous cells of the mammalia (cat and dog).


As to the axon, it is rather large, arises from the inferior surface of the cell body, descends through the 4th layer, sometimes tracing here accommodation curves, and after crossing the 6th, 6th, 7th and 8th layer, passes into the white matter and is there continued as a medullated nerve fibre. In passing through the 4th and 5th layers it gives off three, four, or a larger number of, often, very large collaterals which end in arborizations extending over a considerable area in these layers. It is not uncommon to see these collaterals taking a recurrent course to become distributed in planes above the point of origin ; but in this they never trespass on the boundaries of the 4th and 5th layers. Finally, and this is a very frequent disposition in the adult cortex, this axon, after having given off its collaterals, becomes notably finer. Taking into consideration its diameter, sometimes less than that of its first collateral, we might be led to mistake it for the latter rather than a true continuation of the axon. We shall return to this peculiarity, which is presented by many cells in the visual cortex. The stellate cells present a similar character in the adult human cortex, and I reproduce in Fig. 10 their principal types impregnated (long method of Golgi) in the case of a man thirty years old. The only difference that we remark between these cells in the adult and infant brain is the greater development of the dendrites, which extend long distances in horizontal planes in the adult. The volume of the soma also increases with age, which shows that growth of dendriU*s does not depend solely on the lengthening out of the initial or primitive protoplasm of the cell, but also on an actual augmentation of cell substance.


Fig. 9. — Layers 4 and 0, with portion of 6 ; t«llat« c«lU of the risoal eortx. Infant 20 day old, ealearina tolcns. A, layer of large etellate celk ; a, emllonar corpoecle ; 6, foiiform borlaontal cell : e, cell with radial trunk ; «. cell with arched axon ; B, layer of small stellate cell ; /, horlaootal fosifonn cells ; g, trlanfcular cells with heary arching collaterals ; C, layer of small pyramlda with arched axon ; h, cells of this type.



Cells with Short Axon. — As it happens in other cortical layers, the 4th contains a large number of cells with short axon. The following three types may be distinguished : —




Fig. 10. —Large stellate cells of the adult brain, man 30 years old, neighborhood of calcarine salens. A,B, C, F, stellate cells of the 4th layer; Z>, E, K, mediom-eized stellate cells of 5th layer; G, IT, J, cells with short axon. (Qolgi's slow method.)


(a) Cells, stellate, fusiform, or triangular, whose axon ascends to be distributed in the superficial plane of the 4th layer (Fig. 11, -4, (7, 2>).


(V) Cells of similar form and position, but whose axon distributes itself to the layer of medium-sized pyramids (Fig. 11, B).


(6) Spider-shaped cells with a notably short axon, as may be seen in Fig. 18, E.




Fig. 11.— Cells of the Tifoal cortex Infaat lA <Ujt old, 4tb layw. J« evil ModlDK i^xoo u» •aperlor ponion of 4th Uyer ; B, cell wIiom axon brmnchM to Um 3d and 4th Uyvn : C. aottther rrll •ondiiix bimncbM Into the 3d, 4th, aad 5lh lajM; M, F, rry tmaU bipanlclod orlU from Uyer of — dJBBwriiad pyimmids;




The cells with ascending axon are remarkable on account of the curious arched course of the latter. It has in some cases initial collaterals.


The stellate cells as well as other cells with the short axon are also found in the cortex of the cat and dog, where they form a well-defined layer of their own, corresponding, considering the character of its elements, to the 4th, 5th, and 6th in the visual cortex of the child, Fig. 12. Cells




Fig. 12.— Stellate cells from visual cortex of a cat aged 28 days. A, layer of stellate cells oorresponding to the 4th and 5th layers in man ; B, layer of giant pyramids ; a, &, e, stellate cells having long descending axons ; d, e, medium-sized pyramids among the stellate cells.


with short ascending axon are especially numerous and are characterized by being fusiform in shape and by the contact granules which cover the cell body and principal dendrites. Besides the existence of cells in the cerebral cortex whose axons ascend, but do not make their way into the first layer as do those from Martinotti's elements, is the fact that I long since discovered while working upon the motor cortex of the small






Visual Cortex. 841


mammals; this is, m my latest observations show, that these elements are very numerous, and that each cortical layer, or better, that each layer of a plexiform aspect, contains a special kind of this element. In addition, as we shall see in a moment, these cells form a constant factor in all the cortical layers in which nerve fibres incoming from the white matter make their terminal arborizations.



Fifth Layer, ob Layer of Small Stkllats Cells.


This layer, which corresponds to the greater part of the stripe of Vicq d*Azyr, when examined in Nissl preparations appears to contain an enormous number of small rounded elements which might be mistaken for scattered nuclei not surrounded by protoplasm. But in these same preparations we may still detect, beside these corpuscles, a few others, scattered here and there, of stellate or triangular form and medium or large size, very similar to the great stellate cells of the 4th layer. 6olgi*s method reveals to us the great complexity of the 5th layer, and by this means we have succeeded in differentiating as many as five kinds of elements. The following are the most common types : —


(a) SuUaU CelU of Medium SiMe. — These are exactly similar to the stellate cells of the 4th layer. They are not numerous, and lie irregularly scattered in all levels of the 6th layer. Their dendrites diverge, but run for the most part horizontally, and do not pass beyond the layer of their cells of origin. Their axons descend and, after emitting a few collaterals to the 5th layer, make their way to the white matter. In some cases their collaterals are given off lower down, in the 6th layer, and then their course is recurrent, because they must make their terminal arborizations between homonymous cells (Fig. 9, ^r,/).


(b) CelU with Aieendinff Aixm. — These are fusiform or triangular, disposed with long axis vertical. Their axon is similar to that of cells of this type in the 4th layer. That is to say, after ascending a certain distance it forms a terminal arborization of arching branches distributed among the elements of the overlying layer. From its initial portion spring a few collaterals which are distributed to the 5th layer (Fig. 13, A, B, C).


(c) Ovoid or SullaU Corpu$eU$ (properly dengnaUd^ QranuUi). — These rarely exceed in diameter more than ten or twelve /ft. They are the most numerous element of the 5th layer. Their soma is ovoid^ spheroidal, and even polygonal in form and gives rise to three, four, or more fine, smooth dendrites, which terminate, after a short, wavy course, within the limits of the 6th layer. Their axons are very delicate and take a great variety of directions, — ascending, descending, or horisontal, — and finally end in an extended arborization of few branchlets distributed exclusively to the very midst of the 6th layer (Fig, 14).


(d) Ihoarf or Spider^Juiped Carpuiele$. — Of these there is no lack in this layer, whose nerve plexus they help to bewilder. Their very tiny, often ascending, axon resolves itself very soon into an extremely dense, fine arborization close to the cell. In the dense masses of these arborizations we notice spaces, which probably correspond to groups of granules.




Fig. 13.— Cells in the 5th layer with ascending axon, yisoal cortex of infant aged 15 days. Af B, cells whose axons sabdivide in the layer of large stellate cells ; C, cells whose axons give rise to branches destined for the layer of medlom-sized pyramids ; D, cell with arched axon, the initial portion of which gives rise to branches for the 4th, 5th, and even dth layers ; S, very small cells, arachniform, with delicate ascending axons; a, axon.




Fig. 14. — Small cells In Um Uyer of unAll st^UaU celU. poMeMlnf short diffoM aioos (tafUil «> days), a, ealli with dslkmU isoeadlnf •Mxm; b, e, c«lU with d s s o sn rtln f axoa; d, Isigw otB whoM azoo foniM its terminal arborisation In the 4ih layer ; «, aaoa.



Fig. 15. — Cells with short axons of the layer of stellate cells from the Tisaal cortex of a cat aged 28 days, a, large cell whose descending axon snbdiyides in the deeper level of the 4th layer (4th and 5th of man) ; 5, arachniform cell whose axon forms a fine and very dense plexns; d, fusiform cell whose axon is resolved into vertical branches.



