Literature DB >> 28275944

Fine-tuning of actin dynamics by the HSPB8-BAG3 chaperone complex facilitates cytokinesis and contributes to its impact on cell division.

Alice Anaïs Varlet1,2, Margit Fuchs1,2, Carole Luthold1,2, Herman Lambert1,2, Jacques Landry1,2,3, Josée N Lavoie4,5,6.   

Abstract

The small heat shock protein HSPB8 and its co-chaperone BAG3 are proposed to regulate cytoskeletal proteostasis in response to mechanical signaling in muscle cells. Here, we show that in dividing cells, the HSPB8-BAG3 complex is instrumental to the accurate disassembly of the actin-based contractile ring during cytokinesis, a process required to allow abscission of daughter cells. Silencing of HSPB8 markedly decreased the mitotic levels of BAG3 in HeLa cells, supporting its crucial role in BAG3 mitotic functions. Cells depleted of HSPB8 were delayed in cytokinesis, remained connected via a disorganized intercellular bridge, and exhibited increased incidence of nuclear abnormalities that result from failed cytokinesis (i.e., bi- and multi-nucleation). Such phenotypes were associated with abnormal accumulation of F-actin at the intercellular bridge of daughter cells at telophase. Remarkably, the actin sequestering drug latrunculin A, like the inhibitor of branched actin polymerization CK666, normalized F-actin during cytokinesis and restored proper cell division in HSPB8-depleted cells, implicating deregulated actin dynamics as a cause of abscission failure. Moreover, this HSPB8-dependent phenotype could be corrected by rapamycin, an autophagy-promoting drug, whereas it was mimicked by drugs impairing lysosomal function. Together, the results further support a role for the HSPB8-BAG3 chaperone complex in quality control of actin-based structure dynamics that are put under high tension, notably during cell cytokinesis. They expand a so-far under-appreciated connection between selective autophagy and cellular morphodynamics that guide cell division.

Entities:  

Keywords:  Actin; Autophagy; BAG3; Cytokinesis; HSPB8

Mesh:

Substances:

Year:  2017        PMID: 28275944      PMCID: PMC5465032          DOI: 10.1007/s12192-017-0780-2

Source DB:  PubMed          Journal:  Cell Stress Chaperones        ISSN: 1355-8145            Impact factor:   3.667


  62 in total

1.  Latrunculin alters the actin-monomer subunit interface to prevent polymerization.

Authors:  W M Morton; K R Ayscough; P J McLaughlin
Journal:  Nat Cell Biol       Date:  2000-06       Impact factor: 28.824

2.  Bcl2-associated athanogene 3 interactome analysis reveals a new role in modulating proteasome activity.

Authors:  Ying Chen; Li-Na Yang; Li Cheng; Shun Tu; Shu-Juan Guo; Huang-Ying Le; Qian Xiong; Ran Mo; Chong-Yang Li; Jun-Seop Jeong; Lizhi Jiang; Seth Blackshaw; Li-Jun Bi; Heng Zhu; Sheng-Ce Tao; Feng Ge
Journal:  Mol Cell Proteomics       Date:  2013-07-03       Impact factor: 5.911

3.  SNX9, SNX18 and SNX33 are required for progression through and completion of mitosis.

Authors:  Maggie P C Ma; Megan Chircop
Journal:  J Cell Sci       Date:  2012-06-20       Impact factor: 5.285

4.  BAG3 mediates chaperone-based aggresome-targeting and selective autophagy of misfolded proteins.

Authors:  Martin Gamerdinger; A Murat Kaya; Uwe Wolfrum; Albrecht M Clement; Christian Behl
Journal:  EMBO Rep       Date:  2011-01-21       Impact factor: 8.807

5.  Actin polymerization is induced by Arp2/3 protein complex at the surface of Listeria monocytogenes.

Authors:  M D Welch; A Iwamatsu; T J Mitchison
Journal:  Nature       Date:  1997-01-16       Impact factor: 49.962

6.  Autophagy plays a critical role in the degradation of active RHOA, the control of cell cytokinesis, and genomic stability.

Authors:  Amine Belaid; Michaël Cerezo; Abderrahman Chargui; Elisabeth Corcelle-Termeau; Florence Pedeutour; Sandy Giuliano; Marius Ilie; Isabelle Rubera; Michel Tauc; Sophie Barale; Corinne Bertolotto; Patrick Brest; Valérie Vouret-Craviari; Daniel J Klionsky; Georges F Carle; Paul Hofman; Baharia Mograbi
Journal:  Cancer Res       Date:  2013-05-23       Impact factor: 12.701

7.  BAG3 regulates motility and adhesion of epithelial cancer cells.

Authors:  Masahiro Iwasaki; Sachiko Homma; Akinori Hishiya; Samuel J Dolezal; John C Reed; Shinichi Takayama
Journal:  Cancer Res       Date:  2007-11-01       Impact factor: 12.701

8.  Autophagy and SQSTM1 on the RHOA(d) again: emerging roles of autophagy in the degradation of signaling proteins.

Authors:  Amine Belaid; Papa Diogop Ndiaye; Michaël Cerezo; Laurence Cailleteau; Patrick Brest; Daniel J Klionsky; Georges F Carle; Paul Hofman; Baharia Mograbi
Journal:  Autophagy       Date:  2013-11-26       Impact factor: 16.016

9.  Expansion and concatenation of non-muscle myosin IIA filaments drive cellular contractile system formation during interphase and mitosis.

