State Key Laboratory of Virology, Wuhan Institute of Virology, Chinese Academy of Sciences, Wuhan 430071, China.
Acta Biochim Biophys Sin (Shanghai). 2011 Nov;43(11):891-9. doi: 10.1093/abbs/gmr076. Epub 2011 Sep 6.
Acetyl-CoA (AcCoA) synthetase (Acs) catalyzes the conversion of acetate into AcCoA, which is involved in many catabolic and anabolic pathways. Although this enzyme has been studied for many years in many organisms, the properties of Mycobacterium tuberculosis Acs and the regulation of its activity remain unknown. Here, the putative acs gene of M. tuberculosis H37Rv (Mt-Acs) was expressed as a fusion protein with 6×His-tag on the C-terminus in Escherichia coli. The recombinant Mt-Acs protein was successfully purified and then its enzymatic characteristics were analyzed. The optimal pH and temperature, and the kinetic parameters of Mt-Acs were determined. To investigate whether Mt-Acs is regulated by lysine acetylation as reported for Salmonella enterica Acs, its mutant K617R was also generated. Determination of the enzymatic activity suggests that Lys-617 is critical for its function. We further demonstrated that Mt-Acs underwent auto-acetylation with acetate but not with AcCoA as the acetyl donor, which resulted in the decrease of its activity. CoA, the substrate for AcCoA formation, inhibited the auto-acetylation. Furthermore, the silent information regulator (Sir2) of M. tuberculosis (Mt-Sir2) could catalyze Mt-Acs deacetylation, which resulted in activation of Acs. These results may provide more insights into the physiological roles of Mt-Acs in M. tuberculosis central metabolism.
乙酰辅酶 A(AcCoA)合成酶(Acs)催化乙酸转化为 AcCoA,该反应参与许多分解代谢和合成代谢途径。尽管该酶在许多生物体中已经研究了多年,但结核分枝杆菌 Acs 的特性及其活性的调节仍不清楚。在此,我们在大肠杆菌中表达了结核分枝杆菌 H37Rv(Mt-Acs)的假定 acs 基因,该基因在 C 端融合了 6×His 标签。成功纯化了重组 Mt-Acs 蛋白,然后分析了其酶学特性。确定了 Mt-Acs 的最适 pH 和温度,以及动力学参数。为了研究 Mt-Acs 是否像沙门氏菌 Acs 报道的那样受赖氨酸乙酰化调节,我们还生成了其突变体 K617R。酶活性测定表明 Lys-617 对其功能至关重要。我们进一步证明 Mt-Acs 可以与乙酸但不能与 AcCoA 作为乙酰供体发生自动乙酰化,从而导致其活性降低。CoA 是 AcCoA 形成的底物,可抑制自动乙酰化。此外,结核分枝杆菌的沉默信息调节因子(Sir2)(Mt-Sir2)可以催化 Mt-Acs 脱乙酰化,从而激活 Acs。这些结果可能为 Mt-Acs 在结核分枝杆菌中心代谢中的生理作用提供更多的见解。