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R Bauchot

Publications and source records attributed to R Bauchot.

At least 19 recordsLinked to original sources

[Quantitative analysis of the teleost brain: evolutionary and adaptive characteristics of encephalization. III. Multivariate analysis of the cephalic index].

A multivariate analysis of 9 brain indices from 83 teleost species showed a marked opposition between the non-olfactory telencephalon (and diencephalon) and the medulla oblongata (phylogenetic characters) and between the olfactory bulbs and the optic tectum (adaptive characters). Results of three different classifying algorithms allowed determination of 6 stable groupings and 9 intermediate ones, some with systematic importance and some purely adaptive. For this reason brain organization criteria must be used with precaution for systematic purposes. Nevertheless, the position of Brotula multibarbata showed that this fish is an evolved acanthopterygian.

Adaptation, Physiological

[Quantitative analysis of the teleost brain: evolutionary and adaptive features of encephalization. II. Primary brain subdivisions].

1. Frequently there is an opposition between olfactory and visual senses. Fresh water fishes are generally macrosomatic and microptic, marine fishes (especially coral reef fishes) are microsmatic and macroptic while piscivorous pelagic fishes are macrosmatic and macroptic. 2. The importance of the cerebellum is a function of both the fish's activity level and its body size. 3. There is a marked opposition between the diencephalon and the medulla oblongata and a greater one between the non-olfactory-telencephalon (NOT) and the medulla oblongata (MA). Although it is not possible to give an accurate evolutionary significance, the ratio of NOT/MA is low in primitive teleostean fishes and high in more derived species (Acanthuridae and Tetraodontiformes).

Animals

[Quantitative analysis of the teleost brain: evolution and adaptation. 1. A comparative interspecies study].

The intraspecific brain-body weight allometric coefficient, although high in Teleosts (0.49), is different enough from the interspecific one (0.65, almost 2/3) to use only adult specimens for quantitative studies. The low encephalization level of species of great size makes the use of a quadratic curve preferable, although not well adapted to small species. The mean variability of encephalization indices within the species is 8%. Differences of encephalization are noted either between sexes (Misgurnus fossilis) or between ecological milieus (Ictalurus melas). The variability increases progressively from species to genus, family and order; the allometric coefficient grows also, following the general trend for a larger encephalization when the body size is greater. The correlation between the encephalization index and the position within the classification is low; the great number of exceptions makes it necessary to look for other biological and ecological factors, such as the body form, the type of locomotion, the general activity level, the food habits, the way fishes avoid predation and social organization. The index value is due either to the modification of the body size (overweight due to the elongated form of the body, the ballast of poor diets: limivores, coral or sponge eaters, the passive protection against predators of thick scales, spines, etc), or to that of the brain size. In that case, a better encephalization is to be noted in species with a fusiform body, swimming with lateral beats of the caudal peduncle, in active species from mid-waters or pelagic, in predators actively hunting their prey, in species using active ways of protection against predation, in diurnal fishes and in those which have a social way of life needing a good knowledge either of their milieu (territorial behaviour) or of their congeners (social behaviour).

Animals

Encephalization in tropical teleost fishes and comparison with their mode of life.

The brains were dissected from a total of 1225 fishes representing 737 species, 310 genera and 113 families of tropical and subtropical teleosts. Each fish was weighed before brain dissection, and each brain weighed after its removal. The encephalization coefficient k was determined for each fish from a quadratic formula; to conveniently compare brain size of one species with that of another, we used an encephalization index so that an encephalization index of 100 is the average for all the species investigated. The encephalization indices for the families of fishes studied varied from 7 for the Moringuidae to 233 for the Coryphaenidae. There is no strong correlation in relative brain size with phylogenetic position. Although there is a general trend for the more highly evolved fishes to have larger brains, this is partially obscured by some high values in certain primitive groups and low ones in the more advanced. Elongate fishes have lower encephalization indices in general. This may in part be related to low phylogenetic position of most elongate species (anguilliform fishes, for example), in part to the greater relative body weight due to the longer vertebral column (and usually more numerous fin rays as as well), and to their usual mode of swimming by lateral undulations of the body (the most primitive type of aquatic locomotion--one in which the spinal cord plays a major role). No difference could be noted in the encephalization indices of herbivorous families of fishes compared to carnivorous ones. Within a genus, among medium to large-size fishes, those species of larger size tend to have lower encephalization indices. This may be related to larger fishes having less to fear of predators. Fishes which in some passive way avoid predation have low indices in general. This is particularly true of benthic species which conceal themselves by flattened form, fleshy protuberances or protective coloration, or which bury in the sediment or take refuge in burrows. Also correlated with low indices is some form of predator deterence such as production of skin toxins, presence of venomous spines or ability to enlarge the body by inflation. Fishes which have more than a single sense highly developed exhibit a larger relative brain size than those with only one well developed sense. Fishes which live in a complex community of high species diversity, such as a coral reef, have higher indices, in general, than those which dwell on mud and sand flat. Pelagic fishes, such as scombrids and carangids, are among those with the highest indices.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

