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Time-Resolved Fluorescence Anisotropy of a Molecular Rotor Resolves Microscopic Viscosity Parameters in Complex Environments.
Steinmark, I Emilie; Chung, Pei-Hua; Ziolek, Robert M; Cornell, Bethan; Smith, Paul; Levitt, James A; Tregidgo, Carolyn; Molteni, Carla; Yahioglu, Gokhan; Lorenz, Christian D; Suhling, Klaus.
Afiliação
  • Steinmark IE; Department of Physics, King's College London, UK.
  • Chung PH; Department of Physics, King's College London, UK.
  • Ziolek RM; Department of Physics, King's College London, UK.
  • Cornell B; Department of Physics, King's College London, UK.
  • Smith P; Department of Physics, King's College London, UK.
  • Levitt JA; Randall Centre for Cell & Molecular Biophysics, King's College London, UK.
  • Tregidgo C; Department of Physics, King's College London, UK.
  • Molteni C; Genomics England, London, EC1M 6BQ, UK.
  • Yahioglu G; Department of Physics, King's College London, UK.
  • Lorenz CD; Antikor Biopharma Ltd., Stevenage, SG1 2FX, UK.
  • Suhling K; Department of Physics, King's College London, UK.
Small ; 16(22): e1907139, 2020 06.
Article em En | MEDLINE | ID: mdl-32363742
ABSTRACT
Understanding viscosity in complex environments remains a largely unanswered question despite its importance in determining reaction rates in vivo. Here, time-resolved fluorescence anisotropy imaging (TR-FAIM) is combined with fluorescent molecular rotors (FMRs) to simultaneously determine two non-equivalent viscosity-related parameters in complex heterogeneous environments. The parameters, FMR rotational correlation time and lifetime, are extracted from fluorescence anisotropy decays, which in heterogeneous environments show dip-and-rise behavior due to multiple dye populations. Decays of this kind are found both in artificially constructed adiposomes and in live cell lipid droplet organelles. Molecular dynamics simulations are used to assign each population to nano-environments within the lipid systems. The less viscous population corresponds to the state showing an average 25° tilt to the lipid membrane normal, and the more viscous population to the state showing an average 55° tilt. This combined experimental and simulation approach enables a comprehensive description of the FMR probe behavior within viscous nano-environments in complex, biological systems.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Imagem Óptica / Corantes Fluorescentes Idioma: En Ano de publicação: 2020 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Imagem Óptica / Corantes Fluorescentes Idioma: En Ano de publicação: 2020 Tipo de documento: Article