The cells with short axons are very abundant in the visual cortex of the cat, as may be observed by examining Figs. 15 and 16. Among them the more abundant types are : a, fusiform cells whose ascending axon is distributed to the superior levels of the layer in question (4th and 5th in man) (Fig. 16, 2>); &, large stellate cells with descending axon forming their terminal arborizations in the deeper levels of this layer (Fig. 15, a);




Fig. 16. — Elemmtt from th* Uyer ol siellAt* otllt of Um Tteoml oorttz of a cat agwl about cot Boath. A, B, C, unall pyramids with azoot arched and aaoendlng; />, larga faaiform oaUs wtth ateandlBg axona ; E^ arachnilorm cells with short azoo ; a, axon.


(e) stellate-arachniform cells whose axon forms a most complicated arborization (Figs. 15, &, and 16, K)\ <2, bipanicled cells larger than corresponding cells in the human brain (Fig. 15, d).


Nerve Plexus of the ith and bth layere of the Cortex. One of the chief characteristics of these layers consists in the very dense plexus of medullated fibres extending among their nerve cells. This is formed by two kinds of fibres : (1 ) Exogenous fibres, that is to say those coming from the white matter, probably continuations of the cerebro-optio tract. (2) Endogenous fibres, formed by the terminal arborizations of the axons which come from cells of the 4th and 5th or the underlying layers.


Exogenous Fibres. — I have already stated that Gennari's or Yicq d'Azyr's stripe corresponds chiefly to the 5th layer, but also includes part of the 4th. However, the true composition of this stripe cannot be seen in Weigert-Pal preparations, because the hematoxylin stains only the large or medium-sized fibres which possess a myeline sheath. Now these fibres, as we shall presently see, represent but a very small portion of the components of Gennari's stripes. Very fortunately Golgi's method, applied to the brain of an infant at birth or but a few days old, affords us a veiy clear view of the meduUated and unmedullated fibres which make up this plexus. This method accordingly furnishes us a means of analyzing its origin and manner of termination. Permit me to state at the outset that the principal contingent of exogenous fibres is represented by a consid« erable number of fibres from the white matter, which I shall henceforth call, in virtue of their physiological significance, optic fibres.


The optic fibres are easily distinguished from the axons of the pyramids by their direction, which is oblique (in some cases they are tortuous or even stair-shaped), by their large calibre, often exceeding that of axons of the giant pyramids ; finally by the fact that, instead of going to a cell as its axon, they repeatedly divide dichotomously, each branch resolving itself into a perfectly free terminal arborization spreading almost horizontally through the extent of the 4th and 5th layers. Fig. 17 reproduces the appearance of the optic plexus in a preparation in which it was impregnated almost alone. I call your attention to the fact that these optic fibres send off no collaterals, or very few, in passing through the deeper layers (9th, 8th, 7th, 6th), but immediately on reaching the 5th layer their final ramification begins. This occurs in many ways. Some fibres divide at different levels of the 5th layer into two equal or unequal branches which run horizontally to great distances, becoming resolved into a great number of collaterals which ramify throughout the entire thickness of the layer. Other fibres may be seen which, after giving off a few long collaterals during their ascent through the 6th layer, reach up to the extreme limit of the 5th layer and here become horizontal. There is no lack of fibres which ascend directly up to the limit of the layer of medium-sized pyramids and there describe arcs, and even very long wavy courses, and end by descending, dividing as they descend, through the 4th and 5th layers. Finally, from the arching portion of some of these latter fibres fine coUat


enb may be seen to spring on their way to the layer of medium-sized pyrramids, where they disappear after a few divisions. To sum up, the optio fibres terminate almost exclosiYely within the 4th and 5th layers. In only two instances have I discovered collaterals of optic fibres which appeared to form their terminal arborizations within the 1st layer.


This plexns of optic fibres is one of the richest and densest to be found in the gray matter of the brain. If it b completely impregnated, which frequently occurs in an infant brain fifteen or twenty days old, it appears as a be* wildering meshwork of wavy fibres, besprinkled with vacant spaces corresponding to the cell bodies of these layers (Fig. 18, B).


I may add that the appearance of this plexus diffres a little in the two layers (Fig. 18). In the 4th layer its fibres are larger and often disposed in arches or horizontal bars, its arborizations are loose and separated by ample spaces in conformity to the size of the great stellate cells; while in the 5th layer it consists of fine varicose fibrils arranged in an extremely dense lattioe work with small spaces corresponding to the small size of the medium-sized stellate cells (Fig. 18, 5).



Fio. 17. — Heary flbr«s oomlng from th* whiu tobtUuiee and tobdiTidlng In G^nnmri's stripe ; rUiuU cort«i of Infant afvd three days. A, while tabstanoe ; B, layer of imall stellar cells; C, arched fibres of 4th layer ; D, border of layer of medlomslied pyramids; a, tnmks of the inoominff fibres ; 6, coUaUrala for the deeper layers; c, ascending collstenils destined for ths more saperficial layers.




In the preceding brief description I have called the large exogenous fibres optic fibres. But what reasons have we to suppose that these fibres actually come in from the primary optic centres? We must acknowledge, at the outset, that the proof of their optical origin is not perfect ; but there is no lack of facts which favor such a view. Some of these facts are the following : —


(a) In the minute brains, as, for example, that of a newborn mouse, we can follow these fibres in some cases to the radiation of Gratiolet.


(6) The fibres which are on their way to Gennari's plexus are very large, larger than the axons of the giant pyramids or those of cells of intercortical association.


(<?) In the motor cortex we have found that large fibres distributed in a similar way actually come in from the corona radiata.


(c?) In the visual cortex of a man who became blind I have discovered, by using Nissl's method, a perceptible atrophy of the stellate cells of the 4th and 5th layers. A similar case has been recently reported by Cramer ; and this fact would seem to point to an intimate union between these elements and the act of visual perception, a union whose material bond is probably represented by the exogenous fibres of Gennari's plexus.


(jr) Granted that the visual cortex must receive a great number of fibres from the radiation of Gratiolet, it is natural to refer to this source the fibres which form Gennari's plexus ; since this is the distinctive plexus of this region of the brain.


From the probable fact that the plexus of Gennari's stripe is the terminus of the optic fibres, we may draw the important conclusion that the cells of the 4th and 5th layers represent histologically the principal substratum for visual sensation ; because up to this point in the cortex sensory impulses heap up on the centripetal side, and here begin to become centrifugal.


Another conclusion not less interesting follows from it : for an ensemble of anatomico-physiological facts seem to show that the region of the calcarine fissure is not the locus of visual memories, but only that of sensations of luminosity, and that the residues of the latter must go (in order to become transformed into latent images) to other nerve centres. We are naturally led to consider the long axon of the 4th and 5th layers as the principal, if not the only, path joining these two kinds of centres.



Fig. 18. " N«rT« pltjrat of the 4tb and 5lh Uy«n from the Tteaml ooruz of an Infaat tftd 90 days. J« B, C, rwptctlTaly, layart 4tb, Oih, and 6ih ; a, trunks of optic flbrM ; 6. azoniof ccIIa of the aib layar ; c, aaoendlnf azoai of oaUs In the 8th Uy«r ; d, bnndl* of aiooa daao^ndlag frooi the Ipjramldt; t, tfantrarMafcbMof theoptioflbcwglTlacriMtoaaoaadlnf ooUat«rala.




These fibres would function, accordingly, in carryring the copy, or the sensory residue, received in Gennari's plexus, to appropriate association areas of the brain. Their psychic role is thus a very important one, and we should suppose that their interruption would produce psychic blindness as certainly as the destruction of the occipital lobe itself.


