The Biological Problem of To-day: Preformation Or Epigenesis?: The Basis of a Theory of Organic DevelopmentHertwig, Oscar
Science
The Biological Problem of To-day: Preformation Or Epigenesis?: The Basis of a Theory of Organic Development
Hertwig, Oscar
Developmental biology; Embryology; Genetics
A few examples will make clear this important relation. A limit is set to
increase in the size of a blastosphere by the nature of the material of its
walls. Its wall is a membrane, composed of one or more layers of cells;
that this may preserve its curvature, a definite pressure from within must
be maintained, proportioned to the cohesive force of the cells; at the same
time the wall of the sphere must be able to withstand the strain and
pressure put upon it by external forces. All these, and many other factors
less easy to conceive, must be delicately adjusted to one another. If in
any direction a definite limit be exceeded, then either the structure will
be destroyed by disintegration of the component parts, or a new shape will
be assumed. The latter is the event in the case of a living substance
capable of reaction. The blastosphere, growing beyond its limits, folds
into a cup-shaped organism. Did we know all the influences affecting the
wall of the blastosphere, then we would understand the causes by which
growth beyond a definite limit must result in invagination. From the
occurrence of the gastrula in all the divisions of the animal kingdom, we
may conclude that it is a temporary phase, inevitable in the growth of
animals.
There may be noticed here a second connection between shape and organic
growth, exceedingly simple in its nature, but of fundamental importance in
its consequences. It may be stated in this saying: Growth always must be
such as to produce the greatest possible extension of surface. The reason
of this is simple, depending on the different natures of inorganic material
and living organic material.
A crystal in its mother liquor grows by attracting new particles and
depositing them upon its outer surface, according to the kind of
crystallisation peculiar to the material of which it is composed. These
particles, once crystallised, retain their position even when new layers
are deposited on their outer surfaces, and remain unchanged, perhaps, like
rock crystals, for thousands of years, until changed outer forces loosen
the bonds that bind them.
Organised material cannot grow in this fashion; it takes up material from
without, not, like the crystal, arranging it on the outer surface, but
ingesting it. Protoplasm cannot become fixed in any condition without being
destroyed; it exhibits perpetual interchanges with the outer world;
unceasing intake and output is a necessary accompaniment of its life. 'The
growth of idioplasm,' as Naegeli strikingly says, 'implies a constancy of
perpetual change.'
Public-domain text, read in full here on John Shaqi.
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