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Biology subjects

KR, M.

Publications and source records attributed to KR, M..

2 recordsLinked to original sources

Structural analysis unravels the functional promiscuity of Quinolone synthase-mediated polyketide biosynthesis in Aegle marmelos Correa

Quinolone synthase from Aegle marmelos (AmQNS) is a type III polyketide synthase that yields therapeutically effective quinolone and acridone compounds. Based on the high-resolution protein structure of AmQNS, this study provided a mechanistic explanation of the structure to synthetic selectivity. Additionally, it displays the comparatively wide active site entry that allows the catalytic pocket to accommodate bulky substrates, which affects the enzyme catalysis. We also develop a model framework for comprehending the structural constraints on ketide insertion, and postulate that AmQNS synthetic diversity is owing to its steric and electrostatic selectivity, which allows it to bind to a variety of core substrates. We further establish that AmQNS is structurally biased toward quinolone synthesis and only synthesizes acridone when malonyl-CoA concentrations are significantly high. In a nutshell, we anticipate that addressing the structural and molecular underpinnings of AmQNS-substrate interaction in terms of its high selectivity and specificity can aid in the development of numerous novel compounds. Besides, the approaches can also be expanded to other potential enzymes, which will help the pharmaceutical sector by expanding the pool of potential medication leads.

biochemistry↗

Decoding assembly of alpha-helical transmembrane pores through intermediate states

Membrane-active pore-forming alpha-helical peptides and proteins are well known for their dynamic assembly mechanism and it has been critical to delineate the pore-forming structures in the membrane. Previously, attempts have been made to elucidate their assembly mechanism and there is a large gap due to complex pathways by which these membrane-active pores impart their effect. Here we demonstrate the multi-step structural assembly pathway of alpha-helical peptide pores formed by a 37 amino-acid synthetic peptide, pPorU based on the natural porin from Corynebacterium urealyticum using single-channel electrical recordings. More specifically, we report detectable intermediates states during membrane insertion and pore formation of pPorU. The fully assembled pore is functional and exhibited unusually large stable conductance and voltage-dependent gating, generally applicable to a range of pore-forming proteins. Furthermore, we used rationally designed mutants to understand the role of specific amino acids in the assembly of these peptide pores. Mutant peptides that differ from wild-type peptides produced noisy, unstable intermediate states and low conductance pores, demonstrating sequence specificity in the pore-formation process supported by molecular dynamics simulations. We suggest that our study contributes to understanding the mechanism of action of alpha-helical pores and antimicrobial peptides and should be of broad interest to bioengineers to build peptide-based nanopore sensors.

biophysics↗