Key Laboratory of Human Functional Genomics of Jiangsu Province, Department of Biochemistry and Molecular Biology, Nanjing Medical University, Nanjing, Jiangsu, China.
Organ Transplant Center, Tianjin First Central Hospital, Nankai University, Tianjin, China.
Diabetes. 2024 Oct 1;73(10):1673-1686. doi: 10.2337/db23-0604.
Maturation of postnatal β-cells is regulated in a cell-autonomous manner, and metabolically stressed β-cells regress to an immature state, ensuring defective β-cell function and the onset of type 2 diabetes. The molecular mechanisms connecting the nutritional transition to β-cell maturation remain largely unknown. Here, we report a mature form of miRNA (miR-203)/ZBTB20/MAFA regulatory axis that mediates the β-cell maturation process. We show that the level of the mature form of miRNA (miR-203) in β-cells changes during the nutritional transition and that miR-203 inhibits β-cell maturation at the neonatal stage and under high-fat diet conditions. Using single-cell RNA sequencing, we demonstrated that miR-203 elevation promoted the transition of immature β-cells into CgBHi endocrine cells while suppressing gene expressions associated with β-cell maturation in a ZBTB20/MAFA-dependent manner. ZBTB20 is an authentic target of miR-203 and transcriptionally upregulates MAFA expression. Manipulating the miR-203/ZBTB20/MAFA axis may therefore offer a novel strategy for boosting functional β-cell numbers to alleviate diabetes.
出生后β细胞的成熟是在细胞自主的方式下进行调节的,代谢应激的β细胞会退回到不成熟状态,从而确保β细胞功能缺陷和 2 型糖尿病的发生。将营养转变与β细胞成熟联系起来的分子机制在很大程度上仍然未知。在这里,我们报告了一种成熟形式的 miRNA(miR-203)/ZBTB20/MAFA 调节轴,它介导β细胞的成熟过程。我们表明,β细胞中成熟形式的 miRNA(miR-203)水平在营养转变过程中发生变化,并且 miR-203 在新生儿期和高脂肪饮食条件下抑制β细胞成熟。通过单细胞 RNA 测序,我们证明 miR-203 升高以 ZBTB20/MAFA 依赖的方式促进不成熟β细胞向 CgBHi 内分泌细胞的转化,同时抑制与β细胞成熟相关的基因表达。ZBTB20 是 miR-203 的真正靶标,并转录上调 MAFA 表达。因此,操纵 miR-203/ZBTB20/MAFA 轴可能为增加功能性β细胞数量以缓解糖尿病提供一种新策略。