mNG-tagged fusion proteins and nanobodies to visualize tropomyosins in yeast and mammalian cells

Author:

Hatano Tomoyuki1,Lim Tzer Chyn1,Billault-Chaumartin Ingrid2,Dhar Anubhav3,Gu Ying45,Massam-Wu Teresa1,Scott William1,Adishesha Sushmitha3ORCID,Chapa-y-Lazo Bernardo1ORCID,Springall Luke1,Sivashanmugam Lavanya1ORCID,Mishima Masanori1,Martin Sophie G.2ORCID,Oliferenko Snezhana45,Palani Saravanan3ORCID,Balasubramanian Mohan K.1ORCID

Affiliation:

1. Centre for Mechanochemical Cell Biology and Division of Biomedical Sciences, Warwick Medical School 1 , Warwick CV4 7AL , UK

2. University of Lausanne 2 Department of Fundamental Microbiology, Faculty of Biology and Medicine , , Biophore Building, CH-1015 Lausanne , Switzerland

3. Indian Institute of Science 3 Department of Biochemistry , , Bangalore 560012 , India

4. The Francis Crick Institute 4 , 1 Midland Road, London, NW1 1AT , UK

5. Randall Centre for Cell and Molecular Biophysics, School of Basic and Medical Biosciences, King's College London 5 , London, SE1 1UL , UK

Abstract

ABSTRACT Tropomyosins are structurally conserved α-helical coiled-coil proteins that bind along the length of filamentous actin (F-actin) in fungi and animals. Tropomyosins play essential roles in the stability of actin filaments and in regulating myosin II contractility. Despite the crucial role of tropomyosin in actin cytoskeletal regulation, in vivo investigations of tropomyosin are limited, mainly due to the suboptimal live-cell imaging tools currently available. Here, we report on an mNeonGreen (mNG)-tagged tropomyosin, with native promoter and linker length configuration, that clearly reports tropomyosin dynamics in Schizosaccharomyces pombe (Cdc8), Schizosaccharomyces japonicus (Cdc8) and Saccharomyces cerevisiae (Tpm1 and Tpm2). We also describe a fluorescent probe to visualize mammalian tropomyosin (TPM2 isoform). Finally, we generated a camelid nanobody against S. pombe Cdc8, which mimics the localization of mNG–Cdc8 in vivo. Using these tools, we report the presence of tropomyosin in previously unappreciated patch-like structures in fission and budding yeasts, show flow of tropomyosin (F-actin) cables to the cytokinetic actomyosin ring and identify rearrangements of the actin cytoskeleton during mating. These powerful tools and strategies will aid better analyses of tropomyosin and F-actin cables in vivo.

Funder

University of Warwick

Wellcome Trust

European Research Council

Biotechnology and Biological Sciences Research Council

The Wellcome Trust DBT India Alliance

Science and Engineering Research Board

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

Publisher

The Company of Biologists

Subject

Cell Biology

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