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Bax 抑制剂-1 通过限制前胰岛素错误折叠和程序性细胞死亡来维持胰腺β 细胞的蛋白质平衡。

Bax Inhibitor-1 preserves pancreatic β-cell proteostasis by limiting proinsulin misfolding and programmed cell death.

机构信息

Institut National de la Santé et de la Recherche Médicale (Inserm) U1065, Université Côte d'Azur (UCA), Centre Méditerranéen de Médecine Moléculaire (C3M), Atip-Avenir, Fédération Hospitalo-Universitaire (FHU) Oncoage, Team "Hematometabolism and Metainflammation (HEMAMETABO), 06204, Nice, France.

Inflammation and Cell Death Signalling group, Signal Transduction and Metabolism Laboratory, Université libre de Bruxelles (ULB), Bruxelles, Belgique.

出版信息

Cell Death Dis. 2024 May 14;15(5):334. doi: 10.1038/s41419-024-06701-x.

Abstract

The prevalence of diabetes steadily increases worldwide mirroring the prevalence of obesity. Endoplasmic reticulum (ER) stress is activated in diabetes and contributes to β-cell dysfunction and apoptosis through the activation of a terminal unfolded protein response (UPR). Our results uncover a new role for Bax Inhibitor-One (BI-1), a negative regulator of inositol-requiring enzyme 1 (IRE1α) in preserving β-cell health against terminal UPR-induced apoptosis and pyroptosis in the context of supraphysiological loads of insulin production. BI-1-deficient mice experience a decline in endocrine pancreatic function in physiological and pathophysiological conditions, namely obesity induced by high-fat diet (HFD). We observed early-onset diabetes characterized by hyperglycemia, reduced serum insulin levels, β-cell loss, increased pancreatic lipases and pro-inflammatory cytokines, and the progression of metabolic dysfunction. Pancreatic section analysis revealed that BI-1 deletion overburdens unfolded proinsulin in the ER of β-cells, confirmed by ultrastructural signs of ER stress with overwhelmed IRE1α endoribonuclease (RNase) activity in freshly isolated islets. ER stress led to β-cell dysfunction and islet loss, due to an increase in immature proinsulin granules and defects in insulin crystallization with the presence of Rod-like granules. These results correlated with the induction of autophagy, ER phagy, and crinophagy quality control mechanisms, likely to alleviate the atypical accumulation of misfolded proinsulin in the ER. In fine, BI-1 in β-cells limited IRE1α RNase activity from triggering programmed β-cell death through apoptosis and pyroptosis (caspase-1, IL-1β) via NLRP3 inflammasome activation and metabolic dysfunction. Pharmaceutical IRE1α inhibition with STF-083010 reversed β-cell failure and normalized the metabolic phenotype. These results uncover a new protective role for BI-1 in pancreatic β-cell physiology as a stress integrator to modulate the UPR triggered by accumulating unfolded proinsulin in the ER, as well as autophagy and programmed cell death, with consequences on β-cell function and insulin secretion. In pancreatic β-cells, BI-1 deficiency perturbs proteostasis with proinsulin misfolding, ER stress, terminal UPR with overwhelmed IRE1α/XBP1s/CHOP activation, inflammation, β-cell programmed cell death, and diabetes.

摘要

糖尿病的患病率在全球范围内稳步上升,与肥胖症的患病率相吻合。内质网(ER)应激在糖尿病中被激活,并通过激活终末未折叠蛋白反应(UPR)导致β细胞功能障碍和细胞凋亡。我们的结果揭示了 Bax 抑制剂-1(BI-1)的新作用,BI-1 是肌醇需求酶 1(IRE1α)的负调节剂,可在胰岛素产生的超生理负荷下防止β细胞健康受到终末 UPR 诱导的细胞凋亡和细胞焦亡的影响。在生理和病理条件下,即高脂肪饮食(HFD)诱导的肥胖,缺乏 BI-1 的小鼠经历内分泌胰腺功能下降。我们观察到早发性糖尿病,其特征为高血糖、血清胰岛素水平降低、β细胞丢失、胰腺脂肪酶和促炎细胞因子增加以及代谢功能障碍进展。胰腺切片分析显示,BI-1 缺失使β细胞内质网中未折叠的前胰岛素过载,这通过新鲜分离胰岛中内质网应激的超微结构迹象以及过度的 IRE1α 内切核酸酶(RNase)活性得到证实。由于不成熟的前胰岛素颗粒增加和胰岛素结晶缺陷以及棒状颗粒的存在,内质网应激导致β细胞功能障碍和胰岛丢失。这些结果与自噬、内质网吞噬和内质网吞噬质量控制机制的诱导相关,可能减轻内质网中异常折叠的前胰岛素的非典型积累。最终,β细胞中的 BI-1 通过 NLRP3 炎性小体激活和代谢功能障碍,限制 IRE1α RNase 活性通过细胞凋亡和细胞焦亡(半胱天冬酶-1、IL-1β)触发程序性β细胞死亡。用 STF-083010 抑制 IRE1α 逆转了β细胞衰竭并使代谢表型正常化。这些结果揭示了 BI-1 在胰腺β细胞生理学中的新保护作用,作为一种应激整合因子,可调节内质网中积累的未折叠前胰岛素触发的 UPR,以及自噬和程序性细胞死亡,从而影响β细胞功能和胰岛素分泌。在胰腺β细胞中,BI-1 缺失会破坏前胰岛素错误折叠、内质网应激、IRE1α/XBP1s/CHOP 激活的终末 UPR、炎症、β细胞程序性细胞死亡和糖尿病的蛋白质稳态。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4a23/11094198/22fc33fcad7d/41419_2024_6701_Figa_HTML.jpg

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