The plexus of Gennari is well developed in other mammals, but the terminal arborizations are never as complicated as in man (Fig. 19). Further than this I have not been able to demonstrate any definite differences in arrangement at various levels of the layer of stellate cells. However, it has seemed to me that the terminal branches, which are very varicose, tend to be especially dense in the superficial planes of this layer.


Endogenous Fibres. — In addition to the large nerve fibres entering from the white matter, Gennari's plexus contains either terminal or collateral ramifications of fibres which arise in the cells proper of the visual cortex. Such are : —


(1) The very numerous branches from the small cells with short axon of the 6th layer.


(2) The terminal neuritic arborizations of cells with ascending axon lying in the 6th, 7th, and 8th layers.


(8) Arborizations of collateral branches supplied to the 4th and 5th layers by the long descending axons of the stellate cells.


(4) Terminal arborizations from the fusiform or triangular cells of the 4th and 5th layers which have ascending axons, etc.


The plexus formed by all the above fibrils is usually finer than that of the optical fibres. In order to make out to the best advantage its extreme complication throughout its whole extent, we must study it in the cortex of an infant from fifteen to twenty-five days old, a period at which the terminal arborizations of the visual cells are completely developed. It has seemed to me that the endogenous arborizations are more numerous in the 4th than in the 5th layer. We may notice also that they show a tendency to form true nests surrounding the stellate cells of these two median layers.


Sixth Layer.


Plexif orm and poor in cells in Nissl preparations, it contains a large number of small pyramidal or ovoid elements with long axis vertical and provided, as may be seen in good Golgi specimens, with a radial trunk extending up to the first layer. They have also a few short basilar dendrites, descending or oblique and little branched. But the most distinctive character of these small elements consists in the course of their axons. These descend a short distance, then curve upward and ascend through the 6th, 5th, and 4th layers, to which they give a few collaterals, and end in a manner which I have not been able to discover. In some cases these axons have branched close to their origin and, instead of one, describe two arcs continued by ascending fibres. Other axons, moreover, make even a greater number of loops. From the convex aspect of these curves, as well as from the ascending portion of the axons, within the 6th layer spring numerous collaterals which branch throughout the entire thickness of the layer. Some descend still further and subdivide in the plexus of the 7th layer, that is to say, at the level of the giant pyramids (Fig. 20, -B).



Fig. 19.— Opftto flbr«t from TifMl dlftanet ffoa tiM white aMtto; B, Mrrt Ib mAB).


tai layw of lUlku o«Ik (4th uid 5cb Iajtm*




Besides these small cells, which are certainly the most abundant, we find two other cellular types : (a) Cells of stellate form and medium size. They possess radiating dendrites which do not usually pass beyond the 6th layer. Their axons ascend and form an arborization throughout the extent of the 6th, 6th, and 4th layers. (V) Ordinary pyramidal cells, very scarce, of medium or large size. They have precisely the same characters as the pyramids of the 7th layer.


Seventh Layer ob Layer op Giant Pyramids.


Solitary Cells of Meynert. — This layer contains one or two irregular and discontinuous files of giant pyramids, which appear, here and there, lost as it were in a dense and extended plexus. To this plexus the layer owes its finely granular appearance, which may be seen even in preparations stained by Nissl's method (Fig. 20, (7, and Fig. 22, B).


The cells in question, like other pyramidal cells, possess a very large radial trunk which ends in a flattened spray of horizontal branches in the lower levels of the plexiform layer. The cells are also provided with a few many-branched basilar dendrites which distribute themselves throughout the layer and, finally, with a great number of horizontal dendrites forming a plexus which would seem to provide connections between these cells through long distances. This is such a characteristic feature that by its presence alone we are able to distinguish the visual from all other cortical areas. The axon of the giant pyramids is very large, extends almost vertically through the 8th and 9th layers, and is continued as a fibre of the white matter. Collaterals spring from its initial portion which ramify in the 7th and even the superficial levels of the 8th layer.


In addition to the giant pyramids, which in some oases are not at all




Fig. 30. — CeUd of the titb and 7th layert from the ham&& TifOAl cortex, Infant 15 dmyt old. J. AChlaytr; B.SthUjar; C, 7thlaj«r; a, gUnt pjnu&id ; 6, madiam-ditd pjrmmid with datoto^ lag ftimi ; e, nudl pyramid with arelMd Moendlng axon; d, pyramid wboM axon pnatoto two ai«hM; e, pyramid wboM axoD girat riM to Mraral arelMd flbrva; A,/, g, ttaUat* o«Ik with awd lag aixNii raodSed In the 5cb and 6Ui layara; i, J, K, pyramid! wboM azoaa avoh and tabdlTtda la the 7th and 8tb layait.


nnmeroos, the 7th layer contains : (a) a number of medium-sized pyramids possessing the same characters ; (() seyeral small elements exactly similar to those of the 6th layer, the cells with the complicated forked and arched axons distributed in the manner aboye described (Fig. 20, K^uJ); (O in addition may be found medium-sized stellate cells situated in the 7th and 8th layers (Fig. 21, A^ B). The very remarkable feature of the latter cells consists in their terminal arborizations. Their neurites take at first an ascending or oblique course, divide into two, and then give rise to a large number of oblique or horizontal branches which occupy




Fig. 21. — Special cells of the 7th layer, visual cortex of infan^. A, B, stellate cells whose axons form terminal arborizations in the layer of giant pyramids; C, cell with long ascending axon distributed to the 4th and 5th layers ; 2>, giant psrramid of 7th layer ; c, &» axons of small pyramids of 6th layer.


a good part of the 7th layer. In the brain at birth their terminals present no special peculiarities ; but in one twenty days old I have found that a number of these arborizations surround the giant pyramids, forming terminal nests. Only their arrangement is not so definite here as in the motor region, where we find it wonderfully developed. (Compare with description below.)


Eighth Later.



Examined in Nissl preparations this layer presents a mass of mediomsized pyramids and a remarkably dense formation of granules. This is the reason Meynert and other writers have called this the layer of deep granules or inferior granular layer.


Golgi's method reveals in this formation elongated oells of pyramidal form. They have the radial trunk continued, up to the pleziform layer and also descending basilar dendrites which become subdivided and end within the 8th layer. Among these there is no lack of fusiform or triangular cells, but they always present the long radial trunk which we find over the whole cortex (Fig. 22, (7).


In general form, it will be observed that these cells resemble true pyramids. However, the peculiar behavior of their axons establishes a very clear distinction between them. As may be seen in the figure (22, i), this axon at first descends, then describes an arc, ascends into the 7th, 6th, and 5th layers, and finally ends in a horizontal arborization chiefly distributed to the layer of stellate cells, but a few of its branches go to the 5th layer. From the loop of the axon, and in the course of its ascent, spring several collaterals, which ramify in difiFerent planes of the 8th layer. In a few of these cells we may observe that, at the bend of the axon, a slender branch, similar to a collateral, is given off, which crosses the 8th and 9th layers and enters the white matter as a meduUated fibre (Fig. 22, g). The great majority of these collaterals, however, terminate completely within the 8th and 9th layers. At any rate, we must distinguish, considering the morphology of their axons, two kinds of cells : (a) oells with arched axon none of whose collaterals extend to the white matter ; (() cells whose neurite divides, at the arch, into a fine descending branch, which becomes a medullated fibre of the white matter, and into a larger ascending branch with its terminal arborization in the 4th or 5th layers.


This arched arrangement of the axon in cells of the 8th layer appears very strange. It occurs not only in the infant brain, but in the visual cortex of the adult as well. It seems, at first sight, to violate aU laws that govern the length and direction of the axons in other sections of the nervous system. And, what seems still more remarkable, all these whimsical windings seem to subserve solely the purpose of shortening the stretch between the cell body and the first ooUaterals given off by the aroh. This same phenomenon occurs in many other nerve cells. Were it not for a deviation from our present theme, I might add noe yery convincing instances of this tendency of the axon to take the direction meet favorable for the nerve impulses which arise in the cell to very quickly reach the elements connected with their initial collaterals.




