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Payliss, B. J.

Publications and source records attributed to Payliss, B. J..

2 recordsLinked to original sources

Dna2-intrinsic condensation regulates DNA end resection and reveals evolutionary redistribution of condensate grammar

Eukaryotic cells commonly use biomolecular condensation of DNA double-strand break (DSB) repair scaffolds and signaling assemblies to organize repair reactions in space and time. Yet whether DSB end-processing enzymes themselves encode tunable phase separation that potentiates resection remains unclear. Here we show that the long-range resection enzyme Dna2 forms liquid-like condensates through an intrinsically disordered region that is necessary and sufficient for phase separation and catalytic enhancement in Saccharomyces cerevisiae. Dna2 condensates concentrate DNA substrates and enhance end processing, whereas disrupting condensate formation impairs repair kinetics, checkpoint signaling, and chromosome stability. Grafting of the heterologous intrinsically disordered region of human FUS partly rescues condensate formation and function, and Cdk1-dependent phosphorylation sites tune condensate stability and enzymatic output in cis and in trans. Machine-learning-based analysis reveals that condensation-promoting features of fungal Dna2 are shared with a restricted set of human DNA2-associated resection regulators. Together, these findings define phosphorylation-tuned, enzyme-intrinsic phase separation as an organizational principle of DSB end resection while supporting a model in which condensation-promoting features are redistributed among factors operating within conserved genome maintenance pathways.

molecular biology↗

A free energy landscape screen reveals the disordered conformational ensemble of tropoelastin

Understanding how proteins explore their conformational energy landscapes is essential for linking sequence to function, yet current ensemble methods are limited by sampling inefficiency and poor scalability to large disordered systems. Here we introduce a free energy landscape screen (FELS), a conceptually different approach that replaces sampling-centric ensemble fitting with broad exploration of energy landscapes, screening thousands of landscape shapes--from highly funneled to flat and rugged. By systematically biasing and evaluating large conformer pools according to contact propensities derived from experiment, FELS efficiently identifies sets of conformers that best reproduce experimental data and highlights candidates for structural refinement, without being restricted by chain length or amount of disorder. To demonstrate the power of this approach we applied it to a previously intractable system, human tropoelastin (hTE), a [~]700-residue precursor of elastin. FELS provides the first experimentally defined atomistic view of the hTE conformational ensemble, revealing that this protein is intrinsically disordered yet exhibits distinct local secondary structure and specific, transient medium- and long-range contacts that organize its ensemble. These findings reconcile long-standing conflicting models and demonstrate that FELS provides a general, experimentally driven framework for mapping conformational energy landscapes of large proteins across the continuum between structural order and disorder.

biochemistry↗