Pohane Amol Arunrao, Patidar Neelam Devidas, Jain Vikas
Microbiology and Molecular Biology Laboratory, Department of Biological Sciences, Indian Institute of Science Education and Research (IISER), Bhopal 462023, India.
Microbiology and Molecular Biology Laboratory, Department of Biological Sciences, Indian Institute of Science Education and Research (IISER), Bhopal 462023, India.
FEBS Lett. 2015 Mar 12;589(6):695-701. doi: 10.1016/j.febslet.2015.01.036. Epub 2015 Feb 7.
Phage-encoded cell wall peptidoglycan hydrolyzing enzymes, called endolysins, are essential for efficient release of virions from bacteria, and show species-specific killing of the host. We have demonstrated previously that the interaction between N-terminal catalytic and C-terminal cell wall binding domains of mycobacteriophage D29 endolysin makes the enzyme inactive in Escherichiacoli. Here, we demonstrate that such interaction occurs intramolecularly and is facilitated by a charged linker that connects the two domains. We also show that linker composition is crucial for the inactivation of PG hydrolase in E. coli. Such knowledge will immensely help in bioengineering of endolysins with narrow or broad spectrum antimicrobial activity.
噬菌体编码的细胞壁肽聚糖水解酶,即内溶素,对于从细菌中高效释放病毒粒子至关重要,并表现出对宿主的种特异性杀伤作用。我们之前已经证明,分枝杆菌噬菌体D29内溶素的N端催化结构域和C端细胞壁结合结构域之间的相互作用会使该酶在大肠杆菌中失活。在此,我们证明这种相互作用发生在分子内,并且由连接两个结构域的带电荷接头促进。我们还表明接头组成对于大肠杆菌中PG水解酶的失活至关重要。这些知识将极大地有助于对具有窄谱或广谱抗菌活性的内溶素进行生物工程改造。