Coloration of Plants and Animals

Biology & Genetics

Also known as: Plant and Animal Coloration, Biological Significance of Coloration

Historical document, translated for reference. It reflects medical knowledge of the 1920s–30s and is not medical advice.

Summary

This article explores the biological significance of coloration in plants and animals, examining how protective and warning colorations have evolved through natural selection. It discusses various types of camouflage and warning colorations and their adaptive values in different environments.

Encyclopedia article (1928–1936)

Coloration of plants and animals (its biological significance). The coloration of animals has great biological significance. At different times, its significance has been evaluated differently. For the first time, the doctrine of the biological significance of coloration was put forward and developed by Darwinism, which evaluated all useful animal traits that could be fixed and developed through selection. In particular, Wallace analyzed, classified, and grouped the relevant facts. Charles Darwin himself devoted much attention to coloration as a secondary sexual characteristic, attributing its development to the action of sexual selection. Followers of Darwin and Wallace tended to attribute every animal coloration to usefulness, without observing due caution. At the end of the 19th and beginning of the 20th centuries, the strong anti-Darwinist movement in Western science could not but affect the question of coloration. The study of the physicochemical side of the phenomenon emerged, experiments were conducted on the significance of coloration, and the opposite opinion became widespread: every coloration is useless, being merely a consequence of physical and chemical processes in or on the animal's body. The experiments conducted often give and have given a negative answer to the question of the supposed biological significance of coloration. This happens first from an underestimation of all the complex conditions of the experiment, and secondly even more from completely incorrect conclusions drawn from them (see below). The biological significance of coloration is great, insofar as animals' dependence on enemies with well-developed visual organs (birds, mammals) is great, insofar as their dependence on prey that perceives its pursuers is great, insofar as gregariousness plays a role in their lives, forcing the young to follow the older ones for safety, and insofar as coloration facilitates the sexes' ability to find each other and to become appropriately excited, contributing to more vigorous reproduction. Different types of animal coloration can be divided into two groups according to their significance: 1. Coloration that plays a role in the relationship between enemies and prey, i.e., helping the prey to escape from the predator and allowing the predator to seize the prey unnoticed - what the Germans call Schutzfarben, or Schutztrachten (protective coloration), 2. Coloration that plays an auxiliary role in mating - Paarungstrachten. Coloration having biological significance can a) in color or pattern match the coloration of the external environment and thereby make the animal unnoticeable; it is useful to both the pursued animal and the pursuer - concealing or protective coloration; b) conversely, it can sharply highlight the animal, drawing attention to it - striking coloration. Protective coloration can make the animal unnoticeable, especially at a distance, when the main tone of the coloration merges with the surrounding environment. Such are: the white coloration of polar animals (white hare, fox, bear, owl, gyrfalcon), the grayish-yellow coloration of numerous desert beasts, birds, reptiles, insects and spiders, the green coloration of animals in tropical forests, the absence of coloration and transparency of pelagic marine animals, etc. The concealing coloration becomes even more effective when it reproduces not only the main background but also the pattern. There are butterflies that perfectly copy the pattern of the tree trunk on which they sit. The granular pattern of sand is reproduced on the surface of the desert round-headed lizard. According to Vos-seler, African desert grasshoppers on their elytra not only reproduce the coloration but also the structure of the soil; forms living on reddish soil take on a reddish hue, those living on sand take on a yellowish hue and have a fine-grained pattern; in insects living on pebbles, the coloration darkens and takes on a coarser granular character. The similarity goes even further if animals take on not only the pattern but also the shape of the object on which they sit. This includes the well-known examples of the butterfly Kallima, which in a sitting position with folded wings reproduces the shape and pattern of a withered leaf with its veins, and the hindwing projections rest on the branch where the animal sits, mimicking the leaf petiole. Our tortoiseshell butterfly with folded wings also resembles a withered leaf. This also includes various stick insects and praying mantises that reproduce the