Anatomy, Comparative; Embryology, Human; Evolution; Human beings -- Origin
The most suitable and most available objects of study in this class are
the eggs of our indigenous amphibia, the tailless frogs and toads, and
the tailed salamander. In spring they are to be found in clusters in
every pond, and careful examination of the ova with a lens is
sufficient to show at least the external features of the segmentation.
In order to understand the whole process rightly and follow the
formation of the germinal layers and the gastrula, the ova of the frog
and salamander must be carefully hardened; then the thinnest possible
sections must be made of the hardened ova with the microtome, and the
tinted sections must be very closely compared under a powerful
microscope.
The ova of the frog or toad are globular in shape, about the twelfth of
an inch in diameter, and are clustered in jelly-like masses, which are
lumped together in the case of the frog, but form long strings in the
case of the toad. When we examine the opaque, grey, brown, or blackish
ova closely, we find that the upper half is darker than the lower. The
middle of the upper half is in many species black, while the middle of
the lower half is white.[21] In this way we get a definite axis of the
ovum with two poles. To give a clear
idea of the segmentation of this ovum, it is best to compare it with a
globe, on the surface of which are marked the various parallels of
longitude and latitude. The superficial dividing lines between the
different cells, which come from the repeated segmentation of the ovum,
look like deep furrows on the surface, and hence the whole process has
been given the name of furcation. In reality, however, this
“furcation,” which was formerly regarded as a very mysterious process,
is nothing but the familiar, repeated cell-segmentation. Hence also the
segmentation-cells which result from it are real cells.
[21] The colouring of the eggs of the amphibia is caused by the
accumulation of dark-colouring matter at the animal pole of the ovum.
In consequence of this, the animal cells of the ectoderm are darker
than the vegetal cells of the entoderm. We find the reverse of this in
the case of most animals, the protoplasm of the entoderm cells being
usually darker and coarser-grained.
Fig.40. The cleavage of the frog’s ovum. Fig. 40—The cleavage of the
frog’s ovum (magnified). A stem-cell. _ B_ the first two
segmentation-cells. _C_ four cells. _ D_ eight cells (4 animal and 4
vegetative). _E_ twelve cells (8 animal and 4 vegetative). _F_ sixteen
cells (8 animal and 8 vegetative). _G_ twenty-four cells (16 animal and
8 vegetative). _H_ thirty-two cells. _I_ forty-eight cells. _K_
sixty-four cells. _L_ ninety-six cells. _M_ 160 cells (128 animal and
32 vegetative).
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