The Chemistry of Plant LifeThatcher, Roscoe Wilfred
Science
The Chemistry of Plant Life
Thatcher, Roscoe Wilfred
Botanical chemistry
The chlorophylls are, of course, the regulator of photosynthesis, absorbing
solar energy with which the photosynthetic process may be brought about.
The simultaneous presence of carotinoids in varying amounts undoubtedly
serves to modify the amount and character of the radiant energy absorbed,
as these pigments absorb a different part of the spectrum of light and
hence undoubtedly produce a different chemical activity or "actinic effect"
of the absorbed energy. The variations in depth of color of foliage during
different growing conditions, from a pale yellow when conditions are
unfavorable and growth is slow to the rich dark green of more favorable
conditions, is a familiar phenomenon. Whether this change in pigmentation
is the result of an adjustment of the plant protoplasm, so that it can
absorb a more highly actinic portion of the light, or is a direct effect of
the lack of conditions favorable to chlorophyll-production and active
photosynthesis, has not yet been determined.
But there must be some influence other than response to environmental
conditions which controls the vegetative color in plants, since shrubs, or
trees, which have green, yellow, red, and purple leaves, respectively, will
grow normally, side by side, under identical external conditions of
sunlight, moisture supply, etc. The hereditary influence must completely
overshadow the apparent normal self-adjustment of pigment to
energy-absorbing needs, in all such cases.
Again, it appears that there is some definite connection between pigment
content and respiration. It is known, of course, that the gaseous exchanges
involved in animal respiration are accomplished through the reversible
change of hæmoglobin to oxyhæmoglobin, these being the characteristic blood
pigments. The easy change of carotin, C_{40}H_{56}, to xanthophyll,
C_{40}H_{56}O_{2}, and _vice versa_, and the reversible changes of the
yellow anthoxanthins to the red anthocyanins, under the influence of the
oxidizing and reducing enzymes which are universally present in plants,
would indicate the possibility of the service of these pigments as carriers
of oxygen for respiratory activities in plants in a way similar to that in
which the blood pigments serve this purpose in the animal body. The fact,
which has been observed in connection with the experimental studies of the
development of the lycopersicin, that tomatoes which normally would become
red remain yellow in the absence of oxygen, indicates that this
pigmentation, at least, is definitely connected with oxygen supply; and the
further fact that the development of lycopersicin in red tomatoes, red
peppers, etc., is dependent upon the temperature at which the fruit ripens,
may indicate a definite connection of this pigment with the need for more
oxygen (or for more heat, as suggested in the following paragraph) at these
lower temperatures.
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