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[Organization of the osseous nasal septum and its homologues. IV-C. Alar bone composed of sub-nasal and septal bones. Nasal septum and axial palate complex (represented by artiodactyla and leporidae)].

The aim of this investigation was the study of the development changes of the osseous nasal septum and para-sphenoid systems in adult pigs, domestic cattle and the comparison with the control skull-group of 10 deer and 15 hares. The methodology was described elsewhere. In paired-hoof mammals was found that the alar bone is biomechanically composed system. It represents four segments: three of septum bone and one as subnasal bone. In examined mammals the degree of integration of sphenoid septum and alar bone ones was various. In fishes, amphibians, birds and paired-hoof mammals there are the axially palate system too. The para-sphenoid mechanically integrated itself with the hard palate.

Amphibians↗

[Organization of the osseous nasal septum and its homologues. IV-B. The nasal septum integrated system (the alar bone and sphenoid septum) and the cribriform plate system in pairhoofed animals (Artiodactyla Owen, 1848)].

The aim of this work was: 1) differentiation and systematization of the bone elements originated on the base of the nasal septum cartilage, 2) systematization of the cribriform plate, 3) investigation and systematization of the bottom elements of the sphenoid recess in young pairhoofed mammals. The material and methodology was described elsewhere (part I and IV-A). The additional material were 6 skulls of wild boar. The nasal septum diploe constituted of two biomechanical systems: anterior and posterior. The first one is situated in the sphenoid septum and corps. the second in diploe laminae perpendicularis of the alar bone. The cribriform plates and parasphenoid stabilize the osseous nasal septum system in the splanchnocranial space--without signs of the biomechanic binds between diploetic elements. The floor sphenoid recess for two plates: the lamina transversalis posterior and laminae transversalis parasphenoidei. The results of these investigations was the verification of the absence of "mesoethmoid in mammals as well in birds, fishes and amphibians. The traditional system of the ethmoid bone organization in this way turned out to be illusory.

Animals↗

[The primary structure of the hemoglobin gamma-chains of fetal sheep (Ovis ammon) and goat (Capra aegagrus), Artiodactyla].

The complete primary structures of the gamma-chains of fetal sheep (Ovis ammon) and goat (Capra aegagrus) hemoglobins are presented. The chains were isolated by chromatography on carboxymethyl cellulose CM-52. The primary structures of both chains were established by automatic Edman degradation, mainly on the tryptic peptides. The N-terminal regions were sequenced on the chains. Large C-terminal peptides were isolated and sequenced after acidic hydrolysis of the Asp-Pro bond (gamma 99/100). The peptides were aligned by their homology with the bovine gamma-chains. The gamma-chains of sheep and goat differ in 5 amino acid residues. Compared to bovine gamma-chains there are 12 and 10 exchanges, respectively. The influence of the primary structure on the intrinsic oxygen affinity of hemoglobins is discussed.

Amino Acid Sequence↗

Morphology of intestinal villi in African antelope (Artiodactyla: Bovidae).

Villous morphology in 16 species of African antelope varied from finger-like and leaf-like to ridge-like forms. Some species showed uniform villi whereas it was variable in others. There was a slight indication that leaf-like and finger-like forms become more frequent in the distal regions of the small intestine. The variation in morphology was not associated with body size or phylogeny, but did show a significant correlation with diet: species with high moisture content and/or high fibre levels (equivalent to low bulk values) in the digesta were more likely to have ridges, which were the lowest of the villi.

Animals↗

Prevalence and seasonality of Oestrus caucasicus Grunin, 1948 (Diptera: Oestridae) parasitizing the Spanish ibex, Capra pyrenaica (Mammalia: Artiodactyla).

Prevalence and intensity of parasitism by oestrid larvae in the Spanish ibex Capra pyrenaica were determined for a period of 2.5 yr in Sierra Nevada Natural Park, southern Spain. The most relevant result of this study was to find Oestrus caucasicus parasitizing this ungulate in a geographical location far from its previously known distribution, e.g., the Caucasus mountain range and central Asia. Larvae were found within 74% of the heads examined (n = 180). Prevalence was higher in females and in older animals. Lowest prevalence occurred during the summer months. The mean intensity (+/- SD) was 25.4 +/- 27.3 larvae and was similar in both host sexes. The number of larvae increased with host age and reached the highest intensities in winter, during December and January.