Fig. 22. Seventh and 8th layers, yisoal cortex of cat, aged 20 days. A, deeper portion of layer of stellate cells ; B, layer of giant pyramids ; C, layer of medium-sized pyramids with arched axon ; a, b, psrramids; c, d, small pyramids with axons distributed to 7th layer; g, triangular cell, whose axon gives rise to a large ascending collateral ; i, another whose axon forms an arch and ascends ; 1, pyramid with axon descending to white matter ; ], element from the deepest levels of the layer of medium-sized pyramids (corresponding to layer of fusiform cells in man) which gives origin to a large axon that ascends possibly to the 1st layer.



Permit me also to add that the 8th layer contains giant stellate cells with ascending axon (Martinotti's cells), which runs to the plexiform layer (Fig. 22, j), and also a similar but smaller cell, whose axon gives rise to an arborization between the neighboring cells.


Ninth Layer.


Coinciding closely with the so-called polymorphic layer of other authors, this layer contains elongated elements, fusiform, triangular, or ovoid, possessing a radial dendrite, extending up to the plexiform layer, and also one or several basal dendrites, which take a descending or oblique direction. Finally, these cells have an axon which descends in a straight line to the white matter; where, after giving off several collaterals, it continues as a medullated fibre. There are also in the 9th layer a few fusiform cells with short radial dendrites and ascending axon and a number of stellate cells with short axon of the so-called Oolgi type.


In addition, the arrangement of the cells of the 9th layer varies greatly in different parts of a convolution. In the convex portion they are very numerous, fusiform, and slender, elongated and perfectly radial ; while opposite the sulcus they have a quite different form, are stouter, more variable, and frequently lie with long axis parallel to the white matter, i.e. perpendicular to their ordinary direction. Their peripheral processes perform the most whimsical contortions in order to become radial and reach the plexiform layer. Their axon appears frequently horizontal, describing a very open curve on its way to the white matter. All these forms and many others represent adaptations of the cells to the foldings of the cortex and to its varying thickness in different parts of a convolution.


I will not impose further upon your indulgent attention with these tiresome enumerations of layers and forms of cells, in the mazes of which nature herself seems to have intended to lose the investigator and put his patience to the test. And I will close this tedious lecture with a succinct exposition of the anatomico-physiological inductions that seem to follow from my observations on the minute structure of the visual cortex of man and the mammalia.


1. The visual cortex of man and gyrencephalous mammals possesses a special structure very different from that of any other cortical area.


2. The visual region is characterized, above all, by fewness of giant pyramids and by presenting, at the level of the granular layer of other cortical areas, three distinct layers of cells of special form, to wit : the layer of large stellate cells, the layer of small stellate cells, and the layer of pyramids with arched ascending axon.


3. Gennari's or Vicq d'Azyr's stripe contains principally terminal arborizations of certain very large fibres, originating probably in the primary optic centres (external geniculate body, pulvinar, anterior corpora quadrigemina).


4. Since these optic fibres are distributed chiefly to the stellate cells of the 4th and 5th layers, it seems natural to consider these elements the substratum of visual sensation.


5. The innumerable cells with short axons in the 4th and 6th layers represent, probably, the intermediate links between the optic fibres on the one side and the stellate cells of the 4th and 5th layers and the pyramidal cells on the other.


6. As these intermediate cells are often very small and have short axons, it may be that, besides their function of diffusing the incoming impulses through the cortex, they play also the special role of augmenting the visual impulses by fresh discharges of nerve force, in order that they may reach, in sufficient strength, the cortical regions in which the function of commemorative recording of optical images occurs. The pathways for conveyance of visual residues from the median occipital region to the association centres in the parietal cortex are possibly represented by axons of the stellate cells of the 4th and 5th layers.


7. Granting that the giant pyramids of other cortical regions give rise to motor fibres, it would follow that in the 7th layer they possess the same function. These cells, whose dendritic trunks come into contact with the optical plexus, 4th and 5th layers, serve probably to mediate the reflexes of the eyeball and head (conjugate movements of the eyes) occasioned by elective stimulation of the visual cortex, a theory which would seem to be supported by the physiological experiments of Schafer, Danillo, Munk, and others.



8. Granting that each giant pyramid oomes into contact in the 4th and 6th layers, as well as in the first layer, with fibres that are probably associative, we may suppose that motor discharges of these cells can be effected by two kinds of impulses : by ordinary optical stimulation and by stimuli of a yolitional order, possibly coming from the association centres and reaching, finally, the plexiform layer.


My own researches do not furnish grounds for further conclusions. Many points still remain to be cleared up; but their complete elucidation will be the fruit of researches more detailed and exact than those I have been able to undertake.






LECTURE III. The Sensori-Motor Cortex

After the study that we have just made of the visual oortex, we can be more concise in our examination of the motor area. In all cortical regions we notice general structural characters and special features which constitute the physiognomy proper of each cerebral area. Naturally, the latter will be of more interest to us, and they will form the subject of the present lecture.


I shall not stop here to give any history of researches undertaken upon the minute anatomy of the psycho-motor areas. A bibliography of the subject would be very long, tedious, and altogether superfluous, since it has already been provided in the recent studies of Retzius, Hammarberg, and KoUiker. It will suffice to name, among those to whom we are most indebted for a knowledge of the structure of the motor cortex, Meynert, Baillarger, Kolliker, Krause, Betz, Lewis, Golgi, Martinotti, Retzius, Flechsig, Kaes, Hammarberg, Nissl, etc. All these writers have selected the psycho-motor cortex for special study ; and it is safe to assert that all our knowledge of the minute structure of the entire cortex has taken its character from this region, which some writers have denominated " typical." They have done this because it was thought at the time when the fundamental works of Meynert and Golgi appeared that in histological structure the whole cortex corresponded to a uniform design, presenting only unimportant variations in different regions.


Neither have I time to enumerate the layers which have been described for this cerebral region. Their nimiber has varied under the pen of each writer with the animal and the method he has happened to employ. Thus Meynert, who made his observations on man, distinguished five layers ; Stieda, Henle, Boll, and Schwalbe limited their number to four ; while writers like Krause admitted as many as seven. I myself, at the time of my investigations upon the small mammals, recognized four, naming them : (1) molecular layer; (2) layer of small and medium-sized pyramids;



(8) layer of large pyramids ; (4) layer of polymorphic cells. This number, deriyed particularly from study of the small mammals, is not valid in the more complicated human cortex. To the four classical layers of smooth-brained mammals we must add one at least, the so-called granular layer of Meynert and other writers. This layer, situated in its very midst, divides the layer of giant pyramids into two, which we may call respectively the external, or superficial, and the internal, or deep, layers of giant pyramids.


To sum up, the following are the layers which it is possible to recognize by Nissl^s method in the human motor cortex (ascending frontal and ascending parietal convolutions). To conform to our scheme in the visual cortex, we have altered the terminology for this region also.


1. Plexiform layer of Meynert, molecular layer of some writers).


2. Layer of small and medium-sized pyramids.


8. External layer of giant pyramids.


4. Layer of small stellate cells (granular layer of the authors).


5. Internal or deep, layer of giant pyramids.


6. Layer of polymorphic cells (fusiform and medium-sized pyramids of certain writers).


Fio. 23. — Saetion of Adult homan motor oortoz« UlMd by Nls«l*f OMtliod (•embcbomAtic). 1. plexiform Iftyor ; 2, layer of small pjrramidi ; 3, layor of mediom•iMd pjrramidi ; 4, oxtorwU layer of ^aat pyramide ; 6, layer of email eUllate oells ; 6, Internal layer of giant pyramids ; 7. layer of polymorphic cells or deep pyramidal layer of medium-eiaad oeUe; 8, layw of fofifonn oaUa.




