Department of Endocrinology & Metabolism, Juntendo University Graduate School of Medicine, Japan.
Department of Endocrinology & Metabolism, Juntendo University Graduate School of Medicine, Japan.
Biochem Biophys Res Commun. 2023 Oct 8;676:132-140. doi: 10.1016/j.bbrc.2023.07.040. Epub 2023 Jul 20.
Insulin is essential in controlling blood glucose levels, and its synthesis and secretion have been well investigated. In contrast, how insulin secretory granules (ISGs) are degraded in pancreatic beta cells remains largely unknown. To clarify the mechanism, we constructed a fluorescent reporter detecting ISG degradation, where EGFP and mCherry are tandemly conjugated to a cytoplasmic region of ZnT8, an ISG membrane-localized protein. Depletion of serum and amino acid stimulated lysosomal ISG degradation detected with the reporter. Next, with MIN6 cells expressing Cas9 and the reporter, we investigated the involvement of conventional Atg5/7-dependent autophagy to show that it is dispensable for the ISG degradation process. Finally, we performed genome-wide screening by enriching the cells lacking the ISG degradation and showed that pathways regulating autophagy are not identified. These results suggest that alternative degradation in lysosomes, instead of conventional autophagy, may be involved in ISG degradation.
胰岛素在控制血糖水平方面至关重要,其合成和分泌已得到充分研究。相比之下,胰岛素分泌颗粒(ISGs)在胰腺β细胞中是如何降解的仍知之甚少。为了阐明这一机制,我们构建了一个荧光报告检测 ISG 降解的系统,其中 EGFP 和 mCherry 串联连接到 ZnT8 的细胞质区域,ZnT8 是一种位于 ISG 膜上的蛋白。用该报告检测血清和氨基酸耗竭刺激的溶酶体 ISG 降解。接下来,利用表达 Cas9 和报告的 MIN6 细胞,我们研究了传统 Atg5/7 依赖性自噬的参与情况,表明它对于 ISG 降解过程不是必需的。最后,我们通过富集缺乏 ISG 降解的细胞进行了全基因组筛选,并表明调节自噬的途径没有被鉴定出来。这些结果表明,溶酶体中的替代降解途径,而不是传统的自噬,可能参与了 ISG 的降解。