Cas1 epistasis tunes conformational coupling to enhance CRISPR adaptation
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CRISPR adaptation requires Cas1–Cas2 to capture prespacers, undergo conformational rearrangement and catalyse integration, but how these steps are coupled remains unclear. Using nine hyperactive Escherichia coli Cas1 substitutions as perturbational probes, we identified a prespacer-coupling module intersecting an interior conformational-coupling module. Single substitutions increased adaptation up to sixfold, whereas combinatorial reassortment generated a genotype with 103- fold greater activity than wild type. Genotype-network analysis and quantitative reconstruction revealed strong background-dependent epistasis: the same substitution could enhance activity in one genotype but impair it in another, and high activity emerged only from compatible combinations spanning both modules. These findings indicate that Cas1–Cas2 activity is constrained by compatibility among changes distributed across the Cas1 dimer, rather than by optimization of individual catalytic or DNA-binding interactions. We propose that coordinated tuning of prespacer engagement and conformational coupling governs Cas1–Cas2 activity during CRISPR adaptation.