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The mechanism driving a solid-solid phase transition in a biomacromolecular crystal

  1. Author:
    Ramakrishnan, Saminathan
    Stagno,Jason [ORCID]
    Heinz,Will [ORCID]
    Zuo, Xiaobing
    Yu,Ping
    Wang,Yun-Xing
  2. Author Address

    Structural Biophysics Laboratory, Centre for Cancer Research, National Cancer Institute, Frederick, MD 21702, USA., Optical Microscopy and Analysis Laboratory, Cancer Research Technology Program, Frederick National Laboratory for Cancer Research, Frederick, MD 21702, USA., X-ray Science Division, Argonne National Laboratory, Lemont, IL 60439, USA.,
    1. Year: 2021
    2. Date: Jul 01
    3. Epub Date: 2021 06 17
  1. Journal: IUCrJ
    1. 8
    2. Pt 4
    3. Pages: 655-664
  2. Type of Article: Article
  3. ISSN: 2052-2525
  1. Abstract:

    Solid-solid phase transitions (SSPTs) occur between distinguishable crystalline forms. Because of their importance in application and theory in materials science and condensed-matter physics, SSPTs have been studied most extensively in metallic alloys, inorganic salts and small organic molecular crystals, but much less so in biomacromolecular crystals. In general, the mechanisms of SSPTs at the atomic and molecular levels are not well understood. Here, the ordered molecular rearrangements in biomacromolecular crystals of the adenine riboswitch aptamer are described using real-time serial crystallography and solution atomic force microscopy. Large, ligand-induced conformational changes drive the initial phase transition from the apo unit cell (AUC) to the trans unit cell 1 (TUC1). During this transition, coaxial stacking of P1 duplexes becomes the dominant packing interface, whereas P2-P2 interactions are almost completely disrupted, resulting in 'floating' layers of molecules. The coupling points in TUC1 and their local conformational flexibility allow the molecules to reorganize to achieve the more densely packed and energetically favorable bound unit cell (BUC). This study thus reveals the interplay between the conformational changes and the crystal phases - the underlying mechanism that drives the phase transition. Using polarized video microscopy to monitor SSPTs in small crystals at high ligand concentration, the time window during which the major conformational changes take place was identified, and the in crystallo kinetics have been simulated. Together, these results provide the spatiotemporal information necessary for informing time-resolved crystallography experiments. Moreover, this study illustrates a practical approach to characterization of SSPTs in transparent crystals. © Saminathan Ramakrishnan et al. 2021.

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External Sources

  1. DOI: 10.1107/S2052252521004826
  2. PMID: 34258013
  3. PMCID: PMC8256710
  4. WOS: 000670812900016
  5. PII : S2052252521004826

Library Notes

  1. Fiscal Year: FY2020-2021
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