The Principles of Biology, Volume 2 (of 2)Spencer, Herbert
Science
The Principles of Biology, Volume 2 (of 2)
Spencer, Herbert
Biology
Even in such simple types as the _Hydrozoa_, cavities in the tissues
faintly indicate a structure which facilitates the transfer of
nutritive matters. These cavities become reservoirs filled with the
plasma that slowly oozes through the substance of the body; and every
movement of the animal, accompanied as it must be by changed pressures
and tensions on these reservoirs, tends here to fill them and there to
squeeze out their contents in that or the other direction--possibly
aiding to produce, by union of several cavities, those lacunæ or
irregular canals which the body in some cases presents.
Irregular canals of this kind, not lined with any membranes but being
simply cavities running through the flesh, mainly constitute the
vascular system in _Polyzoa_ and _Brachiopoda_ and some _Mollusca_.
Though the central parts of a vascular system are rudely developed, yet
its peripheral parts consist of sinuses permeating the tissues. The
higher orders of _Mollusca_ have a more-developed system of vessels or
arteries, which run into the substance of the body and end in lacunæ or
simple fissures. This ending in lacunæ takes place at various distances
from the vascular centre. In some genera the arterial structure is
carried to the periphery of the blood-system, while in others it stops
short midway. Throughout most orders of the _Mollusca_ the back
current of blood continues to be carried by channels of the original
kind: there are no true veins, but the blood having been delivered
into the tissues, finds its way back to the peri-visceral cavity
through inosculating sinuses. Among the Cephalopods, however, the
afferent blood-canals, as well as the efferent ones, acquire distinct
walls. On putting together these facts, we may conceive pretty clearly
the stages of vascular development. From the original reservoir of
nutritive liquid between the alimentary canal and the wall of the body,
a portion partially shut off becomes a contractile vessel; and by its
actions there is produced a more rapid transfer of the nutritive liquid
than was originally produced by the motions of the animal. Clearly,
the extension of this contractile tube and the development from it
of branches running hither and thither into the tissues, must, by
defining the channels of blood throughout a part of its course, render
its distribution more regular and active. As fast as this centrifugal
growth advances, so fast are the efferent currents of blood, prevented
from escaping laterally, obliged to move from the centre towards
the circumference; and so fast also does the less developed set of
channels become, of necessity, occupied by afferent currents. When, by
a parallel increase of definiteness, the lacunæ and irregular sinuses
through which the afferent currents pass, become transformed into
veins, the accompanying disappearance of all stagnant or slow-moving
collections of blood, implies a further improvement in the circulation.
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