[Volumetric analysis of the principal subdivisions of the brain of Gobioidei (Teleosts, Perciformes)].

The coral reef Gobioidei have very small olfactory bulbs. Compared to other teleost fishes, Gobioidei are all microsmic. The forebrain shows little variation; its size is the same as that of other perciform fishes, giving a good idea of the phylogenetic level of the Gobioidei. The mesencephalic tectum is very important in Gobioidei but very small in Trypauchen vagina, which is a burrowing species that is almost blind. The cerebellar body is small as in all other benthic fishes. The cerebellar valvula is also always small, especially the reflex lamina. The medulla oblongata is very large; the size of the vagal and facial lobes is correlated with the gustatory sense, an important feature of most Gobioidei.

Animals

[The volume of the cerebral ventricles in vertebrates].

The relative volume of the brain ventricles in Vertebrates decreases from fishes to mammals and from embryos to adults. The comparison of Chondrichthyans and Teleosteans shows that the high encephalization of the former is not only due to the difference between the relative volume of the ventricular spaces.

Aging

[The organogenesis of the membranous labyrinth in Polypterus senegalus Cuvier, 1829 (Pisces, Holostei, Polypteridae)].

The organogenesis of the membranous labyrinth of Polypterus senegalus is described. 1. The otocyst seems to be formed by the invagination of a thick portion of the deeper layer of the epidermis. 2. The 3 semi-circular canals are formed by 3 pairs of invaginations of the wall of the otocyst and at the expense of its volume; the anterior vertical canal is completed first, followed by the horizontal and then the posterior vertical one; the ampullae, not very developed, appear a long time after the formation of their corresponding canals: that of the horizontal canal appears first, followed by that of the posterior and finally that of the anterior one. 3. The sensory areas derive from a common macula which subsequently divides into 2 zones, the anterior one giving rise to the utricular macula and the anterior and horizontal cristae, the posterior one giving rise to the posterior crista and the saccular macula; from the latter subsequently develops the lagenar macula. 4. The otoconiae appear as soon as the otocyst forms; the otoliths are agglomerations of otoconias brought together by an interstitial cement. 5. The endolymphatic primordium is formed before that of the semi-circular canals; the endolymphatic sack becomes voluminous and spreads over the brain as far as the sagittal plane.

Animals

The brain of Photoblepharon palpebratus steinitzi (Pisces, Teleostei, Anomalopidae).

The external morphology of the brain of Photoblepharon palpebratus steinitzi is typically teleostean in character, and recalls that of the brain of Holocentrus, described by Meader (1934). The encephalization index is very high and near those of Holocentridae, which belong to the same order Beryciformes. The brain organization, studied from the relative volumes of different brain parts, is near that of Holocentridae and Labridae and shows that microsomy (small olfactory bulbs) and the great extension of the cerebellum, visible in external morphology, are good criteria of the peculiarities of the brain of Photoblepharon, which shows no apparent structure in connexion with the light organ.

Animals

Post-hatching growth and allometry of the teleost brain.