shape of twigs or leaves. Some tropical praying mantises so closely resemble flowers in color and shape that some butterflies and other insects land on them and become their victims. Many of the caterpillars of geometrid butterflies with great accuracy reproduce twigs of shrubs. Such similarity, usually called mimetic coloration, is aggravated by the animal's behavior. Insects that mimic inanimate objects are characterized by immobility. When disturbed, they remain motionless for long periods in specific poses. Thus, geometrid caterpillars stretch at an angle to the branch on which they sit, holding on with only two pairs of hind legs and perfectly imitating a dry twig sticking out sideways. Nekrasov observed how Crimean praying mantises, resembling withered leaflets on petioles, swayed slightly on their thin legs in the wind, reproducing the trembling of leaves from the wind. They repeated the same movement when placed between two window frames where the wind was strong. Weismann tells that he once found a bark moth (butterfly) Xylina on a fence near the ground. He picked it up, examined it, took it for a piece of rotten bark, and threw it away. Then he doubted and picked it up again. It was indeed a butterfly, which did not betray itself by any movement. P. Yu. Schmidt showed that stick insects (phasmatodea), whose body and legs resemble twigs to a particularly great extent, can fall into a state of true catalepsy, assuming a resting pose with extended forward legs and antennae and tense muscles. At this time, one can take a leg or another with tweezers and give the insect any pose. In the most awkward poses, it freezes and stands motionless for hours. One can even cut off the abdomen, segment by segment - it does not come out of the cataleptic state and does not make any movement. When the similarity to an inanimate object reaches such a degree, there is no need to speak of the accidental nature of mimetic coloration and its being due to convergence or orthogenesis, as some anti-Darwinists would have it. There are so many examples of protective and mimetic coloration, animals so often have to search for prey (as a flock of tits searches every bush in winter or autumn), that every adaptation making the prey less noticeable, reducing the likelihood of its discovery, is vital and must be fixed by selection. Therefore, even individual experiments (among them we note those confirming the theory of protective coloration, Chesnol's experiments of attaching praying mantises to plants of the same color and to plants of different colors where they stood out, and Poulton's observations on butterfly pupae, some of which were on a background of the same color, others on an unsuitable background) do not have important significance in themselves. Especially one must firmly object when, against the protective value of protective coloration, individual experiments and observations are cited, saying that protective coloration has not achieved its goal here or there, that the enemy "anyway" noticed the prey and that therefore the coloration has no significance. To give such an interpretation means not to understand the course of the process. Both methods of protection and methods of recognition and seizure of prey develop in parallel. "I usually ask," says Prokhnov with some wit on this subject, "is it because hares are caught by foxes that the speed of their legs has no significance at all?" Is it-we add-that the coloration of weapons to match the color of the soil, of warships to match the color of the sea, of military uniforms to match green or dusty "protective" colors in recent wars had no significance, since weapons, ships, and men were destroyed nevertheless? "Judgment as to the degree to which an insect is protected," says Prokhnov, "requires investigation of the behavior and way of life of the insectivore and study of the role this insect plays in the diet of the insectivore compared with other prey, taking into account their relative frequency." All this places us before problems of quantitative accounting of insects in nature, the methodology of which is still being developed. Striking coloration, drawing attention to itself, can have various meanings. First of all, it can be warning. Animals that have a sting, poisonous hairs, an unpleasant taste or smell, inedible animals often have bright coloration that saves them from attack. Each attempt by an inexperienced predator to attack such an animal is imprinted in its memory, and the unpleasant sensation is associated with the bright coloration. Next time it will not repeat such an attempt, and a considerable number of animals with such coloration will be saved at the cost of few victims necessary for developing the association. In stinging insects, the combination of black and yellow rings or spots is particularly common. A typical example of warning coloration in mammals is the rather bright white and black attire of the American skunk, distinguished by an incredibly strong and unpleasant smell. Here also a very large number of experiments have been conducted, giving a rather variegated picture.