Age Distribution↗

[The taxonomy of the musk deer (Artiodactyla, Mammalia)].

The results of multiyear studies (1976-1996) of musk deer taxonomy and the published data were generalized. Two groups of subspecies were isolated on the basis of statistical analysis of 13 linear measurements and six indices in 388 skulls from different parts of the range. Group "sibirica" includes four subspecies: Siberian Moschus moschiferus moschiferus F., Verkhoyansk M. moschiferus articticus F., Far-Eastern M. moschiferus turowi Zal., and Sakhalin M. moschiferus sachalinensis F. Group "himalaica" contains three subspecies: Korean M. moschiferus parvipes Hol., Chinese M. moschiferus chrysogaster H., and Himalayan Moschus moschiferus leucogaster H.

Animals↗

[Taxonomy of the musk deer (Artiodactyla, Mammalia)].

We studied the chromosome sets and specific morphological features and phenetic traits of hair cover coloration, as well the pattern of its inheritance upon experimental hybridization. The diploid set of chromosomes in the animals from the northern part of the range contains 2n = 58 (there are two additional B-chromosomes in the Far Eastern musk deer) and is identical to that from the southern musk deer forms. Discrete polymorphic features of neck and hair cover coloration have been identified in the northern and southern musk deer, and these are used as taxonomic features. A map illustrates distribution of the established subspecies.

Animals↗

The position of Cetacea within mammalia: phylogenetic analysis of morphological data from extinct and extant taxa.

Knowledge of the phylogenetic position of the order Cetacea (whales, dolphins, and porpoises) within Mammalia is of central importance to evolutionary biologists studying the transformations of biological form and function that accompanied the shift from fully terrestrial to fully aquatic life in this clade. Phylogenies based on molecular data and those based on morphological data both place cetaceans among ungulates but are incongruent in other respects. Morphologists argue that cetaceans are most closely related to mesonychians, an extinct group of terrestrial ungulates. They have disagreed, however, as to whether Perissodactyla (odd-toed ungulates) or Artiodactyla (even-toed ungulates) is the extant clade most closely related to Cetacea, and have long maintained that each of these orders is monophyletic. The great majority of molecule-based phylogenies show, by contrast, not only that artiodactyls are the closest extant relatives of Cetacea, but also that Artiodactyla is paraphyletic unless cetaceans are nested within it, often as the sister group of hippopotamids. We tested morphological evidence for several hypotheses concerning the sister taxon relationships of Cetacea in a maximum parsimony analysis of 123 morphological characters from 10 extant and 30 extinct taxa. We advocate treating certain multistate characters as ordered because such a procedure incorporates information about hierarchical morphological transformation. In all most-parsimonious trees, whether multistate characters are ordered or unordered, Artiodactyla is the extant sister taxon of Cetacea. With certain multistate characters ordered, the extinct clade Mesonychia (Mesonychidae + Hapalodectidae) is the sister taxon of Cetacea, and Artiodactyla is monophyletic. When all fossils are removed from the analysis, Artiodactyla is paraphyletic with Cetacea nested inside, indicating that inclusion of mesonychians and other extinct stem taxa in a phylogenetic analysis of the ungulate clade is integral to the recovery of artiodactyl monophyly. Phylogenies derived from molecular data alone may risk recovering inconsistent branches because of an inability to sample extinct clades, which by a conservative estimate, amount to 89% of the ingroup. Addition of data from recently described astragali attributed to cetaceans does not overturn artiodactyl monophyly.

Animals↗

The emergence of cetaceans: phylogenetic analysis of male social behaviour supports the Cetartiodactyla clade.

