Active Genetics & Molecular Biology Cells, Biochemistry & Physiology

Conformational Switches in Action: A New Framework for Understanding Macromolecular Machines in Genome Maintenance

Summary

Original abstract (not yet simplified)

Macromolecular complexes perform essential cellular activities by harnessing chemical energy to drive biological processes. My recent discovery of the "entropy switch" mechanism in replicative helicases (Nature, 2025) established a new paradigm in understanding how such machines work, revealing that ATP hydrolysis achieves mechanical work not through power strokes – but by releasing constraints to permit molecular motions that drive function.Building...

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Macromolecular complexes perform essential cellular activities by harnessing chemical energy to drive biological processes. My recent discovery of the "entropy switch" mechanism in replicative helicases (Nature, 2025) established a new paradigm in understanding how such machines work, revealing that ATP hydrolysis achieves mechanical work not through power strokes – but by releasing constraints to permit molecular motions that drive function.Building on this breakthrough, I aim to establish an independent research program investigating how annealing helicases – SMARCAL1 and ZRANB3 – harness ATP to drive DNA rewinding during replication stress. Using my pioneering integration of time-resolved cryo-EM with AI-driven conformational analysis, I will: (1) dissect SMARCAL1's mechanism for displacing RPA from single-stranded DNA, (2) reveal how ZRANB3 employs substrate-dependent conformational switching between annealing and nuclease activities, and (3) define how mechanochemical coupling drives reverse reactions in these specialised enzymes. This work will address fundamental questions about energy transduction while providing mechanistic insights into diseases caused by annealing helicase mutations.The Accelerator Award will accelerate my transition to independence and establish the foundation for investigating diverse genome maintenance complexes. It will enable me to develop leadership skills, build preliminary data for major funding applications, and establish my distinctive scientific identity.

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Researchers

Taha Shahid (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Structural and molecular mechanisms of the 55LCC ATPase complex and its function in DNA replication
Unravelling the mechanism of eukaryotic helicase activation
Action! Modelling DNA nano-machines for deciphering their molecular mechanisms
Unravelling the invisible complexities of the genome
Discovering the structural and mechanistic principles of human helicase-loading control and its misregulation in cancer

Original classification

Wellcome Accelerator Awards

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