School of Biomedical Sciences, Charles Sturt University, Wagga Wagga, NSW 2678, Australia.
Department of Chemistry and Biochemistry, San Francisco State University, San Francisco, CA 94132, USA.
J Struct Biol. 2020 Jun 1;210(3):107506. doi: 10.1016/j.jsb.2020.107506. Epub 2020 Apr 10.
Polyamines are important for regulating biofilms and the exopolysaccharide of the biofilm matrix of Bacillus subtilis. Understanding how enzymes can regulate polyamine concentrations is critical for learning more about how these processes occur in diverse bacteria. Here, we describe the structure and function of another member of the spermidine/spermine acetyltransferases (SSAT) found in Bacilli. The SpeG enzyme from B. thuringiensis (BtSpeG) binds polyamines in its allosteric site and adopts a dodecameric oligomeric state similar to other SpeG enzymes from Gram-negative bacteria. Our kinetic results show the catalytic efficiency of BtSpeG was greater than any previously characterized SpeG to date, and in contrast to other SpeG proteins it exhibited very similar kinetic properties toward both spermine and spermidine. Similar to the SpeG enzyme from E. coli, BtSpeG was able to acetylate spermidine on the N and N positions. The turnover of BtSpeG toward spermine and spermidine was also two to three orders of magnitude greater than any other Bacilli SSAT enzyme that has been previously characterized. SpeG proteins from Bacilli, including B. cereus, B. thuringiensis and B. anthracis share nearly identical sequences and therefore our results likely provide insight into the structure/function relationship across multiple Bacillus species.
多胺对于调控枯草芽孢杆菌生物膜和生物膜基质的胞外多糖非常重要。了解酶如何调节多胺浓度对于了解这些过程在不同细菌中如何发生至关重要。在这里,我们描述了芽孢杆菌中发现的另一种精脒/精胺乙酰转移酶(SSAT)的结构和功能。苏云金芽孢杆菌(BtSpeG)的 SpeG 酶在别构部位结合多胺,并采用类似于革兰氏阴性细菌中其他 SpeG 酶的十二聚体寡聚状态。我们的动力学结果表明,BtSpeG 的催化效率大于迄今为止任何已表征的 SpeG,与其他 SpeG 蛋白不同,它对精胺和亚精胺表现出非常相似的动力学特性。与大肠杆菌中的 SpeG 酶类似,BtSpeG 能够在 N 和 N 位置上乙酰化亚精胺。BtSpeG 对精胺和亚精胺的周转率也比以前表征的任何其他芽孢杆菌 SSAT 酶高出两到三个数量级。包括蜡状芽孢杆菌、苏云金芽孢杆菌和炭疽芽孢杆菌在内的芽孢杆菌中的 SpeG 蛋白具有几乎相同的序列,因此我们的结果可能为多个芽孢杆菌物种的结构/功能关系提供了深入了解。