Keshari Deepa, Singh Kumar Sachin, Sharma Rishabh, Yadav Shailendra, Singh Sudheer Kumar
Microbiology Division, CSIR-Central Drug Research Institute, B.S. 10/1, Sector-10, Jankipuram Extension, Sitapur Road, Lucknow, 226031, India.
Microbiology Division, CSIR-Central Drug Research Institute, B.S. 10/1, Sector-10, Jankipuram Extension, Sitapur Road, Lucknow, 226031, India; Academy of Scientific and Innovative Research (AcSIR), New Delhi, India.
Tuberculosis (Edinb). 2017 Mar;103:61-70. doi: 10.1016/j.tube.2017.01.004. Epub 2017 Jan 19.
The Mycobacterium tuberculosis (Mtb) genome sequence and annotation details have been available for a long time; however physiological relevance of many ORFs remains poorly described. Mtb is a pathogenic strain; hence, surrogate strains such as Mycobacterium bovis BCG and Mycobacterium smegmatis (Msmeg) have also been studied to gain an understanding of mycobacterial physiology and metabolism. The Mycobacterium smegmatis mc 155 ORF MSMEG_5684 is annotated as a part of serine biosynthetic pathway, however, its physiological significance remains to be established experimentally. To understand the relevance of SerC for Msmeg physiology we developed a recombinant Mycobacterium smegmatis with SerC knockdown (KD) and also complemented it with serC over-expressing construct (KDC). The KD showed reduced growth compared to wild-type (WT) and complemented strain on glycerol as carbon source. The growth of KD was restored after supplementation of serine. The survival studies with WT and KD under oxidative, nitrosative and detergent stresses showed increased susceptibility of KD. The KD also showed increased susceptibility to antimycobacterial agents and poor ability for in vitro persistence. Also, the serC transcript profiling showed increased expression under stress. The complementation studies with Msmeg serC showed growth restoration of E. coli-ΔserC in minimal medium.
结核分枝杆菌(Mtb)的基因组序列和注释细节已存在很长时间;然而,许多开放阅读框(ORF)的生理相关性仍描述甚少。Mtb是一种致病菌株;因此,诸如卡介苗(Mycobacterium bovis BCG)和耻垢分枝杆菌(Mycobacterium smegmatis,Msmeg)等替代菌株也已被研究,以增进对分枝杆菌生理学和新陈代谢的理解。耻垢分枝杆菌mc155的开放阅读框MSMEG_5684被注释为丝氨酸生物合成途径的一部分,然而,其实验生理学意义仍有待确定。为了解SerC对耻垢分枝杆菌生理学的相关性,我们构建了一种SerC基因敲低(KD)的重组耻垢分枝杆菌,并还用serC过表达构建体(KDC)对其进行了互补。与野生型(WT)和互补菌株相比,KD在以甘油作为碳源时生长减缓。补充丝氨酸后,KD的生长得以恢复。在氧化、亚硝化和去污剂应激条件下对WT和KD进行的存活研究表明,KD的易感性增加。KD对抗分枝杆菌药物的敏感性也增加,且体外持续存在能力较差。此外,serC转录谱分析表明,在应激条件下其表达增加。用耻垢分枝杆菌serC进行的互补研究表明,大肠杆菌ΔserC在基本培养基中的生长得以恢复。