These layers correspond particularly to the concave portions of the motor convolutions. Over the convexities the gfray matter is thickened especially at the level of the polymorphic layer, which here appears divided into two sub-layers : an external, very rich in pyrramidal and triangular cells (Fig. 23, 7); the other, internal, presenting, besides the heavy bundles of white fibres, fusiform cells disposed in parallel series (Fig. 23, 8).


1. Plexiform Layer. — This is similar in structure in the motor and visual areas. It contains, therefore : (1) dendritic arborizations of the pyramidal and polymorphic cells, that is to say, of all the cells of deeper layers (2, 8, 4, 5, 6) except stellate cells of the 4th layer and the cells with short axons scattered through the entire cortex ; (2) terminal arborizations of the ascending axons of Martinotti; (8) the ramifications of the recurrent collaterals which come up from the axons of certain small and mediiun-sized pyramids ; (4) the fibres, terminal and collateral, which arise from the white matter; (5) stellate cells of variable size with short axon which ramifies within the 1st layer ; (6) the special, or horizontal, cells with long tangential dendrites ; (7) finally, neuroglia cells of the two well-known types, with long radiating processes close underneath the pia (Martinotti, Retzius, Andriesen, Be van Lewis, et dl.}, and type with short processes, located at all levels of the plexiform layer (Golgi, Cajal, Retzius, Martinotti).


We shall not enter upon their descriptive details, since all the structures present the same characters here as in the visual cortex. We shall merely add that in the motor cortex the plexiform layer is notably thick. It also contains a greater number of horizontal cells and terminations of the trunks of pyramidal cells (Fig. 25, A^ B^ (7). Its greater thickness arises probably, as Lewis remarks, from the extraordinary number of pyramidal cells in the underlying layers.


2. Layer of Small and Medium-sized Pyramids (Fig. 24, 2 and 8). — We shall not stop upon these, because they are so well known. Permit me merely to call to mind the fact that their radial trunk, often forked near its origin, makes its arborization in the plexiform layer ; while from the base springs a fine neurite which, in case of the small mammals, we can trace into the white matter. In the child's cortex this is made difficult by the distance, but I have been fortunate on two occasions in following this axon into the medullary substance, where it was continued as a medullated fibre. The neuritic collaterals are also very numerous and a number of them may be seen to recur and make their arborizations in the superficial lamina of the plexiform layer.


CelU with Short Az<m$.— These are numerous, although it does not seem to me that they are so extremely abundant as in the visual region. In Fig. 25 I have reproduced some of these elements which habitually occur in my preparations. We remark especially: a, a large stellate type, whose ascending axon subdivides into horizontal or oblique branches covering a great extent of the layer of small and medium-sized pyramids (Fig. 25, if); 6, a second type of similar form but whose axon forms its terminal arborization very close to the cell (Fig. 25, J?); e, still another form with horizontal axon the superficial branches of which penetrate into the plexiform layer (Fig. 25, 2>); (i, arachniform cells with axons subdivided into dense plexuses (Fig. 25, JP, (?) ; «, fusiform, bipanicled cells, which have been sufficiently described.



Fig. 24. — BBMmbto of laytn of motor eorUz of InCaDt «fed ooo and a half mooUif ; Oolgi't method (leinttcheniaUc). Layert art Dumberad aa follows: 1, plexiform; 3 and 3, small and medium-sized pjramlda; 4, oparfldal fffaat pyramlda ; S. jpiuiiilar or email Btellate eelle ; 6, deep g^Ukl pyramids ; 7, polymoiphle eella, or deep medlnm-alaed pynunids. (la this flcare I have not reprsaented the daepeai portion of the 7th layer^



Having studied all these types and many others in the visual cortex, it is unnecessary here to enter upon a more detailed description. One thing concerning the bipanicled cells I may add, viz., that in the motor cortex there appear to be two kinds: one, small cells provided with slender axon disposed in very delicate vertical pencils (Fig. 25, J7) ; the other consisting of relatively large cells having very long and thick dendrites and with an ascending or descending axon giving rise to terminal arborizations of extreme complexity, producing nests or terminal baskets about the bodies of the small and medium-sized pyramidal cells (Fig. 25, J). Possibly this type, which I take to be a variety of the common bipanicled cell, is present over the whole cortex ; but as yet I have succeeded in finding it only in the motor convolutions of the infant at over one month of age.




Fig. 25. — Cells with abort axons of the plexiform and small and medium-sized pyramidal cell layers from motor cortex of infant aged one month and a few days. A^ B, C, horizontal cells of the plexiform layer ; D, cell with horizontal axon ; E, large cell with very short diffusely subdivided axon ; F, O, spider-shaped cells whose delicate axons form a dense plexus {O) up to the plexiform layer; H, J, bipanided cells.



8. Soperiidal Layer of Giant Pyramids. — Being a continuation by imperceptible gradations of the above, this layer contains the well-known large pyramids of the writers. In addition to the observations of Bets, Lewis, Oolgi, and myself, however, I must add a single detail to their classical description. The radial process varies greatly as to the extent of surface it covers in the plexiform layer. When its dendrites must cover a large surface, the trunk forks near the cell, and the two trunks, deviating at an acute angle, ascend to give rise to two or more terminal sprajrs, in some cases at considerable distances apart. This amounts to saying that certain medium-sized and large pyramids stand related to a large number of nerve fibres in the 1st layer, while other cells of the same size have more limited connections (Fig. 24).


In gyrencephalous mammals, dog and cat, the superficial large pyramids are smaller than in the in&nt. They might be considered as a subordinate element in the layer of medium-sized pyramids. Most frequently the only giant pyramids in the cat occur below the granular layer, — a layer which, I may add, is very slightly developed in this animal, being often blended with the layer of medium-sized pyramids.


The number of superficial, medium-sized, and giant pyramids is very large in the motor area both in imimula and man ; and this is one of its characteristic features. However, the regions designated by Flechsig as association centres possess also a notable number of large pyramids. From this feature alone it would be quite difficult to distinguish the frontal and parietal from the motor convolutions.


The axon of the large and medium-sized pyramids descends, as is well known, to the white matter and is continued as one or two nerve fibres. I must call special attention to the fact that, as shown by my own researches, this fibre may fork usually into a fine branch which goes, probably, to the corpus callosum and a larger branch to the oorpus striatum. This may be easily observed in the brain of a newborn mouse or in one a few days old. It may also be seen that the fibre entering the corona radiata passes beyond the corpus striatum, giving off to it a few collaterals. It is thus well established that the axon of the large pyramids is true projection fibre which takes part in forming the pyramidal tract. But we must be on our guard about accepting the view of certain writers, — v. Monakow, for example, — who ascribe this role, participation in the motor tract, exclusiyely to the giant pyramids, because I have demonstrated beyond all doubt, in the motor region of the mouse and rabbit, that a number of the axons of medium-sized pyramids and many from polymorphic cells also penetrate the corpus striatum. I therefore consider as wholly arbitrary all the opinions which tend to attribute an exclusive function to elements in each distinct cortical layer. In the cortical layers, as well as in the ventral horn of the spinal cord, there occur together elements with axons of very diverse character and connections. The motor cell takes its place beside the associational cell along with the element whose axon or collateral goes to the corpus callosum. There are, accordingly, in the cortex no ^^ sensory layers nor ^ motor layers" ; because, as we shall see in a moment, the great majority of the cells are related, either by their cell bodies or by their radial trunks, to the plexus of sensory fibres. We find thus reproduced the arrangement of the spinal cord, where all the cells, or almost all, come into contact with sensory fibres of the first or second order, and all represent links in the chain of reflex connections.


