Electronic tuning of self-healing fluorophores for live-cell and single-molecule imaging† †Electronic supplementary information (ESI) available: Chart S1, Fig. S1 to S13, Scheme S1, Tables S1 and S2, note on calculating the effective concentration of protective agents, methods of cellular imaging and details the synthesis and characterization of compounds. Supplementary Movie 1: Single-molecule TIRF movies of living SNAPf-D2s-expressing CHO cells labeled with AF647 (left) or Cy5(4S)-AC(4) (right). Supplementary Movie 2: Single-molecule TIRF movies of living SNAPf-D2s-expressing CHO cells labeled with Dy549 (left) or Cy3(4S)-AC(4) (right). See DOI: 10.1039/c6sc02976k Click here for additional data file. Click here for additional data file. Click here for additional data file.

نویسندگان

  • Qinsi Zheng
  • Steffen Jockusch
  • Zhou Zhou
  • Roger B. Altman
  • Hong Zhao
  • Wesley Asher
  • Michael Holsey
  • Signe Mathiasen
  • Peter Geggier
  • Jonathan A. Javitch
  • Scott C. Blanchard
چکیده

Bright, long-lasting organic fluorophores enable a broad range of imaging applications. "Self-healing" fluorophores, in which intra-molecularly linked protective agents quench photo-induced reactive species, exhibit both enhanced photostability and biological compatibility. However, the self-healing strategy has yet to achieve its predicted potential, particularly in the presence of ambient oxygen where live-cell imaging studies must often be performed. To identify key bottlenecks in this technology that can be used to guide further engineering developments, we synthesized a series of Cy5 derivatives linked to the protective agent cyclooctatetraene (COT) and examined the photophysical mechanisms curtailing their performance. The data obtained reveal that the photostability of self-healing fluorophores is limited by reactivity of the COT protective agent. The addition of electron withdrawing substituents to COT reduced its susceptibility to reactions with molecular oxygen and the fluorophore to which it is attached and increased its capacity to participate in triplet energy transfer. Exploiting these insights, we designed and synthesized a suite of modified COT-fluorophores spanning the visible spectrum that exhibited markedly increased intra-molecular photostabilization. Under ambient oxygen conditions, the photostability of Cy3 and Cy5 fluorophore derivatives increased by 3- and 9-fold in vitro and by 2- and 6-fold in living cells, respectively. We further show that this approach can improve a silicon rhodamine fluorophore. These findings offer a clear strategy for achieving the full potential of the self-healing strategy and its application to the gamut of fluorophore species commonly used for biomedical imaging.

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Electronic tuning of self-healing fluorophores for live-cell and single-molecule imaging

Tri-Institutional Training Program in Chem Department of Physiology and Biophysics, W E-mail: [email protected] Department of Chemistry, Columbia Univer Departments of Psychiatry and Pharmac Physicians & Surgeons, USA Division of Molecular Therapeutics, New Yo † Electronic supplementary information ( Scheme S1, Tables S1 and S2, note on ca protective agents, methods of cellular im charact...

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a Shemyakin-Ovchinnikov Institute of Bioorganic Chemistry, Moscow, Russia b Nizhny Novgorod State Medical Academy, Nizhny Novgorod, Russia c​ Centre for Genomic Regulation (CRG), The Barcelona Institute for Science and Technology, Dr. Aiguader 88, 08003 Barcelona, Spain. d Pirogov Russian National Research Medical University, Moscow, Russia *​[email protected] Supplementary data (online) Movie S1 ...

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Movie S2: Zoom of the interface region between left, middle, and right particle. The left and right particles are cut for better visibility of the interface area and rendering colors are set as in movie S1. The movie clearly shows the enhanced Fe and Ni concentrations at the surface of the left and right particle as well as throughout the middle particle. In the last third of the movie the midd...

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عنوان ژورنال:

دوره 8  شماره 

صفحات  -

تاریخ انتشار 2017