The Principles of Biology, Volume 1 (of 2)Spencer, Herbert
Science
The Principles of Biology, Volume 1 (of 2)
Spencer, Herbert
Biology
What special transformations of force generate these various mechanical
changes, we do not, in most cases, know. Those re-distributions of liquid,
with the alterations of form sometimes caused by them, that result from
osmose, are not, indeed, incomprehensible. Certain motions of plants which,
like those of the "animated oat," follow contact with water, are easily
interpreted; as are also such other vegetal motions as those of the
Touch-me-not, the Squirting Cucumber, and the _Carpobolus_. But we are
ignorant of the mode in which molecular movement is transformed into the
movement of masses, in animals. We cannot refer to known causes the
rhythmical action of a Medusa's disc, or that slow decrease of bulk which
spreads throughout the mass of an _Alcyonium_ when one of its component
individuals has been irritated. Nor are we any better able to say how the
insensible motion transmitted through a nerve, gives rise to sensitive
motion in a muscle. It is true that Science has given to Art several
methods of changing insensible into sensible motion. By applying heat to
water we vaporize it, and the movement of its expanding vapour we transfer
to solid matter; but evidently the genesis of muscular movement is in no
way analogous to this. The force evolved in a galvanic battery or by a
dynamo, we communicate to a soft iron magnet through a wire coiled round
it; and it would be possible, by placing near to each other several magnets
thus excited, to obtain, through the attraction of each for its neighbours,
an accumulated movement made up of their separate movements, and thus
mechanically to imitate a muscular contraction. But from what we know of
organic matter there is no reason to suppose that anything analogous to
this takes place in it. We can, however, through one kind of molecular
change, produce sensible changes of aggregation such as possibly might,
when occurring in organic substance, cause sensible motion in it. I refer
to change that is allotropic or isomeric. Sulphur, for example, assumes
different crystalline and non-crystalline forms at different temperatures,
and may be made to pass backwards and forwards from one form to another, by
slight variations of temperature: undergoing each time an alteration of
bulk. We know that this allotropism, or rather its analogue isomerism,
prevails among colloids--inorganic and organic. We also know that some of
these metamorphoses among colloids are accompanied by visible
re-arrangements: instance hydrated silicic acid, which, after passing from
its soluble state to the state of an insoluble jelly, begins, in a few
days, to contract and to give out part of its contained water. Now
considering that such isomeric changes of organic as well as inorganic
colloids, are often rapidly produced by very slight causes--a trace of a
neutral salt or a degree or two rise of temperature--it seems not
impossible that some of the colloids constituting muscle may be thus
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