Literature DB >> 23644654

BAG3 induction is required to mitigate proteotoxicity via selective autophagy following inhibition of constitutive protein degradation pathways.

F Rapino1, M Jung2, S Fulda1.   

Abstract

Simultaneous inhibition of the two major constitutive protein quality control (PQC) pathways, that is, the ubiquitin-proteasome system (UPS) and the aggresome-autophagy system, has been suggested as a promising strategy to trigger cell death in cancer cells. However, we observed that one third of rhabdomyosarcoma (RMS) cells survives parallel inhibition of the UPS by Bortezomib and the aggresome-autophagy pathway by the cytoplasmic histone deacetylase 6 inhibitor ST80, and is able to regrow upon drug removal, thus pointing to the induction of compensatory pathways. Here, we identify Bcl-2-associated athanogene 3 (BAG3) as a critical mediator of inducible resistance in surviving cells after concomitant blockage of constitutive PQC pathways by mitigating ST80/Bortezomib-triggered proteotoxicity via selective autophagy. ST80/Bortezomib cotreatment upregulates BAG3 mRNA and protein levels in surviving cells in addition to triggering the accumulation of insoluble protein aggregates. Intriguingly, knockdown of BAG3 by RNA interference severely impairs clearance of protein aggregates, significantly increases cell death and reduces long-term survival and clonogenic growth during recovery after ST80/Bortezomib cotreatment. Similarly, inhibition of autophagy by inducible autophagy-related protein 7 knockdown prevents removal of protein aggregates and cell regrowth during recovery after ST80/Bortezomib cotreatment. Also, the inhibition of lysosomal degradation using the V-ATPase pump inhibitor Bafilomycin A1 enhances accumulation of protein aggregates, and completely abolishes regrowth after Bortezomib/ST80-induced proteotoxic stress. By identifying BAG3 as a key mediator of inducible resistance by mitigating proteotoxicity via selective autophagy after inhibition of constitutive PQC systems, our study provides new insights into the regulation of PQC pathways in cancer cells and identifies new targets for therapeutic intervention.

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Year:  2013        PMID: 23644654     DOI: 10.1038/onc.2013.110

Source DB:  PubMed          Journal:  Oncogene        ISSN: 0950-9232            Impact factor:   9.867


  21 in total

1.  Compensatory increases of select proteostasis networks after Hsp70 inhibition in cancer cells.

Authors:  Sara Sannino; Christopher J Guerriero; Amit J Sabnis; Donna Beer Stolz; Callen T Wallace; Peter Wipf; Simon C Watkins; Trever G Bivona; Jeffrey L Brodsky
Journal:  J Cell Sci       Date:  2018-09-05       Impact factor: 5.285

2.  BAG3 induces the sequestration of proteasomal clients into cytoplasmic puncta: implications for a proteasome-to-autophagy switch.

Authors:  Melania Minoia; Alessandra Boncoraglio; Jonathan Vinet; Federica F Morelli; Jeanette F Brunsting; Angelo Poletti; Sabine Krom; Eric Reits; Harm H Kampinga; Serena Carra
Journal:  Autophagy       Date:  2014-07-10       Impact factor: 16.016

3.  Nrf2 mediates the expression of BAG3 and autophagy cargo adaptor proteins and tau clearance in an age-dependent manner.

Authors:  Maoping Tang; Changyi Ji; Susanne Pallo; Irfan Rahman; Gail V W Johnson
Journal:  Neurobiol Aging       Date:  2017-12-09       Impact factor: 4.673

4.  Knockdown of BAG3 sensitizes bladder cancer cells to treatment with the BH3 mimetic ABT-737.

Authors:  Jens Mani; Patrick Antonietti; Stefanie Rakel; Roman Blaheta; Georg Bartsch; Axel Haferkamp; Donat Kögel
Journal:  World J Urol       Date:  2015-06-23       Impact factor: 4.226

5.  A BAG3 chaperone complex maintains cardiomyocyte function during proteotoxic stress.

Authors:  Luke M Judge; Juan A Perez-Bermejo; Annie Truong; Alexandre Js Ribeiro; Jennie C Yoo; Christina L Jensen; Mohammad A Mandegar; Nathaniel Huebsch; Robyn M Kaake; Po-Lin So; Deepak Srivastava; Beth L Pruitt; Nevan J Krogan; Bruce R Conklin
Journal:  JCI Insight       Date:  2017-07-20

6.  Proteomic analysis reveals a role for Bcl2-associated athanogene 3 and major vault protein in resistance to apoptosis in senescent cells by regulating ERK1/2 activation.

Authors:  Martina P Pasillas; Sarah Shields; Rebecca Reilly; Jan Strnadel; Christian Behl; Robin Park; John R Yates; Richard Klemke; Steven L Gonias; Judith A Coppinger
Journal:  Mol Cell Proteomics       Date:  2014-07-05       Impact factor: 5.911

7.  BAG3 facilitates the clearance of endogenous tau in primary neurons.

Authors:  Zhinian Lei; Corey Brizzee; Gail V W Johnson
Journal:  Neurobiol Aging       Date:  2014-08-16       Impact factor: 4.673

8.  Differential regulation of autophagy by STAU1 in alveolar rhabdomyosarcoma and non-transformed skeletal muscle cells.

Authors:  Shekoufeh Almasi; Tara E Crawford Parks; Aymeric Ravel-Chapuis; Alex MacKenzie; Jocelyn Côté; Kyle N Cowan; Bernard J Jasmin
Journal:  Cell Oncol (Dordr)       Date:  2021-04-26       Impact factor: 6.730

Review 9.  BAG family proteins contributes to autophagy-mediated multidrug resistance of tumor.

Authors:  Jufang Guo; Xuelian Du; Chaolin Li
Journal:  Clin Transl Oncol       Date:  2022-03-12       Impact factor: 3.340

10.  Prognosis and Characterization of Immune Microenvironment in Acute Myeloid Leukemia Through Identification of an Autophagy-Related Signature.

Authors:  Denggang Fu; Biyu Zhang; Shiyong Wu; Yinghua Zhang; Jingwu Xie; Wangbin Ning; Hua Jiang
Journal:  Front Immunol       Date:  2021-05-31       Impact factor: 7.561

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