» Articles » PMID: 24630103

Single-molecule Studies of Actin Assembly and Disassembly Factors

Overview
Journal Methods Enzymol
Specialty Biochemistry
Date 2014 Mar 18
PMID 24630103
Citations 11
Authors
Affiliations
Soon will be listed here.
Abstract

The actin cytoskeleton is very dynamic and highly regulated by multiple associated proteins in vivo. Understanding how this system of proteins functions in the processes of actin network assembly and disassembly requires methods to dissect the mechanisms of activity of individual factors and of multiple factors acting in concert. The advent of single-filament and single-molecule fluorescence imaging methods has provided a powerful new approach to discovering actin-regulatory activities and obtaining direct, quantitative insights into the pathways of molecular interactions that regulate actin network architecture and dynamics. Here we describe techniques for acquisition and analysis of single-molecule data, applied to the novel challenges of studying the filament assembly and disassembly activities of actin-associated proteins in vitro. We discuss the advantages of single-molecule analysis in directly visualizing the order of molecular events, measuring the kinetic rates of filament binding and dissociation, and studying the coordination among multiple factors. The methods described here complement traditional biochemical approaches in elucidating actin-regulatory mechanisms in reconstituted filamentous networks.

Citing Articles

Computational tools for quantifying actin filament numbers, lengths, and bundling.

Sherer L, Mahanta B, Courtemanche N Biol Open. 2024; 13(3).

PMID: 38372564 PMC: 10924227. DOI: 10.1242/bio.060267.


Visualizing Actin and Microtubule Coupling Dynamics In Vitro by Total Internal Reflection Fluorescence (TIRF) Microscopy.

Henty-Ridilla J J Vis Exp. 2022; (185).

PMID: 35938818 PMC: 10132125. DOI: 10.3791/64074.


YAP signaling is involved in WDR1-regulated proliferation and migration of non-small-cell lung cancer cells.

An R, Wang J, Chen X, Xu R, Hu J, Liu Z Exp Biol Med (Maywood). 2022; 247(18):1619-1629.

PMID: 35861209 PMC: 9597210. DOI: 10.1177/15353702221110645.


Single-molecule imaging of IQGAP1 regulating actin filament dynamics.

Hoeprich G, Sinclair A, Shekhar S, Goode B Mol Biol Cell. 2021; 33(1):ar2.

PMID: 34731043 PMC: 8886817. DOI: 10.1091/mbc.E21-04-0211.


Reconstitution of contractile actomyosin rings in vesicles.

Litschel T, Kelley C, Holz D, Adeli Koudehi M, Vogel S, Burbaum L Nat Commun. 2021; 12(1):2254.

PMID: 33859190 PMC: 8050101. DOI: 10.1038/s41467-021-22422-7.


References
1.
Smith B, Daugherty-Clarke K, Goode B, Gelles J . Pathway of actin filament branch formation by Arp2/3 complex revealed by single-molecule imaging. Proc Natl Acad Sci U S A. 2013; 110(4):1285-90. PMC: 3557048. DOI: 10.1073/pnas.1211164110. View

2.
Yanagida T, Nakase M, Nishiyama K, Oosawa F . Direct observation of motion of single F-actin filaments in the presence of myosin. Nature. 1984; 307(5946):58-60. DOI: 10.1038/307058a0. View

3.
Beltzner C, Pollard T . Pathway of actin filament branch formation by Arp2/3 complex. J Biol Chem. 2008; 283(11):7135-44. DOI: 10.1074/jbc.M705894200. View

4.
Mogilner A, Wollman R, Marshall W . Quantitative modeling in cell biology: what is it good for?. Dev Cell. 2006; 11(3):279-87. DOI: 10.1016/j.devcel.2006.08.004. View

5.
Cai L, Makhov A, Schafer D, Bear J . Coronin 1B antagonizes cortactin and remodels Arp2/3-containing actin branches in lamellipodia. Cell. 2008; 134(5):828-42. PMC: 2570342. DOI: 10.1016/j.cell.2008.06.054. View