4. Layer of Small Stellate Cells Granular Latter of the Authari). — Stained by Nissl's method the layer of small stellate cells appears as a great number of nuclei surrounded with little protoplasm which contains a few fine granules of chromatin (Figs. 23, 6, and 24, 5). Most of these elements, the granules proper, are very small and globular or stellate in form. Others, I have observed, are comparable to small pyramids, being of triangular form and having a fine radial trunk. Nor is there any lack of stellate or fusiform cells of considerable size, which call to mind those of the visual cortex. All these elements appear to be mingled. However, in certain places I thought I could discover that the small globular cells are situated chiefly in the external plane of the layer, while the minute pyramids were more numerous in the deeper levels, but there are exceptions to this.


But Nissl's method does not enable us to study the fine processes of these elements. To this end we must have recourse to the ohromate of silrer method, and by its application — especially in case of an infant fifteen to thirty days old, a time at which the reaction is easily obtained — I have been able to demonstrate the extreme complexity of the granular layer. Good preparations show that it consists of elements with very diverse characters, which in spite of their minor differences may be classed into two groups : (1) cells with long axons which extend down to the white matter; (2) cells with short axons which end within the granular layer or in layers above it.


Cells with Lang Axons. — These may be classed into two varieties, small pyramidal cells and medium-sized stellate cells.


(a) The small pyramid is specially numerous in the deep level of the 4th layer (Fig. 26, A^ B). It has been figured by various writers, notably by Kolliker, although even he does not give us any information on the character of its axon. The cells are ovoid-pyramidal in form. They possess a radial trunk which extends up to the plexiform layer, where it ends in a few very slender varicose twigs without contact granules. It also has a few tiny descending or oblique dendrites which divide repeatedly. Finally, I have very often traced its axon to the white matter, in which it is continued as a slender medullated fibre. From its initial portion arise two, three, or four collaterals, some of which curve upward to distribute themselves through the 4th layer. In some cases the diameter of these collaterals is so large, compared with that of the axon, that they might be considered the real axons.


(6) Stellate Cells. Very hard to stain, and possibly quite scarce. Their dendrites arise from the angles of the cell body and run in all directions, but are distributed exclusively to the 4th layer (Fig. 26, D). Their axons spring from the inferior surface, descend almost in a straight line, and, after giving off a few large collaterals, very frequently arched and recurrent, are lost in the white matter. These interesting cells, exactly similar to the stellate cells of the visual cortex, are also found in the motor cortex of gjrrencephalous mammals, although, to judge from my own preparations, only in small numbers. Their presence would seem to indicate distinctively sensory regions of the brain.


ElementM with Short Axon$. — These are also very numerous in the infant brain, representing, perhaps, the chief morphological factor of the 4th layer. Several varieties have been distinguished, of which the most common are the following : —


(a) Stellate or Fusiform Cells of Medium Size. Their dendrites diverge in all directions, but chiefly above and below, and end in the midst of the 4th layer. Their axon springs from the superior surface, ascends for a variable distance, and at varying levels of the layer of stellate cells forms an arborization of horizontal or oblique branches of considerable length and distributed exclusively to the 4th' layer. Very often the axon branches in the form of a T before proceeding to its terminal arborization, and from its initial part arise collaterals whose course and tenninatioiis resemble those of the terminal branches. These cells, we may add, correspond in all points to the cells with ascending axons described for the 4th and 5th layers of the visual cortex (Fig. 27, A^ (7, 2>).


(b) Fusiform, Triangular, or Stellate Cells. These are somewhat larger than the preceding. Their axon ascends to the plexiform layer, in which it subdivides and terminates. In its ascent it supplies a few collaterals to the 4th and 3d layers. These elements, as we see, correspond to the so-called cells of Martinotti. In a few cells of this class the axon possibly does not reach the first layer, becoming lost in the layers below (Fig. 27, A).


(c) Small Stellate or Spider-shaped Cells. These possess fine and richly subdivided dendrites and also a neurite, which forms a very rich arborization close to the cell (Fig. 27, ^).


(d) Bipanicled Cells. These have the characteristics already described in our study of the visual cortex.


(e) Finally, in the cat and dog I have found a few stellate cells with very numerous dendrites, whose descending neurite forms a very dense and complicated arborization, for the most part in the 4th layer, but in some cases extending down to the deep layer of giant pyramids. Possibly these cells are homologous to the spider-shaped cells in man, which they resemble in the extraordinary richness of the plexus formed by the axon. It would then be necessary to suppose, however, that in the cat and dog these cells are much larger than in man.


In order to complete my description, permit me to add that there is no lack of ordinary pyramidal cells, in some cases large, scattered irregularly in the 4th layer (Fig. 26, E). In mammals like the cat and dog, and to a much greater degree in the rabbit, the profusion of pyramidal cells obscures our picture of the granular layer.



Fig. 26.— Cells with long axons from 4th layer of motor cortex of infant aged one month. A, Bt C, small pyramidal cells; D, large stellate cell; JS, medinm-siaed pyramid; a, axon; b, e, large descending collaterals.



Fig. 27.— CeUi with abort azoM Iron 4th lajv of motor ooffUzollBlkiii. J. B, Cotlk^ttolImto or fntllorm, with fttoendliif axon dlTided Into long borixontiU hranebes ; E, arttchnilorm ooU ; F, eell with ajan distribotod to Uy«r of modiam-ilsed pyramkU.



Sensory Nerve Plexus of the 4th Layer. — One of the most significant facts which I have discovered in the motor cortex is a plexus of very large fibres whose numerous subdivisions occupy the 4th layer and extend even into the 2d and 3d. They probably enter the cortex from the corona radiata. As early as in my first work I called attention to these fibres as being different in diameter, direction, and origin from axons of pyramidal cells, but at that time I had not succeeded in determining the region to which they are peculiar or the precise place of their termination in the cortex. My recent researches upon the brain of man and also small mammals enable me to add a few details to my description of some years ago (Fig. 28).


First of all, I have been able to determine exactly their origin and position in the brain. These are both easy to observe in the brain of a rabbit at birth and still better in that of a mouse a few days old. In the mouse it may be seen especially well that certain large fibres (called by Kolliker, who has confirmed their existence, fibres of Cajal) proceed from the corpus striatum, enter the white matter, and often extend horizontally in it for great distances. In their course they throw off long collaterals, which penetrate into the overlying gray matter. All these collaterals, as well as finally the orig^al axon itself, ascend through the polymorphio layer, dividing once or twice, then, passing obliquely through intervening layers, form an arborization of heavy fibres within the layers of small, medium-sized, and large pyramidal cells. However, in the rat and rabbit these branches are most numerous in a relatively superficial plane, which corresponds probably with the granular layer of the human brain, — a layer that is not differentiated in the small mammals. We also find a relatively small number of branches that ascend to the plexiform layer. As to the cortical distribution of this plexus, we may also place on record a fact of interest. It never covers the whole cortex. It begins to appear some distance from the median fissure and disappears below long before reaching the olfactory area or limbic lobe. I have never observed it in the cortex of this sulcus, nor in the anterior portion of the frontal lobe, nor even in the region of the auditory or visual centres.





Fig. 29. — Pkzm of baAvy mnaorf fibres from motor oortcz of cmi S days old. A, plsxlfora layer ; B, Uysr of small and medlom-siiwl pyramids ; C and />, layers of i^ranales and soperftclal layer of ffiant pyramids; E, deep layer of f(iant pyraniidi; F, layer of pi>lymorphlc cells . a. fibre from white matter; 6, ascending collateral ; c, rarlcnse terminal arbi»riiAtion ; <f. fibre directed to tbe plexiform layer, which appears to be distinct from the lar^se Ahrcn.



I shall return to this matter in a future investigation, for I think it merits most thorough study ; because, if it can be confirmed in a positive manner and by other methods, we shall possess a criterion by which to distinguish between areas of association and projection in the cortex. The projection areas will probably be found to be not, as Flechsig thinks, those possessing fibres that go to the corpus striatum (since Dejerine and others have discovered these fibres in the so-called association centres) but those receiving sensory fibres. At the same time, the association centres will be characterized by the absence of these direct sensory connections. At any rate, I believe that even in the brain of the smallest mammal there are areas, of small extent it may be, specialized to store up the images or residues of the sensory projection centres. It would be most astounding if the brains of the small mammals possessed a different architecture from that of man, taking into consideration the fact that all the senses have the same essential structure in all mammals and that memory — visual, tactile, muscular, etc. — is just as necessary to their lives as to our own.


