Literature DB >> 25755111

Three-color confocal Förster (or fluorescence) resonance energy transfer microscopy: Quantitative analysis of protein interactions in the nucleation of actin filaments in live cells.

Horst Wallrabe1,2, Yuansheng Sun1, Xiaolan Fang2, Ammasi Periasamy1,2, George S Bloom2,3.   

Abstract

Experiments using live cell 3-color Förster (or fluorescence) resonance energy transfer (FRET) microscopy and corresponding in vitro biochemical reconstitution of the same proteins were conducted to evaluate actin filament nucleation. A novel application of 3-color FRET data is demonstrated, extending the analysis beyond the customary energy-transfer efficiency (E%) calculations. MDCK cells were transfected for coexpression of Teal-N-WASP/Venus-IQGAP1/mRFP1-Rac1, Teal-N-WASP/Venus-IQGAP1/mRFP1-Cdc42, CFP-Rac1/Venus-IQGAP1/mCherry-actin, or CFP-Cdc42/Venus-IQGAP1/mCherry-actin, and with single-label equivalents for spectral bleedthrough correction. Using confirmed E% as an entry point, fluorescence levels and related ratios were correlated at discrete accumulating levels at cell peripheries. Rising ratios of CFP-Rac1:Venus-IQGAP1 were correlated with lower overall actin fluorescence, whereas the CFP-Cdc42:Venus-IQGAP1 ratio correlated with increased actin fluorescence at low ratios, but was neutral at higher ratios. The new FRET analyses also indicated that rising levels of mRFP1-Cdc42 or mRFP1-Rac1, respectively, promoted or suppressed the association of Teal-N-WASP with Venus-IQGAP1. These 3-color FRET assays further support our in vitro results about the role of IQGAP1, Rac1, and Cdc42 in actin nucleation, and the differential impact of Rac1 and Cdc42 on the association of N-WASP with IQGAP1. In addition, this study emphasizes the power of 3-color FRET as a systems biology strategy for simultaneous evaluation of multiple interacting proteins in individual live cells.
© 2015 International Society for Advancement of Cytometry.

Entities:  

Keywords:  Cdc42; E%: energy-transfer efficiency; IQGAP1; Key terms: FRET: Förster (or fluorescence) resonance energy transfer; N-WASP; PFRET: processed FRET or spectral bleedthrough-corrected FRET; ROI: region of interest; Rac1; actin nucleation; quantitative FRET analysis

Mesh:

Substances:

Year:  2015        PMID: 25755111      PMCID: PMC4452401          DOI: 10.1002/cyto.a.22651

Source DB:  PubMed          Journal:  Cytometry A        ISSN: 1552-4922            Impact factor:   4.355


  15 in total

1.  FRET or no FRET: a quantitative comparison.

Authors:  Claude Berney; Gaudenz Danuser
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2.  Characterization of one- and two-photon excitation fluorescence resonance energy transfer microscopy.

Authors:  Masilamani Elangovan; Horst Wallrabe; Ye Chen; Richard N Day; Margarida Barroso; Ammasi Periasamy
Journal:  Methods       Date:  2003-01       Impact factor: 3.608

3.  Generation of an intramolecular three-color fluorescence resonance energy transfer probe by site-specific protein labeling.

Authors:  Stephanie Voss; Lei Zhao; Xi Chen; Frank Gerhard; Yao-Wen Wu
Journal:  J Pept Sci       Date:  2014-01-06       Impact factor: 1.905

4.  IQGAP1 interactome analysis by in vitro reconstitution and live cell 3-color FRET microscopy.

Authors:  Horst Wallrabe; Ying Cai; Yuansheng Sun; Ammasi Periasamy; Rafael Luzes; Xiaolan Fang; Ho-Man Kan; Luiz-Claudio Cameron; Dorothy A Schafer; George S Bloom
Journal:  Cytoskeleton (Hoboken)       Date:  2013-10-16

5.  An optical trap combined with three-color FRET.

Authors:  Sanghwa Lee; Sungchul Hohng
Journal:  J Am Chem Soc       Date:  2013-11-26       Impact factor: 15.419

6.  Characterization of an orange acceptor fluorescent protein for sensitized spectral fluorescence resonance energy transfer microscopy using a white-light laser.

Authors:  Yuansheng Sun; Cynthia F Booker; Sangeeta Kumari; Richard N Day; Mike Davidson; Ammasi Periasamy
Journal:  J Biomed Opt       Date:  2009 Sep-Oct       Impact factor: 3.170

7.  The Arp2/3 complex mediates actin polymerization induced by the small GTP-binding protein Cdc42.

Authors:  L Ma; R Rohatgi; M W Kirschner
Journal:  Proc Natl Acad Sci U S A       Date:  1998-12-22       Impact factor: 11.205

Review 8.  FRET microscopy in 2010: the legacy of Theodor Förster on the 100th anniversary of his birth.

Authors:  Yuansheng Sun; Horst Wallrabe; Soo-Ah Seo; Ammasi Periasamy
Journal:  Chemphyschem       Date:  2010-12-29       Impact factor: 3.102

9.  Dye dynamics in three-color FRET samples.

Authors:  Sören Gehne; Roman Flehr; Andrea Altevogt; Maik Berg; Willi Bannwarth; Michael U Kumke
Journal:  J Phys Chem B       Date:  2012-08-27       Impact factor: 2.991

10.  Regulatory conformational changes of the ε subunit in single FRET-labeled FoF1-ATP synthase.

Authors:  Thomas M Duncan; Monika G Düser; Thomas Heitkamp; Duncan G G McMillan; Michael Börsch
Journal:  Proc SPIE Int Soc Opt Eng       Date:  2014-02-28
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  5 in total

Review 1.  FRET from single to multiplexed signaling events.

Authors:  Gertrude Bunt; Fred S Wouters
Journal:  Biophys Rev       Date:  2017-03-23

2.  A Quantitative Theoretical Framework For Protein-Induced Fluorescence Enhancement-Förster-Type Resonance Energy Transfer (PIFE-FRET).

Authors:  Eitan Lerner; Evelyn Ploetz; Johannes Hohlbein; Thorben Cordes; Shimon Weiss
Journal:  J Phys Chem B       Date:  2016-05-26       Impact factor: 2.991

3.  Chasing the signaling run by tri-molecular time-lapse FRET microscopy.

Authors:  Hsiang-Ling Kuo; Pei-Chuan Ho; Shenq-Shyang Huang; Nan-Shan Chang
Journal:  Cell Death Discov       Date:  2018-03-22

4.  Heat Shock Protein 27 Phosphorylation Regulates Tumor Cell Migration under Shear Stress.

Authors:  Baohong Zhang; Fei Xie; Aziz Ur Rehman Aziz; Shuai Shao; Wang Li; Sha Deng; Xiaoling Liao; Bo Liu
Journal:  Biomolecules       Date:  2019-01-30

Review 5.  Application of FRET Biosensors in Mechanobiology and Mechanopharmacological Screening.

Authors:  Longwei Liu; Fangchao He; Yiyan Yu; Yingxiao Wang
Journal:  Front Bioeng Biotechnol       Date:  2020-11-09
  5 in total

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