Of course, warning coloration, just like protective coloration, has only relative, not absolute value, greatly reducing the percentage of those that perish. In general, experiments with insectivores confirm that warning coloration of insects repels a certain number of insectivores. A special category of coloration is so-called terrifying coloration, usually combined with some movement. Thus, in the eyed hawk-moth (Smerinthus ocellatus), the upper wings represent an example of typical dark protective coloration, but if the butterfly is disturbed, it makes a sharp movement with its body and wings, raising itself on its legs and immediately revealing the bright red lower wings with eye-like spots. These 'eyes', suddenly appearing before the pursuer, are credited with terrifying significance. Such suddenly appearing eye-like spots are also found in the caterpillars of some hawk-moths (Chaerocampa elpenor, Leucorhampa ornatus), accompanied by the swelling of the corresponding segments, and sometimes also by snake-like movements. The doctrine of terrifying coloration was particularly developed by Günther in Germany and by Faussek in our country. However, it has been subjected to largely justified criticism (Nikolsky), and the number of cases belonging to this category is hardly large. The examples given above are in essence close to the third category of striking colorations, bearing the name of mimicry, or mimicry (see) in the narrow sense of the word, and which could be called false-warning coloration. In addition to those mentioned, there is another category of eye-catching colorations. This is recognition coloration, or recognition marks, well visible even from a distance in herd animals, for example, the white raised tail of a rabbit, white spots on the rump of a number of herd mammals (antelopes, deer, roe deer, chamois), etc. According to Wallace's interpretation, who turned his attention to this phenomenon, the white tail or white spot on the rump of a fleeing leading animal serves as an indicator or signal for all younger and weaker ones, which under the guidance of older, more experienced leaders can more quickly reach a safe place. Birds that keep in flocks, even with generally protective coloration, are distinguished by such often light recognition marks on the breast, head, neck, eyebrows, wings, tail feathers, etc. Spots on the wings and tail often appear only during flight. Recognition marks can also play a role during the breeding period, helping the sexes to find an individual of the opposite sex of the same species. Thus, some explain to themselves the bright coloration of insects, especially butterflies, visible during their flight. However, the question of whether insects see colors has long been a subject of dispute. Hess, for example, completely denied the ability of bees to see colors, but the experiments of Prochnow and Frisch definitely prove, although perhaps limited, color vision in bees. In any case, many insects find the opposite sex more by smell or by sounds emitted by the opposite sex than by color. Very large disputes have arisen about the significance and origin of coloration that is a secondary sexual characteristic, i.e., characteristic of one sex. Darwin attributed its origin to sexual selection. Coloration of plants. The biological significance in plants lies in the bright coloration of fruits and flowers. The bright coloration of nectar-rich flowers ensures cross-fertilization with the help of insects (Frisch, by 'training' bees to a certain color, proved that they distinguish it), and the attractive and alluring colors of fruit tree fruits draw the attention of frugivorous birds and beasts that search for and eat them. In this process, the seeds of the fruits or pits pass undigested through the animal's body and then fall into the most favorable conditions for germination. That bright coloration is really useful for the plant and can be considered as a result of natural selection is evident from the fact that such coloration appears no earlier than the fruit ripens, i.e., only when the seeds have already reached full maturity and ability to germinate. The seeds and nuts, digested by the animals that eat them, are usually colored on the plant in a green protective color, and fall to the ground having turned brown.