The phylogeny of cetaceans is still unresolved. Two hypotheses prevail for the position of cetaceans among ungulates. The first hypothesis shows that Artiodactyla is monophyletic and is sister taxon to a clade composed of cetaceans and mesonychians. The second one shows that Artiodactyla is paraphyletic and contains Cetacea that is sister taxon of Hippopotamida. These hypotheses are based on fossil records and molecular studies. The behaviour of extant species can provide as much phylogenetic information as other classical parameters. I considered the behaviour observed during male agonistic interactions in placental mammals in order to determine which of these hypotheses was supported by the behaviour of extant species. Headbutting was only observed in ruminants, hippopotamids and cetaceans, supporting the paraphyletic nature of Artiodactyla. Primitive ruminants (tragulids) and two genera of ruminants (Moschus and Oreamnos) were not observed headbutting. These secondary losses were only present in 6.25% of the 48 surveyed ruminant genera. Head-to-head attacks emerged in pigs, which have developed dermal protusions. Yet, these confrontations are not based on mutual blow delivery. The behavioural evidence supports the inclusion of cetaceans in Artiodactyla.

Agonistic Behavior↗

Phylogenetic relationships among eutherian orders estimated from inferred sequences of mitochondrial proteins: instability of a tree based on a single gene.

The phylogenetic relationships among Primates (human), Artiodactyla (cow), Cetacea (whale), Carnivora (seal), and Rodentia (mouse and rat) were estimated from the inferred amino acid sequences of the mitochondrial genomes using Marsupialia (opossum), Aves (chicken), and Amphibia (Xenopus) as an outgroup. The overall evidence of the maximum likelihood analysis suggests that Rodentia is an outgroup to the other four eutherian orders and that Cetacea and Artiodactyla form a clade with Carnivora as a sister taxon irrespective of the assumed model for amino acid substitutions. Although there remains an uncertainty concerning the relation among Artiodactyla, Cetacea, and Carnivora, the existence of a clade formed by these three orders and the outgroup status of Rodentia to the other eutherian orders seems to be firmly established. However, analyses of individual genes do not necessarily conform to this conclusion, and some of the genes reject the putatively correct tree with nearly 5% significance. Although this discrepancy can be due to convergent or parallel evolution in the specific genes, it was pointed out that, even without a particular reason, such a discrepancy can occur in 5% of the cases if the branching among the orders in question occurred within a short period. Due to uncertainty about the assumed model underlying the phylogenetic inference, this can occur even more frequently. This demonstrates the importance of analyzing enough sequences to avoid the danger of concluding an erroneous tree.

Animals↗

The position of Hippopotamidae within Cetartiodactyla.

The origin of late Neogene Hippopotamidae (Artiodactyla) involves one of the most serious conflicts between comparative anatomy and molecular biology: is Artiodactyla paraphyletic? Molecular comparisons indicate that Cetacea should be the modern sister group of hippos. This finding implies the existence of a fossil lineage linking cetaceans (first known in the early Eocene) to hippos (first known in the middle Miocene). The relationships of hippos within Artiodactyla are challenging, and the immediate affinities of Hippopotamidae have been studied by biologists for almost two centuries without resolution. Here, we compare opposing hypotheses implicating several "suiform" families. This morphological analysis of a comprehensive set of taxa and characters offers a robust solution to the origins of Hippopotamidae. This family appears to be deeply nested within the otherwise extinct artiodactyl family Anthracotheriidae, most precisely within the most advanced selenodont forms. The proposed sister group of hippos is the middle to late Miocene African semiaquatic Libycosaurus. Any close relationships of hippos with suoids, particularly with Tayassuidae, are rejected. Furthermore, the clade (Hippopotamidae, Anthracotheriidae) is proposed as the sister group of the Cetacea, offering broad morphological support for a molecular phylogeny, such support being also consistent with the fossil record. Corroboration of this relationship requires an exploration of anthracothere affinities with other Paleogene artiodactyls. Among those, the position of Ruminantia is a central question, still to be solved. Further progress in this debate is likely to come from morphological studies of paleontological data, whether known or still to be discovered.

