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Biology subjects

Nimkar, S.

Publications and source records attributed to Nimkar, S..

2 recordsLinked to original sources

Adaptive capacity of a DNA polymerase clamp-loader ATPase complex

The ability of mutations to facilitate adaptation is central to evolution. To understand how mutations can lead to functional adaptation in a complex molecular machine, we created a defective version of the T4 clamp-loader complex, which is essential for DNA replication. This variant, which is [~]5000-fold less active than the wildtype, was made by replacing the catalytic domains with those from another phage. A directed-evolution experiment revealed that multiple substitutions to a single negatively-charged residue in the chimeric clamp loader - Asp 86 - restore fitness to within [~]20-fold of wildtype. These mutations remove an adventitious electrostatic repulsive interaction between Asp 86 and the sliding clamp. Deep mutagenesis shows that the reduced fitness of the chimeric clamp loader is compensated for by lysine and arginine substitutions of several DNA-proximal residues in the clamp loader or the sliding clamp. Thus, the fitness decrease of the chimeric clamp loader is caused by a reduction in affinity between the clamp loader and the clamp. Our results demonstrate that there is a latent capacity for increasing affinity of the clamp loader for DNA and the sliding clamp, such that even single point mutations can readily compensate for the loss of function due to suboptimal interactions elsewhere.

biochemistry↗

Cas3 Mediated Target DNA Recognition and Cleavage is Independent of the Composition and Architecture of Cascade Surveillance Complex

In type I CRISPR-Cas system, Cas3 -a nuclease cum helicase- in cooperation with Cascade surveillance complex cleaves the target DNA. Unlike the Cascade/I-E, which is composed of five subunits, the Cascade/I-C is made of only three subunits lacking the CRISPR RNA processing enzyme Cas6, whose role is assumed by Cas5. How these differences in the composition and organisation of Cascade subunits in type I-C influences the Cas3/I-C binding and its target cleavage mechanism is poorly understood. Here, we show that Cas3/I-C is intrinsically a single-strand specific promiscuous nuclease. Apart from the helicase domain, a constellation of highly conserved residues -that are unique to type I-C- located in the uncharacterised C-terminal domain appears to influence the nuclease activity. Recruited by Cascade/I-C, the HD nuclease of Cas3/I-C nicks the single-stranded region of the nontarget strand and positions the helicase motor. Powered by ATP, the helicase motor reels in the target DNA, until it encounters the roadblock en route, which stimulates the HD nuclease. Remarkably, we show that Cas3/I-C supplants Cas3/I-E for CRISPR interference in type I-E in vivo, suggesting that the target cleavage mechanism is evolutionarily conserved between type I-C and type I-E despite the architectural difference exhibited by Cascade/I-C and Cascade/I-E.

molecular biology↗