The growth of the brain in the rainbow trout follows an S curve: E = 0.04 t3 + 0.26 t2 - 0.06 t + 0.04 with t (time) in days and E (brain weight) in mg. The growth of the brain, relative to the body, can be given, after longarithmic transformation, by: Y = 0.011 + 0.835 X - 0.047 X2 where Y is log brain weight and X log body weight. This formula is consistent with that of every species after necessary changes of origin. The coefficients of allometry corresponding to this curve vary from 0.788 (body weight from 0.01 to 0.1 g) to 0.226 (body weight from 10 to 100 kg), the most common values varying between 0.507 (body weight from 10 to 100 g) and 0.414 (body weight from 100 g to 1 kg).

Animals

Encephalization in vertebrates. A new mode of calculation for allometry coefficients and isoponderal indices.

The conventional allometric power function, with its slope near 2/3, works well for interspecific scaling of brain vs. body weight in all groups of vertebrates. It fails, however, in extrapolation to vertebrates of the largest size within their groups: these have smaller brains than the equation would predict. We propose a correction, the hyperbolic tangent, to linearize the data over all sizes, and we discuss evolutionary reasons for the relatively small brain size of the largest vertebrates.

Anatomy, Comparative

[Brain organization of Amia, Lepisosteus and Polypterus: comparative morphology and quantitative analysys].

The quantitative study of the brain of Amia, Lepisosteus and Polypterus leads to results which are compared to those previously got on the Sturgeon and three species of Tleosts (the Rainbow Trout, the Carp and the Ballan wrasse). The volumetric analysis has been applied at first to the whole brain (encephalization indices) and later to the main subdivision of the brain: telencephalon, diencepahlon... (relation indices and relative volumes). Some result are discussed in regard to the various opinions expressed about the phylogenetic affinities of the studied species. According to the brain organisation, the Bichir (Polyterus) seems to be at a relatively high level of evolution, and no relationship can be expected with the Chondrosteans. Amia and Lepisosteus show a common general brain pattern, but some peculiarities allow to consider Amia as more primitive than Lepisosteus--although the osteological characteristics and the scale structure lead to put together the first one and the Teleosts.

Animals

[Study of correlations linking the volumes of the hypophyseal lobes and the epiphysis to body and brain weights in Chiroptera].

Study of the correlations binding the different lobes of the hypophysis and the pineal gland to body weight and brain weight in Chiroptera shows that the hypophysis is better correlated to body and brain weight than the pineal gland, fact that we already observed in Rodents and Primates. The allometry coefficient (M.R.A.) related to body weight varies from 0,80 to 0,98 for the hypophyseal lobes. The value of this coefficient for the pineal gland (1,60) is greater than that found (1,009) in another group of Mammals (Insectivora, Lemurians and Primates). It is less sure as the important variations in volume of this gland determine a lower correlation coefficient.

Animals

[Allometry and linear correlation coefficients binding the volumes of the different pituitary gland lobes, of the pituitary gland, of the subfornical organ and of the pineal gland to body weight and to hypothalamic volume in Rodents and in a Lagomorphe].

The morphometric study of the hypophysis, of the subfornical organ and of the pineal gland of 41 Rodents and one Lagomorphe shows that the anterior lobe of the hypophysis as well as the total hypophysis are better correlated to body weight than to the volume of the hypothalamus, while it is the contrary for the pars nervosa. The volume of the intermediate lobe varies very much from one species to another for the same body weight. The high value of the allometry coefficient of the pineal gland on somatic weight (1.25) is due to the fact that the heavy Rodents of our temperate climates have a large epiphysis while the small african Rodents possess a small pineal gland.

Animals

[The encephalus of the pond-loach, Misgurnus fossilis (L.), 1758 (fish, teleosts, Cobitidae). An example of sexual dimorphism].

The brain of the Pond-loach (Misgurnus fossilis) is very closely related to that of Cyprinidae. In the Medulla oblongata, the facial lobe-in relation with the skin taste buds, especially on the barbels-is bigger than the vagal lobes-which are related with the mouth taste buds. The intraspecific relations between brainweight and bodyweight or various body lengths show a real sexual dimorphism (brain dimegaly). The interspecific brain-bodyweight relationship shows an allometric coefficient of 0.505 in males and 0.485 in females, very close to that of the Rainbow trout. The encephalization index (63) is very close to that of the Tench, and a little lower than that of the Cyprinidae as a whole.

Animals