Authors:  Aidan M Fenix; Nilay Taneja; Carmen A Buttler; John Lewis; Schuyler B Van Engelenburg; Ryoma Ohi; Dylan T Burnette
Journal:  Mol Biol Cell       Date:  2016-03-09       Impact factor: 4.138

10.  Tension-induced autophagy: may the chaperone be with you.

Authors:  Anna Ulbricht; Jörg Höhfeld
Journal:  Autophagy       Date:  2013-03-21       Impact factor: 16.016

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  15 in total

1.  BAG3 and SYNPO (synaptopodin) facilitate phospho-MAPT/Tau degradation via autophagy in neuronal processes.

Authors:  Changyi Ji; Maoping Tang; Claudia Zeidler; Jörg Höhfeld; Gail Vw Johnson
Journal:  Autophagy       Date:  2019-03-01       Impact factor: 16.016

2.  Myoblast mechanotransduction and myotube morphology is dependent on BAG3 regulation of YAP and TAZ.

Authors:  K Arda Günay; Jason S Silver; Tze-Ling Chang; Olivia J Bednarski; Kendra L Bannister; Cameron J Rogowski; Bradley B Olwin; Kristi S Anseth
Journal:  Biomaterials       Date:  2021-08-25       Impact factor: 15.304

Review 3.  Neuromuscular Diseases Due to Chaperone Mutations: A Review and Some New Results.

Authors:  Jaakko Sarparanta; Per Harald Jonson; Sabita Kawan; Bjarne Udd
Journal:  Int J Mol Sci       Date:  2020-02-19       Impact factor: 5.923

4.  A knock-in/knock-out mouse model of HSPB8-associated distal hereditary motor neuropathy and myopathy reveals toxic gain-of-function of mutant Hspb8.

Authors:  Delphine Bouhy; Manisha Juneja; Istvan Katona; Anne Holmgren; Bob Asselbergh; Vicky De Winter; Tino Hochepied; Steven Goossens; Jody J Haigh; Claude Libert; Chantal Ceuterick-de Groote; Joy Irobi; Joachim Weis; Vincent Timmerman
Journal:  Acta Neuropathol       Date:  2017-08-05       Impact factor: 17.088

5.  Characterization of Hspb8 in Zebrafish.

Authors:  Magda Dubińska-Magiera; Joanna Niedbalska-Tarnowska; Marta Migocka-Patrzałek; Ewelina Posyniak; Małgorzata Daczewska
Journal:  Cells       Date:  2020-06-26       Impact factor: 6.600

6.  Nitric oxide contributes to protein homeostasis by S-nitrosylations of the chaperone HSPA8 and the ubiquitin ligase UBE2D.

Authors:  Lucie Valek; Juliana Heidler; Reynir Scheving; Ilka Wittig; Irmgard Tegeder
Journal:  Redox Biol       Date:  2018-10-16       Impact factor: 11.799

7.  Host Protein BAG3 is a Negative Regulator of Lassa VLP Egress.

Authors:  Ziying Han; Michael P Schwoerer; Philip Hicks; Jingjing Liang; Gordon Ruthel; Corbett T Berry; Bruce D Freedman; Cari A Sagum; Mark T Bedford; Sachdev S Sidhu; Marius Sudol; Ronald N Harty
Journal:  Diseases       Date:  2018-07-13

8.  miR‑185‑5p inhibits F‑actin polymerization and reverses epithelial mesenchymal transition of human breast cancer cells by modulating RAGE.

Authors:  Chonggao Yin; Guoxin Zhang; Ruimei Sun; Xinting Pan; Xuewen Wang; Hongli Li; Yunbo Sun
Journal:  Mol Med Rep       Date:  2018-07-16       Impact factor: 2.952

9.  BAG3 Proteomic Signature under Proteostasis Stress.

Authors:  Christof Hiebel; Elisabeth Stürner; Meike Hoffmeister; Georg Tascher; Mario Schwarz; Heike Nagel; Christian Behrends; Christian Münch; Christian Behl
Journal:  Cells       Date:  2020-11-04       Impact factor: 6.600

Review 10.  Viruses go modular.

Authors:  Ariel Shepley-McTaggart; Hao Fan; Marius Sudol; Ronald N Harty
Journal:  J Biol Chem       Date:  2020-02-28       Impact factor: 5.157

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