the whole seemed to widen rather than to narrow the enormous gap that
separates even the lowest forms of life from the inorganic world.”
(“The Cell,” 2nd edit., pp. 433, 434.)
§ 5. A “New” Theory of Abiogenesis
Since true science is out of sympathy with baseless conjectures and
gratuitous assumptions, one would scarcely expect to find scientists
opposing the inductive trend of the known facts by preferring mere
possibilities (if they are even such) to solid actualities. As a matter
of fact, however, there are not a few who obstinately refuse to abandon
preconceptions for which they can find no factual justification. The
bio-chemist, Benjamin Moore, while conceding the bankruptcy of the
old theory of spontaneous generation, which looked for a _de novo_
origin of living cells in sterilized cultures, has, nevertheless,
the hardihood to propose what he is pleased to term a _new_ one.
Impressed by the credulity of Charlton Bastian and the autocratic tone
of Schäfer, he sets out to defend as plausible the hypothesis that
the origination of life from inert matter may be a contemporaneous,
perhaps, daily, phenomenon, going on continually, but invisible to us,
because its initial stages take place in the submicroscopic world.
By the time life has emerged into the visible world, it has already
reached the stage at which the law of genetic continuity prevails,
but at stages of organization, which lie below the limit of the
microscope, it is not impossible, he thinks, that abiogenesis may
occur. To plausibleize this conjecture, he notes that the cell is a
natural unit composed of molecules as a molecule is a natural unit
composed of atoms. He further notes, that, in addition to the cell,
there is in nature another unit higher than the monomolecule, namely,
the _multimolecule_ occurring in both crystalloids and colloids.
The monomolecule consists of atoms held together by atomic valence,
whereas the multimolecule consists of molecules whose atomic valence
is completely saturated, and which are, consequently, held together by
what is now known as _molecular_ or _residual valence_. Moore cites
the crystal units of sodium bromide and sodium iodide as instances of
multimolecules. The crystal unit of ordinary salt, sodium chloride, is
an ordinary monomolecule, with the formula NaCl. In the case of the
former salts the crystal units consist of multimolecules of the formula
NaB·(H₂O)₂ and NaI·(H₂O)₂, the water of crystallization not being
mechanically confined in the crystals, but combined with the respective
salt in the exact ratio of two molecules of water to one of the salt.
Judged by all chemical tests, such as heat of formation, the law of
combination in fixed ratios, the manifestation of selective affinity,
etc., the multimolecule is quite as much entitled to be considered a
natural unit as is the monomolecule.
Public-domain text, read in full here on John Shaqi.
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