The sensory plexus is highly developed in gyrencephalous mammals and in man. I have found it well impregnated in the brains of infants at birth and a few days old. Here it appears made up of large fibres having an oblique direction and a flexuous or even staircased course. After dividing several times in the 6th and 5th layers they give rise to a singularly extended arborization of horizontal fibres distributed chiefly to the layer of granules or small stellate cells. We thus see in the motor cortex, M was the case in the yisoal, that the layer of granules is the principal focus of sensory impressions* From this terminus they are propagated by the numberless cells with short ascending axons to the layers above and especially to the medium-sized and giant pyramids. However, it must be acknowledged that the sensory plexus is not so narrow and well defined as the optic. For, although its greatest density occurs in the 4th layer, its terminal branches divide in their ascent to the superficial layer of medium-sized and giant pyramids. The fibres which extend up to the small pyramids in man are not numerous. It is for this reason that I cannot agree with Bevan Lewis in ascribing to them sensory functions. I do not wish to be understood to deny the sensory function of the small and medium-sized pryamids. According to my view, all the cells of the motor cortex are sensory because they all, possibly, come into contact either directly (cells of the 8d, 4th, and 5th layers) or indirectly, through the intervention of cells with short axons, with sensory terminal arborizations. But, since some cells send their axons to the pyramidal tracts, we are able to distinguish them as $en$ari'^notor eetU of the far$t order. The others, which send their neurites to other motor areas of the brain, possibly effect contact with sensori-motor cells of the first order located elsewhere. These cells of indirect sensori-motor communication we may be warranted in calling eeneori'inotor eeU$ of the eecond order. It goes without saying that this distinction is purely hypothetical ; for no method enables us to determine the precise point within the brain where the axons of the pyramidal tracts of the corpus callosum or of bands of association fibres form their terminal arborizations.


6. Layer of the Giant and Medium-slsed Pyramids. — In the adult human brain stained by Nissl's method, a section of the motor cortex reveals, below the granular layer, a layer of plexif orm or granular aspect filled very thickly, but in no particular order, with a few giant and a great number of medium-sized pyramids (Fig. 29).


Usually the giant pyramids are located near the 4th layer, forming there a few irregular ranks. Impregnated by Oolgi's method, they appear similar to the same cells in other regions of the cortex, but differ in a few particulars. The body is generally conical, very much elongated, giving rise at the apex to a large trunk, often dividing near the cell, which terminates in the 1st layer in the usual manner. A group of long complicated dendrites diverges from its base, and from the sides spring several very long horizontal processes which subdivide into terminal brushes, and these, intertwining with similar structures from neighboring cells of the same level, form a dense and very characteristic protoplasmic plexus. It is the same arrangement we already know so well in the visual cortex, except that, instead of one plexus, there are many. The axon is large and, after giving oflf very long collaterals to the 5th and 6th layers, it passes on to become a medullated fibre of the white matter.



Fig. 29. —Deep layer of giant pyramidal cells from motor cortex of infant aged 20 days. At Bt pyramidal cells ; D, C, elements with short axons.



The medium-sized pyramids are very numerous, much scattered, and occur in greatest profusion in the lower levels of the layer. They do not differ in character from the giant pyramids, except as to the lateral somatic dendrites, which are few and not characteristic.


Besides the pyramidal cells the 5th layer contains a few other kinds of elements. From the point of view of their morphology the following are the more striking types.


(a) Cells which form Terminal Ne$U. — These cells, very similar to those which give rise to the basket fibres of the cerebellum, are most numerous in the 5th layer between or below the giant pyramids. I have found them also in the layer of granules or small stellate cells.


Their volume is small, similar to that of a small pjrramid, and in form they appear stellate or triangular with very long and much-branched varicose dendrites. The neurite, however, presents the most distinctive feature. It ascends, forking close to its origin, and breaks up into a ramification of very many branches, ascending, oblique, or horizontal. After a few subdivisions, all these branches make their way to the giant and medium-sized pyramids to form very complicated varicose arborizations close around their cell bodies and principal processes, after the manner of the terminal baskets of the cerebellum or the nests found in Deiter*s nucleus. Elach nest contains arborizations from several cells, and each basket cell helps to form a large number of nests (Fig. 30, <f).


(&) Cells with a Difftuely Branched Ascending Axon. — This is a fusiform or stellate cell located at different levels of the 5th layer, to which it sends its dendrites. The axon ascends to the superior limits of the layer where it forks, and its terminal branches form a loose horizontal arborization of an enormous extent and connected probably with the deep giant pyramids (Fig. 29, (7, 2>).


(e) Small Pyramid* with Arched Axon: — This cell, which I have studied particularly in the motor cortex of the cat, is entirely similar to the element which we found in the 6th and 7th layers of the visual cortex. The cells possess a fine dendrite which ascends to the first layer, where it ends in a very modest and delicate arborization. Their axon descends and, after giving off a few relatively long recurrent collaterals, appears to fork and end in the midst of the 5th layer. The branches which spring from the bend of the arch descend in some cases, but I have not been able to trace them down to the white matter.


(d) Cells with Long A$eending Axon. — These are fusiform or triangular cells with long polar dendrites which never reach the first layer.



Their axon arises from the superior surface of the cell, and, after giving off a few branches to the 5th and 4th layers, it continues its ascent to the plexiform layer and there makes its terminal arborization.


6. Layer of Polymorphic Cells. — This layer contains the same elements as the layer of the same name (9th) in the visual cortex (Fig. 81), that


Fig. 30. Perioellalar tenninal arborisationB from the deep layer of giant pyramids, motor oortez (ascending frontal eonyolution) of infant aged 25 days, a, axons giving rise to oblique and horizontal branches; &, c, d, terminal nests.


is to say, fusiform cells with two long polar dendrites, triangular cells, and true pyramids. Their axons all go to the white matter. Their ascending trunks, which are never lacking, become very attenuated on account of the branches given off while passing through the 4th layer and reach the 1st layer as an exceedingly delicate fibril, which ends in a fine, slightly extended, notably varicose dendritic spray.


In Fig. 81, 1 have reproduced the principal types of cells found in the polymorphic layer. Besides the medium-sized pyramidal and triangular types having long descending axons (Fig. 31, A^ J?), there occur other forms in great numbers. These are fusiform or triangular cells whose axons penetrate into the superposed layers^ furnishing to them a great



Fig. 31. — PrliidpaltyiiM of poljiDOfplite otUs from BoloreorUs of Infant atid so days. A, B^ Mtto with lonff axons aztMUaf to whito MUtar ; C, i>, JT, fnalform eaUa with aapandinf axon ; H, flaat staUata oall.


number of branches. Some of these axons seem to end in the deep layer of giant pyramids, but others appear to pass beyond this. Finally, there is no lack of arachniform cells (Fig. 81, J), cells with short axon of the sensory type of Golgi, whose axons form terminal arborizations in the layer under consideration. I may add that I have found in two cases giant stellate cells with heavy horizontal axon which gives off collaterals (Fig. 31, JST). I do not know the ultimate fate of this process and am unable to say whether these scattering cells form a constant feature of the motor cortex.


Cortex of Acoustic, Olfactory, and Associational Areas.


Unfortunately, my own researches are not as yet in a very advanced state in regard to these important cortical centres. So that any information that I can give must necessarily be fragmentary and of little value.