A- Nekrasov. Development of coloration. Changes in animal coloration associated with age, sex, habitat, and various influences have been subjected to experimental investigation many times. However, despite the large number of works devoted to this question, the essence of the process of coloration development remains insufficiently clarified to this day. The study of coloration development was carried out along the line of clarifying those factors external to the pigment formations that influence the appearance, disappearance, and change of coloration. In relation to pigment tissue or pigmented derivatives of the epidermis, external factors include not only the surrounding temperature, humidity, illumination, etc., but also influences originating from other parts of the organism (nervous, humoral impulses, etc.). The convenience of systematizing the extensive factual material forces one to conventionally attribute the latter type of influences to the group of so-called internal factors, since their source is localized within the organism. Influence of light and soil coloration. Cunningham studied the coloration of flounder (Pleuronectes platessa). An adult fish lying motionless on its side has dark coloration only on the right, upward-facing side. By placing young flounder in an aquarium with a glass bottom illuminated from below, Cunningham achieved the appearance of pigmentation on the left, usually uncolored side. In animals deprived of light under normal habitat conditions, coloration is often absent. The effect of light on proteus (Kammerer) and the mollusk Lithodomus causes them to form pigment. Kammerer placed the fire salamander (Salamandra maculosa) in terrariums with differently colored soil (black and yellow). When kept on a yellow background, the amount of orange-yellow pigment increased at the expense of the black, while black soil had the opposite effect. Kammerer's data have been confirmed by Přibram and Herbst (Pribram, Herbst). The influence of a colored background or colored light rays on the coloration of butterfly pupae was studied by Dürken, Breker, and Vladimirsky. All the aforementioned authors established that in light and under the influence of a light background, the coloration of pupae becomes lighter. The necessity of sunlight for the occurrence of green coloration in plants, which depends on the presence of chlorophyll, follows from the fact that in darkness plants produce almost or completely white (etiolated) shoots. Influence of food. The coloration of the abdomen in Drosophila, determined by the abnormal-abdomen gene, depends on the nature of the food, manifesting in varying degrees of expression of transverse stripes. Some authors fed caterpillars of the geometrid with hawthorn leaves, the branches of which were standing in a solution of lead or manganese salts, and obtained darker than usual butterflies. The same result was obtained if caterpillars were given leaves taken from an industrial area, carrying a deposit of metal salts. Influence of temperature and humidity. The influence of changed temperature on butterfly coloration was established by Dorfmeister (Dorfmeister, 1864). As a result of many years of experiments, Standfuss and Fischer showed that raising pupae of the tortoiseshell butterfly and other butterflies at both high and low temperatures leads to the appearance of more darkly pigmented butterflies. The coloration of flowers of the Chinese primrose (Primula sinensis) is in close dependence on temperature and humidity. At normal temperature and moderate humidity, the flowers are colored red. An increase in temperature and humidity leads to the appearance of white flowers. The combined action of elevated (up to 35°) temperature and lack of moisture in Tower's experiments led to a change in coloration of the Colorado potato beetle (Leptinotarsa decemlineata). Experiments on some mammals are of great importance for understanding the processes of coloration development. Schulz (Schulz, 1915) showed that ermine rabbits change their coloration under the influence of temperature. White fur on the side or back after shaving and placement in conditions of low temperature is replaced by black (fig. 1). These data have been confirmed by L. Kaufman and thoroughly investigated by Ilyin, who showed that the black coloration of the ears, nose, tail, and extremities in ermine rabbits also depends on temperature. The keeping of rabbits with plucked black fur in conditions of high temperature leads to the replacement of black hairs with white ones (fig. 2). These phenomena depend on the difference in the thresholds of irritation of various parts of the body to temperature effects. The normal coloration of the ermine rabbit is also the result of the response of pigment-forming elements of the skin to temperature effects. In addition to ermine rabbits, similar reactions are given by guinea pigs, so-called Castle albinos