The elementary phenomenon of life is the contact between an alimentary
liquid and a cell. For the essential phenomenon of life is nutrition, and
in order to be assimilated all the elements of an organism must be brought
into a state of solution. Hence the study of life may be best begun by the
study of those physico-chemical phenomena which result from the contact of
two different liquids. Biology is thus but a branch of the
physico-chemistry of liquids; it includes the study of electrolytic and
colloidal solutions, and of the molecular forces brought into play by
solution, osmosis, diffusion, cohesion, and crystallization.
In this volume I have endeavoured to give as much of the science of
energetics as can be treated without the use of mathematical formulae; the
conception of entropy and Carnot's law of thermodynamics are also
discussed.
The phenomena of catalysis and of diastatic fermentation have for the first
time been brought under the general laws of energetics. This I have done by
showing that catalysis is only one instance of the general law of the
transformation of potential into kinetic energy, viz. by the intervention
of a foreign exciting and stimulating energy which may be infinitely
smaller than the energy it transforms. This conception brings life into
line with other catalytic actions, and shows us a living being as a store
of potential energy, to be set free by an external stimulus which may also
excite sensation.
In a subsequent chapter I have dealt with the rise of Synthetic Biology,
whose history and methods I have described. It is only of late that the
progress of physico-chemical science has enabled us to enter into this
field of research, the final one in the evolution of biological science.
The present work contains some of the earliest results of this synthetic
biology. We shall see how it is possible by the mere diffusion of liquids
to obtain forms which imitate with the greatest accuracy not only the
ordinary cellular tissues, but the more complicated striated structures,
such as muscle and mother-of-pearl. We shall also see how it is {xv}
possible by simple liquid diffusion to reproduce in ordered and regular
succession complicated movements like those observed in the karyokinesis of
the living cell.
The essential character of the living being is its Form. This is the only
characteristic which it retains during the whole of its existence, with
which it is born, which causes its development, and disappears with its
death. The task of synthetic biology is the recognition of those
physico-chemical forces and conditions which can produce forms and
structures analogous to those of living beings. This is the subject of the
chapter on Morphogenesis.
Public-domain text, read in full here on John Shaqi.
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