The acoustic resembles exactly the motor cortex as to general arrangement of cells and layers, but differs from it in a few peculiarities : (1) by the fineness of the fibres forming the plexus at the level of the layer of granules or small stellate cells ; (2) in the profusion of bipanicled cells with their very delicate and complicated neuritic brushes ; (3) above all, by the presence of certain special cells scattered irregularly through the entire thickness of the cortex. The very large axon of these special cells extends in a horizontal or oblique direction, but I have not yet been able to determine exactly its manner of termination. These large cells are fusiform and lie horizontally. From their polar dendrites spring a number of fine ascending branches, which subdivide repeatedly but do not extend up as far as the plexif orm layer.


The olfactory cortex, that of the limbic lobe, is characterized by the following peculiarities : (1) the enormous development of the plexiform layer and the presence in it, in addition to its usual structures, of the antero-posterior fibres that come from the external root of the olfactory tract; (2) the absence of the layers of small pyramids and granules; (3) the presence of certain large horizontal cells below the plexiform layer ; (4) the peculiar form of the medium- and large-sized pyramids which emit from the deep end of the cell body a brush consisting of numerous much subdivided dendrites; (5) above all, the fact that the sensory plexus, i.e. the fibres which come from the olfactory bulb, makes its terminal arborization exclusively in the plexiform layer and in the most superficial portion of that layer, corresponding to that of the small pyramids. This significant fact, brought to light by the studies of Calleja^ shows us that the sensory fibres do not end in the same level of the cortex in all regions. Hence, the layer specialized to serve as substratum for the phenomena of sensation may change its position in different sensory areas.


Our task is now drawing to its dose. My work upon the topographical structure of the cortex has been fragmentary and leaves much to be desired. Many things, in fact, are still undiscovered. But, despite the very incomplete state of my researches and the narrow limits of the field they cover, I may draw a few anatomico-physiological conclusions, of which the chief are the following : —


And first, as to the hierarchy of centres in the cortex of the human brain, comparing it with the mammalian brain, we may call to mind that, while it does not contain wholly new elements, it presents very distinctive characteristics, to wit : —


1. The enormous development of the horizontal cells of the plexiform layer and the considerable length of their so-called tangential fibres.


2. The great abundance of cells with short axons scattered throughout the whole cortex, oells which form special varieties by reason of differences in their forms and the directions of their axons.


8. The presence of cells with short axons, very slender (bipanicled spider oells), with terminal arborizations whose delicacy ia not approached by anything found in any animal.


4. The considerable development of basilar dendrites of the pyram* idal oells.


6. The presence among the mid-layers of the cortex of a formation of so-called granular cells, a kind of focus occupied by enormous numbers of pyramids with short axons descending, arched, and ascending. This granular formation is present in gyrencephalous mammals, but in them it is very poor in cells with short axons and in small pyramids. In the smooth-brained animals it is almost wholly lacking.


The human cortex has evolved, accordingly, along three different lines: by multiplying cells with long axons and, above aU, those with short axons ; by decreasing the volume of cells and the diameter of certain fibres in order to make possible within the limits of space a delicate and greatly improved organization ; finally, by varying and infinitely complicating the external morphology of the nerve elements, undoubtedly with the purpose of multiplying, in correspondence with their complexity, functional associations of all kinds.


As to differences and analogies in regional structure, the following propositions may be regarded as established: —


1. The sensory as well as the so-called associational areas are made up by a combination of two orders of structural factors. The first order consists of common factors, which show very little modification. They are represented by the plexiform layers and the layers of pyramidal and polymorphic cells. The second order comprises special factors, structures peculiar to each cortical area. Their chief anatomical feature resides especially in the granular layer and is related mainly to the presence of particular centripetal fibres and of special types of cells with long axons (stellate cells of different kinds).


2. It seems probable that the common factors perform functions of a general order concerned, possibly, with ideas of representations of all kinds of movements related to the special sensations of which the cortical region is the seat. It seems also probable that the special anatomical factors of the sensory areas perform the function of elaborating specific sensations (sensation of seeing, hearing, etc.) and also of conveying sensory residues to the so-called association centres, where they may be transformed into latent images.


8. Each sensory cortical centre receives a special category of nerve fibres (fibres of centried sensory tracts). Their cells of origin, as has b6en shown by the researches of v. Monakow, Flechsig, v. Bechterew, and many others, reside in the particular nuclei of the medulla, corpora quadrigemina, and optic thalami. It is precisely the presence of these sensory fibres of the second order that constitutes the prime anatomical characteristic of the centres of sensation or projection.


4. The absence of these sensory fibres, which come from the corona radiata, may be. used in aU mammals to distinguish the so-called association centres. These centres, which exist even in the mouse, also have a nerve fibre plexus distributed among their median layers (layer of granules in the association areas in man). The fibres, however, which constitute them are very fine and appear to come from sensory centres of the brain. Possibly the cells about which these sensorio-ideational fibres terminate represent the substratum or, at any rate, the first link in the chain of nerve elements whose function is the representation of ideas.


5. Since we have seen that each afferent fibre in the sensory cortex comes into contact with an extraordinary number of nerve cells apparently scattered without any order, we must suspect that these relations conform to the preconceived design of a well-determined and constant organization.


As, at present, it seems to be impossible to discover these relations, we may surmise that each sensory fibre comes into contact, directly or through other cells, solely with those pyramids whose stimulation is necessary in order to effect, after the manner of the reflex arc, movements coordinated and intentional. We may also surmise (supposing* that the stellate cells of the tactile and visual cortex form the link between the sensory and ideational centres) that each sensory afferent fibre, bringing a unit of sensation (the impression received by a cone of the retina or by the terminal arborization of any peripheral nerve fibre), enters into relation exclusively with the group of nerve cells entrusted with the function of conveying this impression to a particular point in the associational cortex.


Many other hypotheses are possible, but I must conclude for fear of tiring your kind and sympathetic attention and exhausting your patience. I fear that I have already made too free use of hypotheses and have pretended to fill the gaps of possible observations with arbitrary suppositions.


It is a rule of wisdom, and of nice scientific prudence as well, not to theorize before completing the observation of facts. But who is so master of himself as to be able to wait calmly in the midst of darkness until the break of dawn ? Who can tarry prudently until the epoch of the perfection of truth (unhappily as yet very far off) shall come ? Such impatience may find its justification in the shortness of human life and also in the supreme necessity of dominating, as soon as possible, the phenomena of the external and internal worlds. But reality is infinite and our intelligence finite. Nature and especially the phenomena of life show us everywhere complications, which we pretend to remove by the false mirage of our simple formula, heedless of the fact that the simplicity is not in nature but in ourselves.


It is this limitation of our faculties that impels us continually to forge simple hypotheses made to fit, by mutilating it, the infinite universe into the narrow mould of the human skulU — and this, despite the warnings of experience, which daily calls to our minds the weakness, the childishness, and the extreme mutability of our theories. But this is a matter of fate, unavoidable because the brain is only a savings-bank machine for picking and choosing among external realities. It cannot preserve impressions of the external world except by continually simplifying them, by interrupting their serial and continuous flow, and by ignoring all those whose intensities are too great or too small.


I cannot conclude this, my third and last lecture, without a word of tribute to this great people of North America, — the home of freedom and tolerance, — this daring race whose positive and practical intelligence, entirely freed from the heavy burdens of tradition and the prejudices of the schools, which weigh still so heavily on the minds of Europe, seems to be wonderfully endowed to triumph in the arena of scientific research, as it has many times triumphed in the great struggles of industrial and commercial competition.



1899 Human Sensory Cortex: 1. The Visual Cortex | 2. Layer of the Large Stellate Cells | 3. The Sensori-Motor Cortex | Figures | Cajal


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Cite this page: Hill, M.A. (2024, April 16) Embryology Book - Comparative Study of the Sensory Areas of the Human Cortex 2. Retrieved from https://embryology.med.unsw.edu.au/embryology/index.php/Book_-_Comparative_Study_of_the_Sensory_Areas_of_the_Human_Cortex_2

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