Commichau Fabian M, Rothe Fabian M, Herzberg Christina, Wagner Eva, Hellwig Daniel, Lehnik-Habrink Martin, Hammer Elke, Völker Uwe, Stülke Jörg
Department of General Microbiology, Georg-August-University Göttingen, Grisebachstrasse 8, D-37077 Göttingen, Germany.
Mol Cell Proteomics. 2009 Jun;8(6):1350-60. doi: 10.1074/mcp.M800546-MCP200. Epub 2009 Feb 3.
Glycolysis is one of the most important metabolic pathways in heterotrophic organisms. Several genes encoding glycolytic enzymes are essential in many bacteria even under conditions when neither glycolytic nor gluconeogenic activities are required. In this study, a screening for in vivo interaction partners of glycolytic enzymes of the soil bacterium Bacillus subtilis was used to provide a rationale for essentiality of glycolytic enzymes. Glycolytic enzymes proved to be in close contact with several other proteins, among them a high proportion of essential proteins. Among these essential interaction partners, other glycolytic enzymes were most prominent. Two-hybrid studies confirmed interactions of phosphofructokinase with phosphoglyceromutase and enolase. Such a complex of glycolytic enzymes might allow direct substrate channeling of glycolytic intermediates. Moreover we found associations of glycolytic enzymes with several proteins known or suspected to be involved in RNA processing and degradation. One of these proteins, Rny (YmdA), which has so far not been functionally characterized, is required for the processing of the mRNA of the glycolytic gapA operon. Two-hybrid analyses confirmed the interactions between the glycolytic enzymes phosphofructokinase and enolase and the enzymes involved in RNA processing, RNase J1, Rny, and polynucleotide phosphorylase. Moreover RNase J1 interacts with its homologue RNase J2. We suggest that this complex of mRNA processing and glycolytic enzymes is the B. subtilis equivalent of the RNA degradosome. Our findings suggest that the functional interaction of glycolytic enzymes with essential proteins may be the reason why they are indispensable.
糖酵解是异养生物中最重要的代谢途径之一。即使在既不需要糖酵解活性也不需要糖异生活性的条件下,编码糖酵解酶的几个基因在许多细菌中也是必不可少的。在本研究中,通过对土壤细菌枯草芽孢杆菌糖酵解酶的体内相互作用伙伴进行筛选,为糖酵解酶的必要性提供了理论依据。结果证明,糖酵解酶与其他几种蛋白质密切接触,其中很大一部分是必需蛋白质。在这些必需的相互作用伙伴中,其他糖酵解酶最为突出。双杂交研究证实了磷酸果糖激酶与磷酸甘油变位酶和烯醇化酶之间的相互作用。这样一种糖酵解酶复合物可能允许糖酵解中间产物的直接底物通道化。此外,我们发现糖酵解酶与几种已知或疑似参与RNA加工和降解的蛋白质存在关联。其中一种蛋白质Rny(YmdA),到目前为止尚未进行功能表征,它是糖酵解gapA操纵子mRNA加工所必需的。双杂交分析证实了糖酵解酶磷酸果糖激酶和烯醇化酶与参与RNA加工的酶RNase J1、Rny和多核苷酸磷酸化酶之间的相互作用。此外,RNase J1与其同源物RNase J2相互作用。我们认为,这种mRNA加工和糖酵解酶的复合物相当于枯草芽孢杆菌中的RNA降解体。我们的研究结果表明,糖酵解酶与必需蛋白质的功能相互作用可能是它们不可或缺的原因。