<p>The stability and function of biomolecules are directly influenced by their myriad interactions with water<sup><CitationRef AdditionalCitationIDS="CR2 CR3 CR4 CR5 CR6 CR7 CR8 CR9 CR10 CR11 CR12 CR13 CR14 CR15" CitationID="CR1">1</CitationRef>–<CitationRef CitationID="CR16">16</CitationRef></sup>. Here we investigated water through cryogenic electron microscopy (cryo-EM) on a highly solvated molecule: the <i>Tetrahymena</i> ribozyme. By using segmentation-guided water and ion modelling (SWIM)<sup><CitationRef CitationID="CR17">17</CitationRef>,<CitationRef CitationID="CR18">18</CitationRef></sup>, an approach combining resolvability and chemical parameters, we automatically modelled and cross-validated water molecules and Mg<sup>2+</sup> ions in the ribozyme core, revealing the extensive involvement of water in mediating RNA non-canonical interactions. Unexpectedly, in regions where SWIM does not model ordered water, we observed highly similar densities in both cryo-EM maps. In many of these regions, the cryo-EM densities superimpose with complex water networks predicted by molecular dynamics, supporting their assignment as water and suggesting a biophysical explanation for their elusiveness to conventional atomic coordinate modelling. Our study demonstrates an approach to unveil both rigid and flexible waters that surround biomolecules through cryo-EM map densities, statistical and chemical metrics, and molecular dynamics simulations.</p>

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Complex water networks visualized by cryogenic electron microscopy of RNA

  • Rachael C. Kretsch,
  • Shanshan Li,
  • Grigore Pintilie,
  • Michael Z. Palo,
  • David A. Case,
  • Rhiju Das,
  • Kaiming Zhang,
  • Wah Chiu

摘要

The stability and function of biomolecules are directly influenced by their myriad interactions with water116. Here we investigated water through cryogenic electron microscopy (cryo-EM) on a highly solvated molecule: the Tetrahymena ribozyme. By using segmentation-guided water and ion modelling (SWIM)17,18, an approach combining resolvability and chemical parameters, we automatically modelled and cross-validated water molecules and Mg2+ ions in the ribozyme core, revealing the extensive involvement of water in mediating RNA non-canonical interactions. Unexpectedly, in regions where SWIM does not model ordered water, we observed highly similar densities in both cryo-EM maps. In many of these regions, the cryo-EM densities superimpose with complex water networks predicted by molecular dynamics, supporting their assignment as water and suggesting a biophysical explanation for their elusiveness to conventional atomic coordinate modelling. Our study demonstrates an approach to unveil both rigid and flexible waters that surround biomolecules through cryo-EM map densities, statistical and chemical metrics, and molecular dynamics simulations.