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201.
Comparative electrophoretic phenotypes of 18 of the 32 species of the lizard genus Varanus have been determined for four proteins. The animals studied were representative of species from Africa, Israel, Southeast Asia and Australia. Malate dehydrogenase (A2) exhibited a single phenotype throughout. Lactate dehydrogenase (B4) showed four distinctive electrophoretic forms which grouped the various subgenera as follows: (1) Polydaedalus, Empagusia (African); (2) Psammosaurus (Israel); (3) three species of Varanus, V. gouldii, V. spenceri, V. mertensi (Australian); (4) Dendrovaranus, Indovaranus (Southeast Asian), other Varanus species, Odatria (Australian). Electrophoretic and previously reported karyotypic data were used to interpret the phylogenetic relationships as well as the mode and direction of evolution of these animals. In particular, the results questioned the reality of the subgenus Varanus as a taxonomic unit, since four distinct karyotypic forms and two LDH-B4 phenotypes were observed for these animals, of which one belongs to another subgenus. Serum albumin and carbonic anhydrase phenotypes were of little use in deciding phenotypic groupings. 相似文献
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W. Holmes Robert 《Journal of phycology》1977,13(2):180-183
Lauderia annulata Cleve is probably unique among marine centric diatoms in possessing an elongate dumbbell-shaped nucleus. A lobe at, each end of the nucleus lies adjacent to each valve during interphase and each lobe resembles a typical eucaryotic nucleus. The central portion of the thin strand, which passes through the vacuole connecting the two lobes is Feulgen positive and is nuclear membrane bounded. A group of micro tubules occurs in this strand clustered excentrically between, the nuclear membrane and the tonoplast. Evidence for the coordinated functioning of both nuclear lobes is suggested, by the aggregation of chloroplasts around, both lobes when shade-adapted cells are exposed, to intense white or blue (400–500 nm) light. 相似文献
204.
Regenerative medicine is a burgeoning field that is important to combat challenging diseases and functional impairments. Compared with traditional cell therapies with evident shortcomings (e.g., cell suspension injection or tissue engineering with scaffolds), scaffold-free cell sheet technology enables transplanted cells to be grafted and fully maintain their viability on target sites. Clinical and experimental studies have advanced the application of cell sheet technology to numerous tissues and organs (e.g., liver, cornea and bone). However, previous reviews have failed to discuss vital aspects of this rapidly developing technology, and many new challenges are gradually emerging. This review aims to provide a comprehensive introduction to cell sheet technology from cell selection to the ultimate applications of cell sheets, and challenges and future visions are also described. 相似文献
205.
Gordon Holmes 《BMJ (Clinical research ed.)》1938,2(4045):107-112
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