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Multimodal interference-based imaging of nanoscale structure and macromolecular motion uncovers UV induced cellular paroxysm

Author

Listed:
  • Scott Gladstein

    (Northwestern University)

  • Luay M. Almassalha

    (Northwestern University)

  • Lusik Cherkezyan

    (Northwestern University)

  • John E. Chandler

    (Northwestern University)

  • Adam Eshein

    (Northwestern University)

  • Aya Eid

    (Northwestern University)

  • Di Zhang

    (Northwestern University)

  • Wenli Wu

    (Northwestern University)

  • Greta M. Bauer

    (Northwestern University)

  • Andrew D. Stephens

    (Northwestern University)

  • Simona Morochnik

    (Northwestern University)

  • Hariharan Subramanian

    (Northwestern University
    Northwestern University)

  • John F. Marko

    (Northwestern University
    Northwestern University
    Northwestern University)

  • Guillermo A. Ameer

    (Northwestern University
    Northwestern University
    Northwestern University)

  • Igal Szleifer

    (Northwestern University
    Northwestern University
    Northwestern University)

  • Vadim Backman

    (Northwestern University
    Northwestern University
    Northwestern University)

Abstract

Understanding the relationship between intracellular motion and macromolecular structure remains a challenge in biology. Macromolecular structures are assembled from numerous molecules, some of which cannot be labeled. Most techniques to study motion require potentially cytotoxic dyes or transfection, which can alter cellular behavior and are susceptible to photobleaching. Here we present a multimodal label-free imaging platform for measuring intracellular structure and macromolecular dynamics in living cells with a sensitivity to macromolecular structure as small as 20 nm and millisecond temporal resolution. We develop and validate a theory for temporal measurements of light interference. In vitro, we study how higher-order chromatin structure and dynamics change during cell differentiation and ultraviolet (UV) light irradiation. Finally, we discover cellular paroxysms, a near-instantaneous burst of macromolecular motion that occurs during UV induced cell death. With nanoscale sensitive, millisecond resolved capabilities, this platform could address critical questions about macromolecular behavior in live cells.

Suggested Citation

  • Scott Gladstein & Luay M. Almassalha & Lusik Cherkezyan & John E. Chandler & Adam Eshein & Aya Eid & Di Zhang & Wenli Wu & Greta M. Bauer & Andrew D. Stephens & Simona Morochnik & Hariharan Subramania, 2019. "Multimodal interference-based imaging of nanoscale structure and macromolecular motion uncovers UV induced cellular paroxysm," Nature Communications, Nature, vol. 10(1), pages 1-15, December.
  • Handle: RePEc:nat:natcom:v:10:y:2019:i:1:d:10.1038_s41467-019-09717-6
    DOI: 10.1038/s41467-019-09717-6
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