Nogués Isabel, Sekula Bartosz, Angelaccio Sebastiana, Grzechowiak Marta, Tramonti Angela, Contestabile Roberto, Ruszkowski Milosz
Research Institute on Terrestrial Ecosystems, Italian National Research Council, Monterotondo Scalo, Rome, Italy.
Synchrotron Radiation Research Section of MCL, National Cancer Institute, Argonne, IL, USA; Institute of Molecular and Industrial Biotechnology, Lodz University of Technology, Lodz, Poland.
Plant Physiol Biochem. 2022 Sep 15;187:37-49. doi: 10.1016/j.plaphy.2022.07.025. Epub 2022 Jul 31.
Serine hydroxymethyltransferase (SHM) is one of the hallmarks of one-carbon metabolism. In plants, isoforms of SHM participate in photorespiration and/or transfer the one-carbon unit from L-serine to tetrahydrofolate (THF), hence producing 5,10-CH-THF that is needed, e.g., for biosynthesis of methionine, thymidylate, and purines. These links highlight the importance of SHM activity in DNA biogenesis, its epigenetic methylations, and in stress responses. Plant genomes encode several SHM isoforms that localize to cytosol, mitochondria, plastids, and nucleus. In this work, we present a thorough functional and structural characterization of all seven SHM isoforms from Arabidopsis thaliana (AtSHM1-7). In particular, we analyzed tissue-specific expression profiles of the AtSHM genes. We also compared catalytic properties of the active AtSHM1-4 in terms of catalytic efficiency in both directions and inhibition by the THF substrate. Despite numerous attempts to rescue the SHM activity of AtSHM5-7, we failed, which points towards different physiological functions of these isoforms. Comparative analysis of experimental and predicted three-dimensional structures of AtSHM1-7 proteins indicated differences in regions that surround the entrance to the active site cavity.
丝氨酸羟甲基转移酶(SHM)是一碳代谢的标志之一。在植物中,SHM的同工型参与光呼吸和/或将一碳单位从L-丝氨酸转移至四氢叶酸(THF),从而产生例如甲硫氨酸、胸苷酸和嘌呤生物合成所需的5,10-CH-THF。这些联系凸显了SHM活性在DNA生物合成、其表观遗传甲基化以及应激反应中的重要性。植物基因组编码几种定位于细胞质、线粒体、质体和细胞核的SHM同工型。在这项工作中,我们对拟南芥(AtSHM1-7)的所有七种SHM同工型进行了全面的功能和结构表征。特别是,我们分析了AtSHM基因的组织特异性表达谱。我们还比较了活性AtSHM1-4在两个方向上的催化效率以及THF底物对其的抑制作用等催化特性。尽管多次尝试挽救AtSHM5-7的SHM活性,但我们均未成功,这表明这些同工型具有不同的生理功能。对AtSHM1-7蛋白的实验性和预测性三维结构的比较分析表明,活性位点腔入口周围区域存在差异。