with similar coloration, Siamese cats, and probably some other animals. The ability of Castle albino guinea pigs to respond to temperature effects allowed Ilyin to solve the question of their genetic constitution, i.e., to establish whether they are true albinos possessing the a gene, or they are similar to ermine rabbits and have the constitution A1. Genetic analysis in this case was impossible, since completely white guinea pigs are not encountered, and both genes a and A1 are recessive to the main coloration gene A. Analysis of the temperature response showed that Castle albino guinea pigs are not true albinos of the a type, but carry the A1 gene similar to ermine rabbits. Influence of the nervous system has been studied insufficiently. There are data that cutting peripheral nerves leads to discoloration of the corresponding part of the body in fish. On the same object, the influence of visual sensations has been shown. These materials to a greater extent relate to the physiology of the pigment system than to the analysis of coloration development. Hormonal influences. Thyroid gland. The influence of the thyroid gland on animal coloration was studied by means of inducing artificial hyperthyroidism. Placing aquatic animals in a suspension of thyroid gland preparations or administering it to terrestrial animals orally or parenterally cannot claim to imitate the corresponding physiological and pathological phenomena. All the more, experiments with artificial hyperthyroidism are unable to solve the question of the role of this gland in coloration development. At the same time, the data presented below allow establishing the fact of hormonal influence on coloration and approaching the clarification of the essence of the processes of its development. A number of authors established that feeding chickens with thyroid gland substance or its preparations leads to molting and then to a change in coloration of the newly growing feathers. Thus, B. Zavadovsky, Giacomini, and others established the fact of partial, sometimes far-reaching depigmentation of black chickens (fig. 3), whereas Crew, on the one hand, and Torrey and Horning, on the other, noted in Wyandottes an intensified formation of black pigment. M. Zavadovsky and R. Belkin in experiments with hyperthyroidism in pheasants showed that the nature of the change in coloration depends on the amount of thyroid gland preparation administered (fig. 4a and 4b). Apparently, the different results of the experiments of the aforementioned authors must be attributed to different dosages of the thyroid preparation. The possibility of depigmentation of mammals in hyperthyroidism was initially denied. Recently, Ilyin (1931) succeeded in achieving depigmentation in rabbits by administering thyroid gland preparations. Figure 1. Influence of low temperature (around 0°) on the coloration of fur in an ermine rabbit. Growth of black hairs instead of white ones on the back and croup. (After Ilyin.) Figure 2. Growth of white hairs instead of black ones on the base of the ears of an ermine rabbit under the influence of high temperature (around +30°). (After Ilyin.) Fig. 3. Influence of hyperthyroidism on the plumage coloration of pheasants. On the right-normal male pheasant. On the left-male pheasant with depigmented plumage after feeding with thyroid gland preparation. (After Zavadovsky and Belkin.) Figure 4. On the right-tail feather of a normal pheasant (male). On the left-similar feather of a pheasant after feeding with thyroxine. Result of the experiment-hyperpigmentation (dark stripes wider). (After Zavadovsky and Belkin.) Figure 5. Normal amblystoma. Medium-sized white spots appearing during metamorphosis under the influence of thyroid gland preparations. (After Vorontsova.) Figure 6. Amblystoma obtained from an axolotl under the influence of injections of pituitary gland preparation; white spots completely absent. (After Vorontsova.) Figure 7. Tadpole Rana aurora Dratonyii-normal; dark coloration. (After Smith.) Figure 8. Tadpole Rana aurora Dratonyii, depigmented as a result of early removal of the pituitary gland; 'silvery' coloration. (After Smith.) Figure 9. On the left-normal axolotl of the black race. On the right-black axolotl, depigmented as a result of pituitary removal. (After Blyakher.) Figure 10. On the left-normal white axolotl, in the middle-normal black axolotl, on the right-white axolotl, hyperpigmented as a result of implantation under the skin of several pituitary glands from axolotls. (After Vorontsova.) Figure 11. Photomicrograph of a flat preparation of skin from a normal black axolotl. Pigment cells in a state of expansion. (After Vorontsova.) Figure 12. Photomicrograph of a flat preparation of skin from a hypophysectomized black axolotl. A distinct contraction of melanophores is noticeable. (After Vorontsova.) Figure 13. Photomicrograph of a flat preparation of skin from a normal white axolotl.