Animals↗

Comparative morphological study on the lingual papillae and their connective tissue cores (CTC) in reeves' muntjac deer (Muntiacus reevesi).

The lingual papillae and their connective tissue cores (CTC) from Reeves' muntjac deers (herbivorous artiodactyla) were studied using light and scanning electron microscopy and then compared to those of other mammalian species. At the posterior portion of the tongue, the Reeves' muntjac has a lingual prominence on which large conical papillae are distributed. On the dorsal surface of the anterior tongue, numerous filiform papillae were found. Externally, each filiform papilla consists of a rod-shaped main process and several small accessory processes. Their CTCs consist of 10 or more rod-shaped processes arranged in a horseshoe pattern and several posterior processes forming a small circular pattern. This structure is a common characteristic of artiodactyla, through which Reeves' muntjac deer can be categorized in a position in the artiodactyla class lying between the bighorn sheep and the East African bongo. Fungiform papillae are distributed among the filiform papillae on the anterior portion of the tongue. Large fungiform papillae are also sparsely distributed on the lingual prominence and have several taste buds in the epithelium on the surface. Ten or more vallate papillae are distributed at the postero-lateral area of the lingual prominence and numerous taste buds are distributed in the epithelium of their side.

Africa, Eastern↗

Characterization and phylogenetic utility of the mammalian protamine p1 gene.

We sequenced the protamine P1 gene (ca. 450 bp) from 20 bats (order Chiroptera) and the flying lemur (order Dermoptera). We compared these sequences with published sequences from 19 other mammals representing seven orders (Artiodactyla, Carnivora, Cetacea, Perissodactyla, Primates, Proboscidea, and Rodentia) to assess structure, base compositional bias, and phylogenetic utility. Approximately 80% of second codon positions were guanine, resulting in protamine proteins containing a high frequency of arginine residues. Our data indicate that codon usage for arginine differs among higher mammalian taxa. Parsimony analysis of 40 species representing nine orders produced a well-resolved tree in which most nodes were supported strongly, except at the lowest taxonomic levels (e.g., within Artiodactyla and Vespertilionidae). These data support monophyly of several taxa proposed by morphologic and molecular studies (all nine orders: Laurasiatheria, Cetartiodactytla, Yangochiroptera, Noctilionoidea, Rhinolophoidea, Vespertilionoidea, Phyllostomidae, Natalidae, and Vespertilionidae) and, in agreement with recent molecular studies, reject monophyly of Archonta, Volitantia, and Microchiroptera. Bats were sister to a clade containing Perissodactyla, Carnivora, and Cetartiodactyla, and, although not unequivocally, rhinolophoid bats (traditional microchiropterans) were sister to megachiropterans. Sequences of the protamine P1 gene are useful for resolving relationships at and above the familial level in bats, and generally within and among mammalian orders, but with some drawbacks. The coding and intervening sequences are small, producing few phylogenetically informative characters, and aligning the intron is difficult, even among closely related families. Given these caveats, the protamine P1 gene may be important to future systematic studies because its functional and evolutionary constraints differ from other genes currently used in systematic studies.

Amino Acid Sequence↗

Mammalian mitochondrial DNA evolution: a comparison of the cytochrome b and cytochrome c oxidase II genes.

The evolution of two mitochondrial genes, cytochrome b and cytochrome c oxidase subunit II, was examined in several eutherian mammal orders, with special emphasis on the orders Artiodactyla and Rodentia. When analyzed using both maximum parsimony, with either equal or unequal character weighting, and neighbor joining, neither gene performed with a high degree of consistency in terms of the phylogenetic hypotheses supported. The phylogenetic inconsistencies observed for both these genes may be the result of several factors including differences in the rate of nucleotide substitution among particular lineages (especially between orders), base composition bias, transition/transversion bias, differences in codon usage, and different constraints and levels of homoplasy associated with first, second, and third codon positions. We discuss the implications of these findings for the molecular systematics of mammals, especially as they relate to recent hypotheses concerning the polyphyly of the order Rodentia, relationships among the Artiodactyla, and various interordinal relationships.

Animals↗