Jang Jichan, Wang Li, Jeanjean Robert, Zhang Cheng-Cai
Laboratoire de Chimie Bactérienne, CNRS-UPR9043, Institut de Biologie Structurale et Microbiologie, 31 chemin Joseph Aiguier, 13402 Marseille cedex 20, France.
Mol Microbiol. 2007 Apr;64(2):347-58. doi: 10.1111/j.1365-2958.2007.05654.x. Epub 2007 Mar 19.
Protein phosphatases play important roles in the regulation of cell growth, division and differentiation. The cyanobacterium Anabaena PCC 7120 is able to differentiate heterocysts specialized in nitrogen fixation. To protect the nitrogenase from inactivation by oxygen, heterocyst envelope possesses a layer of polysaccharide and a layer of glycolipids. In the present study, we characterized All1731 (PrpJ), a protein phosphatase from Anabaena PCC 7120. prpJ was constitutively expressed in both vegetative cells and heterocysts. Under diazotrophic conditions, the mutant DeltaprpJ (S20) did not grow, lacked only one of the two heterocyst glycolipids, and fragmented extensively at the junctions between developing cells and vegetative cells. No heterocyst glycolipid layer could be observed in the mutant by electron microscopy. The inactivation of prpJ affected the expression of hglE(A) and nifH, two genes necessary for the formation of the glycolipid layer of heterocysts and the nitrogenase respectively. PrpJ displayed a phosphatase activity characteristic of PP2C-type protein phosphatases, and was localized on the plasma membrane. The function of prpJ establishes a new control point for heterocyst maturation because it regulates the synthesis of only one of the two heterocyst glycolipids while all other genes so far analysed regulate the synthesis of both heterocyst glycolipids.
蛋白磷酸酶在细胞生长、分裂和分化的调控中发挥着重要作用。蓝藻鱼腥藻PCC 7120能够分化出专门用于固氮的异形胞。为保护固氮酶不被氧气灭活,异形胞包膜有一层多糖和一层糖脂。在本研究中,我们对来自鱼腥藻PCC 7120的一种蛋白磷酸酶All1731(PrpJ)进行了表征。prpJ在营养细胞和异形胞中均组成性表达。在固氮条件下,突变体DeltaprpJ(S20)无法生长,仅缺少两种异形胞糖脂中的一种,并且在发育中的细胞与营养细胞之间的连接处大量破碎。通过电子显微镜在突变体中未观察到异形胞糖脂层。prpJ的失活影响了hglE(A)和nifH的表达,这两个基因分别是异形胞糖脂层形成和固氮酶形成所必需的。PrpJ表现出PP2C型蛋白磷酸酶的磷酸酶活性,并且定位于质膜上。prpJ的功能为异形胞成熟建立了一个新的控制点,因为它仅调节两种异形胞糖脂中的一种的合成,而迄今为止分析的所有其他基因均调节两种异形胞糖脂的合成。