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Unraveling cellular complexity with transient adapters in highly multiplexed super-resolution imaging.
Schueder, Florian; Rivera-Molina, Felix; Su, Maohan; Marin, Zach; Kidd, Phylicia; Rothman, James E; Toomre, Derek; Bewersdorf, Joerg.
Afiliação
  • Schueder F; Department of Cell Biology, Yale School of Medicine, New Haven, CT, USA; Department of Microbial Pathogenesis, Yale School of Medicine, New Haven, CT, USA. Electronic address: florian.schueder@yale.edu.
  • Rivera-Molina F; Department of Cell Biology, Yale School of Medicine, New Haven, CT, USA.
  • Su M; Department of Cell Biology, Yale School of Medicine, New Haven, CT, USA.
  • Marin Z; Department of Cell Biology, Yale School of Medicine, New Haven, CT, USA; Department of Biomedical Engineering, Yale University, New Haven, CT, USA.
  • Kidd P; Department of Cell Biology, Yale School of Medicine, New Haven, CT, USA.
  • Rothman JE; Department of Cell Biology, Yale School of Medicine, New Haven, CT, USA; Nanobiology Institute, Yale University, West Haven, CT, USA.
  • Toomre D; Department of Cell Biology, Yale School of Medicine, New Haven, CT, USA.
  • Bewersdorf J; Department of Cell Biology, Yale School of Medicine, New Haven, CT, USA; Department of Biomedical Engineering, Yale University, New Haven, CT, USA; Nanobiology Institute, Yale University, West Haven, CT, USA; Kavli Institute for Neuroscience, Yale School of Medicine, New Haven, CT, USA; Department o
Cell ; 187(7): 1769-1784.e18, 2024 Mar 28.
Article em En | MEDLINE | ID: mdl-38552613
ABSTRACT
Mapping the intricate spatial relationships between the many different molecules inside a cell is essential to understanding cellular functions in all their complexity. Super-resolution fluorescence microscopy offers the required spatial resolution but struggles to reveal more than four different targets simultaneously. Exchanging labels in subsequent imaging rounds for multiplexed imaging extends this number but is limited by its low throughput. Here, we present a method for rapid multiplexed super-resolution microscopy that can, in principle, be applied to a nearly unlimited number of molecular targets by leveraging fluorogenic labeling in conjunction with transient adapter-mediated switching for high-throughput DNA-PAINT (FLASH-PAINT). We demonstrate the versatility of FLASH-PAINT with four applications mapping nine proteins in a single mammalian cell, elucidating the functional organization of primary cilia by nine-target imaging, revealing the changes in proximity of thirteen different targets in unperturbed and dissociated Golgi stacks, and investigating and quantifying inter-organelle contacts at 3D super-resolution.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Microscopia de Fluorescência Limite: Animals Idioma: En Revista: Cell Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Microscopia de Fluorescência Limite: Animals Idioma: En Revista: Cell Ano de publicação: 2024 Tipo de documento: Article