1+1?=?3 a fusion of 2 enzymes in the methionine salvage pathway of tetrahymena thermophila creates a trifunctional enzyme that catalyzes 3 steps in the pathway1 + 1 = 3融合2蛋氨酸救助途径的酶四膜虫thermophila创建一个三功能性的酶,这种酶催化途径3步骤.pdfVIP
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11?=?3afusionof2enzymesinthemethioninesalvagepathwayoftetrahymenathermophilacreatesatrifunctionalenzymethatcatalyzes3stepsinthepathway11=3融合2蛋氨酸救助途径的酶四膜虫thermophila创建一个三功能性的酶,这种酶催化途径3步骤
1+ 1 = 3: A Fusion of 2 Enzymes in the Methionine Salvage
Pathway of Tetrahymena thermophila Creates a
Trifunctional Enzyme That Catalyzes 3 Steps in the
Pathway
¤
Hannah M. W. Salim , Maria Cristina Negritto, Andre R. O. Cavalcanti*
Biology Department, Pomona College, Claremont, California, United States of America
Abstract
The methionine salvage pathway is responsible for regenerating methionine from its derivative, methylthioadenosine. The
complete set of enzymes of the methionine pathway has been previously described in bacteria. Despite its importance, the
pathway has only been fully described in one eukaryotic organism, yeast. Here we use a computational approach to identify
the enzymes of the methionine salvage pathway in another eukaryote, Tetrahymena thermophila. In this organism, the
pathway has two fused genes, MTNAK and MTNBD. Each of these fusions involves two different genes whose products
catalyze two different single steps of the pathway in other organisms. One of the fusion proteins, mtnBD, is formed by
enzymes that catalyze non-consecutive steps in the pathway, mtnB and mtnD. Interestingly the gene that codes for the
intervening enzyme in the pathway, mtnC, is missing from the genome of Tetrahymena. We used complementation tests in
yeast to show that the fusion of mtnB and mtnD from Tetrahymena is able to do in one step what yeast does in three, since
it can rescue yeast knockouts of mtnB, mtnC, or mtnD. Fusion genes have proved to be very useful in aiding phylogenetic
reconstructions and in the functional characterization of genes. Our results highlight another characteristic of fusion
proteins, namely that these proteins can serve as biochemical shortcuts, allowing organisms to completely bypass steps in
biochemical pathways.
Citation: Salim HMW, Negritto MC, Cavalcant
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