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April 3, 2026Nature Communications0 citationsOpen Access

Bacterial collagenase harnesses collagen geometry for processive cleavage

HOHiroya OkiKTKatsuki TakebeABAdjoa O. Bonsu

Key Points

  • This research aims to uncover the molecular mechanisms by which ColH, a bacterial collagenase, processes collagen.
  • Utilized cryo-electron microscopy to visualize the structure of ColH bound to collagen.
  • Examined the dynamic motions of the enzyme during collagen engagement and cleavage.
  • Analyzed the unique conformation changes that facilitate collagen processing.
  • ColH encircles the collagen triple helix in a closed-ring conformation.
  • Enzyme undergoes dynamic motions that destabilize and prepare the collagen for cleavage.
  • Repeated cycling between dynamic states allows efficient triplet-by-triplet cleavage of collagen.

Abstract

Abstract Collagen, the major structural protein in the animal extracellular matrix, forms a triple helix that resists proteolysis and requires specialised enzymes for degradation. Flesh-eating bacteria secrete collagenases that unwind the collagen triple helix and processively trim Gly–X–Y triplet repeats, yet the molecular basis of this process has remained obscure. Here, cryo-electron microscopy reveals how Hathewaya histolytica collagenase ColH engages its substrate and exploits the helix’s architecture for catalysis. ColH encircles a single collagen triple helix in a closed-ring conformation and, through dynamic domain motions, dehydrates and destabilises it. The enzyme undergoes substrate-assisted twisting to adopt a rigid ratcheted conformation, in which one chain is bent into a tripeptide-long ‘bight’ and threaded into the active site for cleavage, while two uncut strands are partitioned to non-catalytic sites. Release of the bight appears to reset the enzyme, with the uncut strands serving as guiding tracks. Repeated cycling between dynamic and rigid states likely enables triplet-by-triplet translocation, allowing ColH to harness collagen’s geometry for processive degradation. These findings reveal a bacterial strategy for collagen unwinding and cleavage distinct from that of mammalian collagenases, highlighting divergent evolutionary solutions for degrading one of nature’s most intractable substrates.

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Cite This Study

Oki et al. (2026) studied this question.

synapsesocial.com/papers/69cf5f005a333a821460dd17https://doi.org/10.1038/s41467-026-71099-3
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