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Published on: May 10, 2022
NF-кB promotes aggresome formation via upregulating HDAC6 and in turn maintaining Vimentin cage
Jo-Mei Maureen Chen1,2, Cheng-Yen Chuang3,4, Chiao-Yun Cheng1
1Department of Applied Chemistry, National Chi Nan University, Nantou, Taiwan.
Abstract:
Proteasome inhibitors have been applied to anticancer therapy by accumulating toxic misfolded proteins. However, chemical inactivation of proteasome generates aggresome, a Vimentin cage-enclosed subcellular structure quarantining HDAC6-Dynein-transported misfolded proteins before the protein toxicants are degraded by autophagy. Hence, aggresome may attenuate proteasome inhibitor drug-induced cytotoxicity. To solve the problem, it is imperative to characterize how cells assemble aggresome. By examining aggresomes in six cell lines, A549 cells were selectively studied for their bigger cell size and moderate aggresome-forming activity. Aggresome grew in size upon continuous exposure of A549 cells to proteasome inhibitor MG132 and reached a mature size around the 16th to 24th hour of treatment. Mechanistic studies revealed that NF-кB translocated to the nucleus in MG132-treated cells, and chemical activation or knockdown of NF-кB enhanced or prohibited aggresome assembly. Further analyses showed that NF-кB upregulated HDAC6, and HDAC6 maintained the Vimentin cage by interacting with Vimentin p72, a key modification of the intermediate filament contributing to aggresome formation. Remarkably, chemical inactivation of NF-кB synergized MG132-induced cell mortality. All the findings suggest that NF-кB dictates aggresome assembly via upregulating HDAC6, and NF-кB inhibitor may serve as a potential drug potentiating proteasome inhibitor medicine-induced cytotoxicity during the treatment of cancer cells.NEW & NOTEWORTHY The study reveals a new mechanism guiding MG132-triggered aggresome formation. NF-кB is quickly activated upon exposure to MG132, and NF-кB upregulates the misfolded protein recognizing factor HDCA6. In addition to collecting misfolded proteins, HDAC6 also binds Vimentin and maintains the Vimentin cage, which quarantines toxic misfolded proteins and protects cells from being toxified by those protein toxicants. Therapeutically, chemical inactivation of NF-кB synergizes MG132-induced cytotoxicity, providing a new strategy to defeat cancers.
Insights
Nuclear factor-kappa B (NF-κB) controls aggresome formation by upregulating HDAC6, which maintains the Vimentin cage. Inhibiting NF-κB enhances proteasome inhibitor efficacy against cancer cells.
Area of Science:
- Cell Biology
- Cancer Research
- Molecular Biology
Background:
- Proteasome inhibitors are used in cancer therapy by accumulating misfolded proteins.
- Aggresomes, Vimentin cage-enclosed structures, sequester misfolded proteins, potentially reducing drug cytotoxicity.
- Understanding aggresome assembly is crucial for enhancing proteasome inhibitor effectiveness.
Purpose of the Study:
- To characterize the cellular mechanisms of aggresome assembly.
- To investigate the role of NF-κB and HDAC6 in aggresome formation.
- To explore therapeutic strategies combining NF-κB inhibition with proteasome inhibitors.
Main Methods:
- A549 cells were treated with the proteasome inhibitor MG132.
- Aggresome formation, NF-κB translocation, and HDAC6 expression were analyzed.
- NF-κB and HDAC6 were manipulated using chemical activators/inhibitors and knockdown techniques.
Main Results:
- MG132 treatment induced aggresome formation and NF-κB nuclear translocation in A549 cells.
- NF-κB activation upregulated HDAC6, which interacted with Vimentin to maintain the aggresome cage.
- NF-κB inhibition synergized with MG132 to increase cancer cell mortality.
Conclusions:
- NF-κB dictates aggresome assembly by upregulating HDAC6, which stabilizes the Vimentin cage.
- Aggresome formation by NF-κB/HDAC6 pathway can protect cancer cells from proteasome inhibitors.
- NF-κB inhibitors represent a potential strategy to potentiate proteasome inhibitor therapy for cancer.
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