There are few pigment cells, but all of them are in a state of expansion. (According to Vorontsova.) (For illustration to the article Coloration.) See article Coloration. of the growth of white or pale-colored hairs on the ears of an ermine rabbit at low t° after feeding thyroid tablets. In control animals, the coloration of the ears remained black. On the contrary, removal of the thyroid gland in an ermine rabbit and Siamese cat led to hyperpigmentation. Thus, at t° 34°, black hairs grow again in place of the removed black hairs on the ear, whereas in unoperated animals, even at t° +25-27°, the black hairs on the ears are replaced by white ones. Ilyin interprets his results as a consequence of a change in the threshold of skin irritation to temperature irritation. (In hyperthyroidism, the irritation threshold is lowered, in thyroidectomy it is raised.) In amphibians, hyperthyroidism also leads to a change in coloration. The axolotl, which has a solid black-brown coloration, when transformed into an amblystoma usually becomes covered with white spots (fig. 5). The coloration of the axolotl is connected with the activity of the pituitary gland. Vorontsova's work showed that depigmentation in hyperthyroidism depends on a mosaic increase in the threshold of skin irritation in relation to the pituitary hormone. The simultaneous effect of a thyroid gland preparation and pituitary gland leads to the appearance of completely black amblystomas (fig. 6).-(The influence of sex hormones on coloration and the influence of thyroid hormone on sexual color characteristics-see Sex.) Pituitary gland. The influence of the pituitary hormone on the coloration of amphibians has been studied in great detail. Removal of the pituitary gland anlage in frog embryos led to the appearance of decapitated tadpoles (fig. 7). A similar operation in axolotl and newt frogs (Hogben, Blyakher) also resulted in depigmentation (fig. 8). This result is a consequence of the contraction of black pigment cells (melanophores) and a decrease in their number (fig. 9). Reverse implantation of the pituitary gland leads to complete restoration of coloration, the slower the greater the time that has passed since hypophysectomy. The white race of axolotls has a significantly smaller number of pigment cells than the black one. The matter here is not in the reduced activity of the white race, but, as Vorontsova showed, in the reduced susceptibility of the skin of the white axolotl to the action of the pituitary hormone. Implantation of several additional pituitary glands into a white axolotl leads to significant darkening, especially of the head and part of the back (fig. 10). The number of pigment cells at this time increases unusually. From Vorontsova's experiments it follows that the difference in coloration of the two races of axolotls is based not on a difference in the formative activity of the pituitary hormone, but on a difference in the properties of the skin. The coloration of amphibians is affected by adrenaline in a very distinct way. Lieben and then Vorontsova showed that the melanophores of amphibians respond to adrenaline injections with a sharp contraction, which, however, does not last long. A similar effect of adrenaline is not limited to amphibians; the melanophores of fish react to adrenaline in a similar way. In the vermillion-spotted newt (Diemyctibus viridescens), Collins and Adolf did not detect the usual contracting effect of adrenaline on melanophores. This amphibian is generally distinguished by peculiarities of pigment reaction. Injection of pituitrin causes contraction, and not expansion, of melanophores in it. The reaction of expansion of pigment cells to the introduction of pituitary hormone can also be caused by a number of other irritants. Vorontsova showed that intraperitoneal injection into hypophysectomized axolotls of emulsions from various organs (muscle, brain, etc.), as well as various organic (fibrin, peptone, glucose) and even inorganic substances (NaCl solution) causes darkening of the skin due to expansion of pigment cells. The effect of the listed substances in vitro on surviving pieces of skin also leads to expansion of melanophores. The pituitary hormone is thus not a specific irritant for the pigment system of amphibians. There are a number of substances that act on melanophores with varying degrees of intensity; the pituitary hormone is still ahead in terms of strength of action. Allen's data on the differential study of individual lobes of the pituitary gland in relation to their influence on the coloration of amphibians boil down to establishing the fact that the active principle is produced in the cerebral and possibly in the intermediate part of the gland. The mechanism of coloration change under various hormonal influences is insufficiently studied. This especially applies to birds, in which pigmented epidermal formations (feathers) have a very complex structure. In amphibians, the contraction of melanophores probably depends on the migration of melanin granules from the processes to the center of the pigment cell. The star-shaped form of the cell is preserved in this case. On the contrary, during expansion, melanin granules fill the processes of the melanophore. The deep depigmentation of amphibians after removal of the pituitary gland is apparently connected with the breakdown of pigment cells and with the release of melanin grains, which pass into the peripheral layers of the skin and are removed during molting. This process is very clearly observed in hypophysectomized toads and Spanish tritons (Pleurodeles Waltlii) (Blyakher). The mechanism of the development of coloration in many animals is still not sufficiently clear. The striped and spotted coloration of mammals, the bright coloration of birds and insects, the extraordinary examples of adaptive coloration have received a clear interpretation in the aspect of the history of the species, but have not been studied at all from the point of view of the mechanics of individual development. The attempts made in this regard by Haecker cannot yet be considered successful. (On the inheritance of coloration-see Drosophila, Rabbits, Mice.) l. Blyakher.

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“Coloration of Plants and Animals.” Soviet Medical Encyclopedia. English translation of Bolshaya Meditsinskaya Entsiklopediya, 1st ed. (Moscow, 1928–1936), ed. N. A. Semashko. https://sovietmedicalencyclopedia.pages.dev/article/coloration-of-plants-and-animals/