California Institute for Biomedical Research (Calibr), La Jolla, CA, 92037, USA.
ULB Center for Diabetes Research, Universite´ Libre de Bruxelles (ULB), Brussels, 1070, Belgium.
Br J Pharmacol. 2018 Sep;175(17):3470-3485. doi: 10.1111/bph.14388. Epub 2018 Jul 14.
Beta cell apoptosis is a major feature of type 1 diabetes, and pro-inflammatory cytokines are key drivers of the deterioration of beta cell mass through induction of apoptosis. Mitochondrial stress plays a critical role in mediating apoptosis by releasing cytochrome C into the cytoplasm, directly activating caspase-9 and its downstream signalling cascade. We aimed to identify new compounds that protect beta cells from cytokine-induced activation of the intrinsic (mitochondrial) pathway of apoptosis.
Diabetogenic media, composed of IL-1β, IFN-γ and high glucose, were used to induce mitochondrial stress in rat insulin-producing INS1E cells, and a high-content image-based screen of small molecule modulators of Casp9 pathway was performed.
A novel small molecule, ATV399, was identified from a high-content image-based screen for compounds that inhibit cleaved caspase-9 activation and subsequent beta cell apoptosis induced by a combination of IL-1β, IFN-γ and high glucose, which together mimic the pathogenic diabetic milieu. Through medicinal chemistry optimization, potency was markedly improved (6-30 fold), with reduced inhibitory effects on CYP3A4. Improved analogues, such as CAT639, improved beta cell viability and insulin secretion in cytokine-treated rat insulin-producing INS1E cells and primary dispersed islet cells. Mechanistically, CAT639 reduced the production of NO by allosterically inhibiting dimerization of inducible NOS (iNOS) without affecting its mRNA levels.
Taken together, these studies demonstrate a successful phenotypic screening campaign resulting in identification of an inhibitor of iNOS dimerization that protects beta cell viability and function through modulation of mitochondrial stress induced by cytokines.
β细胞凋亡是 1 型糖尿病的主要特征,促炎细胞因子通过诱导细胞凋亡是β细胞质量恶化的关键驱动因素。线粒体应激通过将细胞色素 C 释放到细胞质中,直接激活半胱天冬酶-9 及其下游信号级联,在介导细胞凋亡中起着关键作用。我们旨在确定新的化合物,以保护β细胞免受细胞因子诱导的细胞凋亡的内在(线粒体)途径的激活。
使用含有白细胞介素-1β(IL-1β)、干扰素-γ(IFN-γ)和高葡萄糖的糖尿病培养基诱导大鼠胰岛素分泌细胞 INS1E 中的线粒体应激,并进行 caspase-9 通路的小分子调节剂的高内涵图像筛选。
从高内涵图像筛选中鉴定出一种新型小分子化合物 ATV399,该化合物可抑制 IL-1β、IFN-γ和高葡萄糖联合诱导的 cleaved caspase-9 激活和随后的β细胞凋亡,该组合模拟了致病的糖尿病环境。通过药物化学优化,其效力显著提高(6-30 倍),同时对 CYP3A4 的抑制作用降低。改进的类似物,如 CAT639,可改善细胞因子处理的大鼠胰岛素分泌细胞 INS1E 和原代分散胰岛细胞中的β细胞活力和胰岛素分泌。在机制上,CAT639 通过变构抑制诱导型一氧化氮合酶(iNOS)的二聚作用来减少 NO 的产生,而不影响其 mRNA 水平。
综上所述,这些研究表明成功进行了表型筛选,从而确定了一种 iNOS 二聚体抑制剂,该抑制剂通过调节细胞因子诱导的线粒体应激来保护β细胞活力和功能。