Sodium butyrate prevents cytokine-induced β-cell dysfunction through restoration of stromal interaction molecule 1 expression and activation of store-operated calcium entry

IF 4.4 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Chih-Chun Lee, Tatsuyoshi Kono, Farooq Syed, Staci A. Weaver, Paul Sohn, Wenting Wu, Garrick Chang, Jing Liu, Marjan Slak Rupnik, Carmella Evans-Molina
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Abstract

Sodium butyrate (NaB) improves β-cell function in preclinical models of diabetes; however, the mechanisms underlying these beneficial effects have not been fully elucidated. In this study, we investigated the impact of NaB on β-cell function and calcium (Ca2+) signaling using ex vivo and in vitro models of diabetes. Our results show that NaB significantly improved glucose-stimulated insulin secretion in islets from human organ donors with type 2 diabetes and in cytokine-treated INS-1 β cells. Consistently, NaB improved glucose-stimulated Ca2+ oscillations in mouse islets treated with proinflammatory cytokines. Because the oscillatory phenotype of Ca2+ in the β cell is governed by changes in endoplasmic reticulum (ER) Ca2+ levels, we explored the relationship between NaB and store-operated calcium entry (SOCE), a rescue mechanism that acts to refill ER Ca2+ levels through STIM1-mediated gating of plasmalemmal Orai channels. We found that NaB treatment preserved basal ER Ca2+ levels and restored SOCE in IL-1β-treated INS-1 cells. Furthermore, we linked these changes with the restoration of STIM1 levels in cytokine-treated INS-1 cells and mouse islets, and we found that NaB treatment was sufficient to prevent β-cell death in response to IL-1β treatment. Mechanistic experiments revealed that NaB mediated these beneficial effects in the β-cell through histone deacetylase (HDAC) inhibition, iNOS suppression, and modulation of AKT-GSK-3 signaling. Taken together, these data support a model whereby NaB treatment promotes β-cell function and Ca2+ homeostasis under proinflammatory conditions through pleiotropic effects that are linked with maintenance of SOCE. These results also suggest a relationship between β-cell SOCE and gut microbiome-derived butyrate that may be relevant in the treatment and prevention of diabetes.

Abstract Image

丁酸钠通过恢复基质相互作用分子 1 的表达和激活贮存操作的钙离子进入,防止细胞因子诱导的 β 细胞功能障碍。
丁酸钠(NaB)能改善临床前糖尿病模型中β细胞的功能;然而,这些有益作用的机制尚未完全阐明。在本研究中,我们使用糖尿病体内外模型研究了 NaB 对β细胞功能和钙(Ca2+)信号传导的影响。结果表明,NaB 能明显改善 2 型糖尿病人体器官捐献者的胰岛和细胞因子处理的 INS-1 β 细胞在葡萄糖刺激下的胰岛素分泌。同样,NaB 还能改善经促炎性细胞因子处理的小鼠胰岛在葡萄糖刺激下的 Ca2+ 振荡。由于 β 细胞中 Ca2+ 的振荡表型受内质网(ER)Ca2+ 水平变化的支配,我们探讨了 NaB 与贮存操作钙离子通道(SOCE)之间的关系,SOCE 是一种通过 STIM1 介导的质膜 Orai 通道门控重新填充 ER Ca2+ 水平的拯救机制。我们发现,在经 IL-1β 处理的 INS-1 细胞中,NaB 处理保留了基础 ER Ca2+ 水平并恢复了 SOCE。此外,我们还将这些变化与细胞因子处理的 INS-1 细胞和小鼠胰岛中 STIM1 水平的恢复联系起来,并发现 NaB 处理足以防止 IL-1β 处理导致的 β 细胞死亡。机理实验显示,NaB 通过抑制组蛋白去乙酰化酶 (HDAC)、抑制 iNOS 和调节 AKT-GSK-3 信号传导来介导这些对 β 细胞有益的作用。综上所述,这些数据支持这样一个模型,即在促炎条件下,NaB 处理通过与维持 SOCE 有关的多效应促进 β 细胞功能和 Ca2+ 稳态。这些结果还表明,β 细胞 SOCE 与肠道微生物衍生的丁酸盐之间存在关系,这可能与糖尿病的治疗和预防有关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
FASEB Journal
FASEB Journal 生物-生化与分子生物学
CiteScore
9.20
自引率
2.10%
发文量
6243
审稿时长
3 months
期刊介绍: The FASEB Journal publishes international, transdisciplinary research covering all fields of biology at every level of organization: atomic, molecular, cell, tissue, organ, organismic and population. While the journal strives to include research that cuts across the biological sciences, it also considers submissions that lie within one field, but may have implications for other fields as well. The journal seeks to publish basic and translational research, but also welcomes reports of pre-clinical and early clinical research. In addition to research, review, and hypothesis submissions, The FASEB Journal also seeks perspectives, commentaries, book reviews, and similar content related to the life sciences in its Up Front section.
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