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J Barnabas

Publications and source records attributed to J Barnabas.

At least 19 recordsLinked to original sources

Interrelationships among major protistan groups based on a parsimony network of 5S rRNA sequences.

To test the validity of the maximum parsimony approach to discern protistan interrelationships, we have derived an optimal network of 16S-like rRNA sequences using our parsimony algorithm and compared it with those reported using the distance matrix method. We have also derived an optimal network topology of 50 5S rRNA sequences through an interactive search using our algorithm. In both these networks, the kinetoplastids and euglenoids form a linkage group with Dictyostelium emerging from its neighbourhood. The cryptophytes, dinoflagellates and chromophytes and green algae emerge as independent lines suggesting that plastids arose more than once during protistan evolution. The large 5S rRNA tree further indicates independent origins of mesozoa and metazoa; kinetoplastids and ciliates; and diphyletic origin of fungi. Comparatively close positions of charales and land plants, chytrids and Zygomycetes, Physarum and amoeba, and red algae and green algae are also seen in this network.

Animals↗

Evolution of major metabolic innovations in the precambrian.

A combination of the information on the metabolic capabilities of prokaryotes with a composite phylogenetic tree depicting an overview of prokaryote evolution based on the sequences of bacterial ferredoxin, 2Fe-2S ferredoxin, 5S ribosomal RNA, and c-type cytochromes shows three zones of major metabolic innovation in the Precambrian. The middle of these, which reflects the genesis of oxygen-releasing photosynthesis and aerobic respiration, links metabolic innovations of the anaerobic stem on the one hand and, on the other, proliferation of aerobic bacteria and the symbiotic associations leading to the eukaryotes. We consider especially those pathways where information on the structure of the enzymes is known. Halobacterium and Thermoplasma (archaebacteria) do not belong to a totally independent line on the basis of the composite tree but branch from the eukaryote cytoplasmic line.

Bacteria↗

Gene diversity of bovid hemoglobins.

Forty-five adult hemoglobin molecular forms which include 22 electrophoretically silent forms were structurally characterized from animal species of nine genera belonging to family Bovidae. Of the 12 different bovid species studied, 11 showed either alpha or beta chain heterogeneity in their hemoglobins while eight species showed heterogeneity for both polypeptide chains. Wherever possible, the genetic basis for hemoglobin phenotypes has been suggested. By construction of a phylogenetic tree for 14 ungulate alpha-globin sequences, the evolutionary origins of duplicated alpha chain genes present in some ungulate species have been located, and the phyletic relationship of Bovids based on the alpha globin data is discussed.

Animals↗