Istituto di Ricerca sugli Ecosistemi Terrestri, Consiglio Nazionale delle Ricerche, Monterotondo, Italy.
Istituto di Biologia e Patologia Molecolari, Consiglio Nazionale delle Ricerche, Roma, Italy; Istituto Pasteur Italia-Fondazione Cenci Bolognetti and Dipartimento di Scienze Biochimiche "A. Rossi Fanelli", Sapienza Università di Roma, Roma, Italy.
Int J Biol Macromol. 2020 Sep 15;159:517-529. doi: 10.1016/j.ijbiomac.2020.05.081. Epub 2020 May 15.
Serine hydroxymethyltransferase (SHMT) is a pyridoxal 5'-phosphate-dependent enzyme that plays a pivotal role in cellular one‑carbon metabolism. In plants and cyanobacteria, this enzyme is also involved in photorespiration and confers salt tolerance, as in the case of SHMT from the halophilic cyanobacterium Aphanothece halophytica (AhSHMT). We have characterized the catalytic properties of AhSHMT in different salt and pH conditions. Although the kinetic properties of AhSHMT correlate with those of the mesophilic orthologue from Escherichia coli, AhSHMT appears more catalytically efficient, especially in presence of salt. Our studies also reveal substrate inhibition, previously unobserved in AhSHMT. Furthermore, addition of the osmoprotectant glycine betaine under salt conditions has a distinct positive effect on AhSHMT activity. The crystal structures of AhSHMT in three forms, as internal aldimine, as external aldimine with the l-serine substrate, and as a covalent complex with malonate, give structural insights on the possible role of specific amino acid residues implicated in the halophilic features of AhSHMT. Importantly, we observed that overexpression of the gene encoding SHMT, independently from its origin, increases the capability of E. coli to grow in high salt conditions, suggesting that the catalytic activity of this enzyme in itself plays a fundamental role in salt tolerance.
丝氨酸羟甲基转移酶(SHMT)是一种依赖于吡哆醛 5'-磷酸的酶,在细胞一碳代谢中起着关键作用。在植物和蓝藻中,这种酶也参与光呼吸,并赋予耐盐性,如嗜盐蓝藻 Aphanothece halophytica 的 SHMT(AhSHMT)。我们已经在不同盐和 pH 条件下对 AhSHMT 的催化特性进行了表征。尽管 AhSHMT 的动力学特性与来自大肠杆菌的中温同系物相关,但 AhSHMT 似乎具有更高的催化效率,尤其是在存在盐的情况下。我们的研究还揭示了以前在 AhSHMT 中未观察到的底物抑制。此外,在盐条件下添加渗透保护剂甘氨酸甜菜碱对 AhSHMT 活性有明显的积极影响。三种形式的 AhSHMT 的晶体结构,即内部亚胺,与 l-丝氨酸底物的外部亚胺,以及与丙二酸的共价复合物,为可能涉及 AhSHMT 嗜盐特性的特定氨基酸残基的作用提供了结构见解。重要的是,我们观察到,独立于其来源,编码 SHMT 的基因的过表达增加了大肠杆菌在高盐条件下生长的能力,这表明该酶的催化活性本身在耐盐性中起着重要作用。