Kadouche Derifa, Ducatez Mathieu, Cenci Ugo, Tirtiaux Catherine, Suzuki Eiji, Nakamura Yasunori, Putaux Jean-Luc, Terrasson Amandine Durand, Diaz-Troya Sandra, Florencio Francisco Javier, Arias Maria Cecilia, Striebeck Alexander, Palcic Monica, Ball Steven G, Colleoni Christophe
Université Lille, Centre National de la Recherche Scientifique, Institut National de la Recherche Agronomique, Unité Mixte de Recherche 8576, Unité de Glycobiologie Structurale et Fonctionnelle, F-59000 Lille, France (D.K., M.D., U.C., C.T., M.C.A., S.G.B., C.C.);Department of Biological Production, Akita Prefectural University, Akita 010-0195 Japan (E.S., Y.N.);Centre de Recherches sur Les Macromolécules Végétales, Centre National de la Recherche Scientifique, Université Grenoble Alpes, F-38041 Grenoble cedex 9, France (J.-L.P., A.D.T.);Instituto de Bioquímica Vegetal y Fotosíntesis cic Cartuja, Consejo Superior de Investigaciones Científicas-Universidad de Sevilla, 41092 Seville, Spain (S.D.-T., F.J.F.);Raw Materials Group, Carlsberg Laboratory, 1799 Copenhagen V, Denmark (A.S.); andDepartment of Biochemistry and Microbiology, University of Victoria, Victoria, British Columbia, Canada V8W 3P6 (M.P.).
Université Lille, Centre National de la Recherche Scientifique, Institut National de la Recherche Agronomique, Unité Mixte de Recherche 8576, Unité de Glycobiologie Structurale et Fonctionnelle, F-59000 Lille, France (D.K., M.D., U.C., C.T., M.C.A., S.G.B., C.C.);Department of Biological Production, Akita Prefectural University, Akita 010-0195 Japan (E.S., Y.N.);Centre de Recherches sur Les Macromolécules Végétales, Centre National de la Recherche Scientifique, Université Grenoble Alpes, F-38041 Grenoble cedex 9, France (J.-L.P., A.D.T.);Instituto de Bioquímica Vegetal y Fotosíntesis cic Cartuja, Consejo Superior de Investigaciones Científicas-Universidad de Sevilla, 41092 Seville, Spain (S.D.-T., F.J.F.);Raw Materials Group, Carlsberg Laboratory, 1799 Copenhagen V, Denmark (A.S.); andDepartment of Biochemistry and Microbiology, University of Victoria, Victoria, British Columbia, Canada V8W 3P6 (M.P.)
Plant Physiol. 2016 Jul;171(3):1879-92. doi: 10.1104/pp.16.00049. Epub 2016 May 19.
At variance with the starch-accumulating plants and most of the glycogen-accumulating cyanobacteria, Cyanobacterium sp. CLg1 synthesizes both glycogen and starch. We now report the selection of a starchless mutant of this cyanobacterium that retains wild-type amounts of glycogen. Unlike other mutants of this type found in plants and cyanobacteria, this mutant proved to be selectively defective for one of the two types of glycogen/starch synthase: GlgA2. This enzyme is phylogenetically related to the previously reported SSIII/SSIV starch synthase that is thought to be involved in starch granule seeding in plants. This suggests that, in addition to the selective polysaccharide debranching demonstrated to be responsible for starch rather than glycogen synthesis, the nature and properties of the elongation enzyme define a novel determinant of starch versus glycogen accumulation. We show that the phylogenies of GlgA2 and of 16S ribosomal RNA display significant congruence. This suggests that this enzyme evolved together with cyanobacteria when they diversified over 2 billion years ago. However, cyanobacteria can be ruled out as direct progenitors of the SSIII/SSIV ancestral gene found in Archaeplastida. Hence, both cyanobacteria and plants recruited similar enzymes independently to perform analogous tasks, further emphasizing the importance of convergent evolution in the appearance of starch from a preexisting glycogen metabolism network.
与淀粉积累植物和大多数糖原积累蓝细菌不同,蓝细菌CLg1同时合成糖原和淀粉。我们现在报告了该蓝细菌的一个无淀粉突变体的筛选情况,该突变体保留了野生型数量的糖原。与在植物和蓝细菌中发现的其他此类突变体不同,这个突变体被证明对两种糖原/淀粉合酶之一具有选择性缺陷:GlgA2。这种酶在系统发育上与先前报道的SSIII/SSIV淀粉合酶相关,后者被认为参与植物淀粉颗粒的起始。这表明,除了已证明负责淀粉而非糖原合成的选择性多糖脱支外,延伸酶的性质和特性定义了淀粉与糖原积累的一个新决定因素。我们表明,GlgA2和16S核糖体RNA的系统发育显示出显著的一致性。这表明这种酶在20多亿年前蓝细菌多样化时与它们一起进化。然而,蓝细菌可以被排除是古质体中发现的SSIII/SSIV祖先基因的直接祖先。因此,蓝细菌和植物都独立地招募了类似的酶来执行类似的任务,进一步强调了趋同进化在从预先存在的糖原代谢网络中出现淀粉过程中的重要性。