Smac mimetic suppresses tunicamycin-induced apoptosis via resolution of ER stress
Behnaz Ahangarian Abhari1, Nicole McCarthy1, Marie Le Berre2
1Institute for Experimental Cancer Research in Pediatrics, Goethe-University Frankfurt, Komturstrasse 3a, 60528, Frankfurt, Germany.
Abstract:
Since Inhibitor of Apoptosis (IAP) proteins have been implicated in cellular adaptation to endoplasmic reticulum (ER) stress, we investigated the regulation of ER stress-induced apoptosis by small-molecule second mitochondria-derived activator of caspase (Smac) mimetics that antagonize IAP proteins. Here, we discover that Smac mimetic suppresses tunicamycin (TM)-induced apoptosis via resolution of the unfolded protein response (UPR) and ER stress. Smac mimetics such as BV6 selectively inhibit apoptosis triggered by pharmacological or genetic inhibition of protein N-glycosylation using TM or knockdown of DPAGT1, the enzyme that catalyzes the first step of protein N-glycosylation. In contrast, BV6 does not rescue cell death induced by other typical ER stressors (i.e., thapsigargin (TG), dithiothreitol, brefeldin A, bortezomib, or 2-deoxyglucose). The protection from TM-triggered apoptosis is found for structurally different Smac mimetics and for genetic knockdown of cellular IAP (cIAP) proteins in several cancer types, underlining the broader relevance. Interestingly, lectin microarray profiling reveals that BV6 counteracts TM-imposed inhibition of protein glycosylation. BV6 consistently abolishes TM-stimulated accumulation of ER stress markers such as glucose-regulated protein 78 (GRP78) and C/EBP homologous protein (CHOP) and reduces protein kinase RNA-like ER kinase (PERK) phosphorylation and X box-binding protein 1 (XBP1) splicing upon TM treatment. BV6-stimulated activation of nuclear factor-κB (NF-κB) contributes to the resolution of ER stress, since NF-κB inhibition by overexpression of dominant-negative IκBα superrepressor counteracts the suppression of TM-stimulated transcriptional activation of CHOP and GRP78 by BV6. Thus, our study is the first to show that Smac mimetic protects from TM-triggered apoptosis by resolving the UPR and ER stress. This provides new insights into the regulation of cellular stress responses by Smac mimetics.
Insights
Small-molecule Smac mimetics prevent apoptosis from endoplasmic reticulum stress caused by protein N-glycosylation inhibition. These compounds resolve the unfolded protein response and ER stress, offering new insights into cellular stress regulation.
Area of Science:
- Cellular Biology
- Molecular Biology
- Biochemistry
Background:
- Inhibitor of Apoptosis (IAP) proteins regulate cellular adaptation to endoplasmic reticulum (ER) stress.
- Small-molecule second mitochondria-derived activator of caspase (Smac) mimetics antagonize IAP proteins.
Purpose of the Study:
- Investigate the regulation of ER stress-induced apoptosis by Smac mimetics.
- Determine if Smac mimetics can suppress apoptosis triggered by specific ER stressors.
Main Methods:
- Utilized tunicamycin (TM) to induce ER stress and inhibit protein N-glycosylation.
- Administered Smac mimetic BV6 and other structurally different Smac mimetics.
- Assessed apoptosis, ER stress markers (GRP78, CHOP), PERK phosphorylation, XBP1 splicing, and NF-κB activation.
- Employed lectin microarray profiling and genetic knockdown of DPAGT1 and cIAP proteins.
Main Results:
- Smac mimetic BV6 selectively suppressed TM-induced apoptosis by resolving the unfolded protein response (UPR) and ER stress.
- BV6 counteracted TM-imposed inhibition of protein glycosylation and reduced ER stress markers.
- BV6 inhibited apoptosis triggered by TM or DPAGT1 knockdown but not other ER stressors like thapsigargin.
- BV6-stimulated NF-κB activation contributed to the resolution of ER stress.
Conclusions:
- Smac mimetics protect against TM-induced apoptosis by resolving UPR and ER stress.
- This study reveals a novel mechanism for Smac mimetics in regulating cellular stress responses.
- Findings provide new insights into the interplay between IAPs, Smac mimetics, and ER stress pathways.
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