The physical cause and origin of these S-shaped partitions is somewhat
obscure, but we may attempt a tentative explanation. When we assert
a tendency for the cell to divide transversely to its long axis, we
are not only stating empirically that the partition tends to appear
in a small, rather than a large cross-section of the cell: but we
are also implicitly ascribing to the cell a longitudinal _polarity_
(Fig. 143, A), and implicitly asserting that it tends to {357}
divide (just as the segmenting egg does), by a partition transverse
to its polar axis. Such a polarity may conceivably be due to a
chemical asymmetry, or anisotropy, such as we have learned of (from
Professor Macallum’s experiments) in our chapter on Adsorption. Now
if the chemical concentration, on which this anisotropy or polarity
(by hypothesis) depends, be unsymmetrical, one of its poles being
as it were deflected to one side, where a little branch or bud is
being (or about to be) given off,—all in precise accordance with the
adsorption phenomena described on p. 289,—then our “polar axis” would
necessarily be a curved axis, and the partition, being constrained
(again _ex hypothesi_) to arise transversely to the polar axis, would
lie obliquely to the _apparent_ axis of the cell (Fig. 143, B, C).
And if the oblique partition be so situated that it has to meet the
_opposite_ walls (as in C), then, in order to do so symmetrically (i.e.
either perpendicularly, as when the cell-wall is already solidified,
or at least at equal angles on either side), it is evident that the
partition, in its course from one side of the cell to the other, must
necessarily assume a more or less S-shaped curvature (Fig. 143, D).
Public-domain text, read in full here on John Shaqi.
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