Literature DB >> 27473902

A FRET-based method for monitoring septin polymerization and binding of septin-associated proteins.

E A Booth1, J Thorner1.   

Abstract

Much about septin function has been inferred from in vivo studies using mainly genetic methods, and much of what we know about septin organization has been obtained through examination of static structures in vitro primarily by electron microscopy. Deeper mechanistic insight requires real-time analysis of the dynamics of the assembly of septin-based structures and how other proteins associate with them. We describe here a Förster resonance energy transfer (FRET)-based approach for measuring in vitro the rate and extent of filament formation from septin complexes, binding of other proteins to septin structures, and the apparent affinities of these interactions. FRET is particularly well suited for interrogating protein-protein interactions, especially on a rapid timescale; the spectral change provides an unambiguous indication of whether two elements within the system under study are associating and serves as a molecular-level "ruler" because it is very sensitive to the separation between the donor and acceptor fluorophores over biologically relevant distances (≤10nm). The necessary procedures involve generation of appropriate cysteine-less and single cysteine-containing septin variants, expression and purification of the heterooctameric complexes containing them, efficient labeling of the purified complexes with desired fluorophores, fluorimetric measurement of FRET, and appropriate safeguards and controls in data acquisition and analysis. Our methods can be used to interrogate the effects of buffer conditions, small molecules, and septin-binding proteins on septin filament assembly or stability; determine the effect of alternative septin subunits, mutational alterations, or posttranslational modifications on assembly; and, delineate the location of septin-binding proteins.
Copyright © 2016 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Dye labeling; Filament formation; Fluorescence; Förster resonance energy transfer; Protein complexes; Protein engineering; Protein purification; Protein–protein interaction; Site-directed mutagenesis; Supramolecular organization

Mesh:

Substances:

Year:  2016        PMID: 27473902      PMCID: PMC5021511          DOI: 10.1016/bs.mcb.2016.03.024

Source DB:  PubMed          Journal:  Methods Cell Biol        ISSN: 0091-679X            Impact factor:   1.441


  67 in total

1.  Structural and biochemical properties of Sept7, a unique septin required for filament formation.

Authors:  Eldar Zent; Ingrid Vetter; Alfred Wittinghofer
Journal:  Biol Chem       Date:  2011-08       Impact factor: 3.915

Review 2.  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

3.  Genetic control of the cell division cycle in yeast. IV. Genes controlling bud emergence and cytokinesis.

Authors:  L H Hartwell
Journal:  Exp Cell Res       Date:  1971-12       Impact factor: 3.905

4.  Pyrene actin: documentation of the validity of a sensitive assay for actin polymerization.

Authors:  J A Cooper; S B Walker; T D Pollard
Journal:  J Muscle Res Cell Motil       Date:  1983-04       Impact factor: 2.698

Review 5.  Yeast: an experimental organism for modern biology.

Authors:  D Botstein; G R Fink
Journal:  Science       Date:  1988-06-10       Impact factor: 47.728

6.  Saccharomyces cerevisiae septins: supramolecular organization of heterooligomers and the mechanism of filament assembly.

Authors:  Aurelie Bertin; Michael A McMurray; Patricia Grob; Sang-Shin Park; Galo Garcia; Insiyyah Patanwala; Ho-Leung Ng; Tom Alber; Jeremy Thorner; Eva Nogales
Journal:  Proc Natl Acad Sci U S A       Date:  2008-06-12       Impact factor: 11.205

7.  Architecture and dynamic remodelling of the septin cytoskeleton during the cell cycle.

Authors:  Katy Ong; Carsten Wloka; Satoshi Okada; Tatyana Svitkina; Erfei Bi
Journal:  Nat Commun       Date:  2014-12-05       Impact factor: 14.919

8.  Improving FRET dynamic range with bright green and red fluorescent proteins.

Authors:  Amy J Lam; François St-Pierre; Yiyang Gong; Jesse D Marshall; Paula J Cranfill; Michelle A Baird; Michael R McKeown; Jörg Wiedenmann; Michael W Davidson; Mark J Schnitzer; Roger Y Tsien; Michael Z Lin
Journal:  Nat Methods       Date:  2012-09-09       Impact factor: 28.547

9.  The septins are required for the mitosis-specific activation of the Gin4 kinase.

Authors:  C W Carroll; R Altman; D Schieltz; J R Yates; D Kellogg
Journal:  J Cell Biol       Date:  1998-11-02       Impact factor: 10.539

10.  Cellular morphogenesis in the Saccharomyces cerevisiae cell cycle: localization of the CDC3 gene product and the timing of events at the budding site.

Authors:  H B Kim; B K Haarer; J R Pringle
Journal:  J Cell Biol       Date:  1991-02       Impact factor: 10.539

View more
  4 in total

1.  Production and analysis of a mammalian septin hetero-octamer complex.

Authors:  Barry T DeRose; Robert S Kelley; Roshni Ravi; Bashkim Kokona; Joris Beld; Elias T Spiliotis; Shae B Padrick
Journal:  Cytoskeleton (Hoboken)       Date:  2020-11-23

2.  Effects of Bni5 Binding on Septin Filament Organization.

Authors:  Elizabeth A Booth; Sarah M Sterling; Dustin Dovala; Eva Nogales; Jeremy Thorner
Journal:  J Mol Biol       Date:  2016-10-30       Impact factor: 5.469

3.  Control of septin filament flexibility and bundling by subunit composition and nucleotide interactions.

Authors:  Anum Khan; Jay Newby; Amy S Gladfelter
Journal:  Mol Biol Cell       Date:  2018-01-10       Impact factor: 4.138

4.  The hierarchical assembly of septins revealed by high-speed AFM.

Authors:  Fang Jiao; Kevin S Cannon; Yi-Chih Lin; Amy S Gladfelter; Simon Scheuring
Journal:  Nat Commun       Date:  2020-10-08       Impact factor: 14.919

  4 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.