AI Article Synopsis

  • Research on multiple myeloma highlights that resistance to proteasome inhibitors is a significant challenge, prompting the investigation of genetic co-dependencies for potential therapeutic targets.
  • Heat shock protein 70 (HSP70) chaperones were identified as key players in this resistance, leading to the exploration of allosteric HSP70 inhibitors (JG compounds), which showed enhanced effectiveness against proteasome inhibitor-resistant myeloma.
  • The study revealed that JG compounds disrupt myeloma cell function not by targeting cytosolic HSP70, but rather by affecting mitochondrial HSP70 (HSPA9/mortalin), suggesting HSPA9 could be a promising target for treating resistant multiple myeloma.

Article Abstract

Proteasome inhibitor (PI) resistance remains a central challenge in multiple myeloma. To identify pathways mediating resistance, we first mapped proteasome-associated genetic co-dependencies. We identified heat shock protein 70 (HSP70) chaperones as potential targets, consistent with proposed mechanisms of myeloma cells overcoming PI-induced stress. We therefore explored allosteric HSP70 inhibitors (JG compounds) as myeloma therapeutics. JG compounds exhibited increased efficacy against acquired and intrinsic PI-resistant myeloma models, unlike HSP90 inhibition. Shotgun and pulsed SILAC mass spectrometry demonstrated that JGs unexpectedly impact myeloma proteostasis by destabilizing the 55S mitoribosome. Our data suggest JGs have the most pronounced anti-myeloma effect not through inhibiting cytosolic HSP70 proteins but instead through mitochondrial-localized HSP70, HSPA9/mortalin. Analysis of myeloma patient data further supports strong effects of global proteostasis capacity, and particularly HSPA9 expression, on PI response. Our results characterize myeloma proteostasis networks under therapeutic pressure while motivating further investigation of HSPA9 as a specific vulnerability in PI-resistant disease.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9434701PMC
http://dx.doi.org/10.1016/j.chembiol.2022.06.010DOI Listing

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