Anatomy, Comparative; Embryology, Human; Evolution; Human beings -- Origin
(FIGURE 1.52. Ovum of a deep-sea bony fish. b protoplasm of the
stem-cell, k nucleus of same, d clear globule of albumin, the
nutritive yelk, f fat-globule of same, c outer membrane of the ovum,
or ovolemma.)
There are many difficulties in the way of understanding this partial
segmentation and the gastrula that arises from it. We have only
recently succeeded, by means of comparative research, in overcoming
these difficulties, and reducing this cenogenetic form of gastrulation
to the original palingenetic type. This is comparatively easy in the
small meroblastic ova which contain little nutritive yelk--for
instance, in the marine ova of a bony fish, the development of which I
observed in 1875 at Ajaccio in Corsica. I found them joined together
in lumps of jelly, floating on the surface of the sea; and, as the
little ovula were completely transparent, I could easily follow the
development of the germ step by step. These ovula are glossy and
colourless globules of little more than the 50th of an inch. Inside a
structureless, thin, but firm membrane (ovolemma, Figure 1.52 c) we
find a large, quite clear, and transparent globule of albumin (d). At
both poles of its axis this globule has a pit-like depression. In the
pit at the upper, animal pole (which is turned downwards in the
floating ovum) there is a bi-convex lens composed of protoplasm, and
this encloses the nucleus (k); this is the formative yelk of the
stem-cell, or the germinal disk (b). The small fat-globule (f) and the
large albumin-globule (d) together form the nutritive yelk. Only the
formative yelk undergoes cleavage, the nutritive yelk not dividing at
all at first.
The segmentation of the lens-shaped formative yelk (b) proceeds quite
independently of the nutritive yelk, and in perfect geometrical order.
When the mulberry-like cluster of cells has been formed, the
border-cells of the lens separate from the rest and travel into the
yelk and the border-layer. From this the blastula is developed; the
regular bi-convex lens being converted into a disk, like a
watch-glass, with thick borders. This lies on the upper and less
curved polar surface of the nutritive yelk like the watch glass on the
yelk. Fluid gathers between the outer layer and the border, and the
segmentation-cavity is formed. The gastrula is then formed by
invagination, or a kind of turning-up of the edge of the blastoderm.
In this process the segmentation-cavity disappears.
The space underneath the entoderm corresponds to the primitive
gut-cavity, and is filled with the decreasing food-yelk (n). Thus the
formation of the gastrula of our fish is complete. In contrast to the
two chief forms of gastrula we considered previously, we give the name
of discoid gastrula (discogastrula, Figure 1.54) to this third
principal type.
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