Song Wen-Yu, Jiang Xiao-Han, Ding Ying, Wang Yan, Zhou Ming-Xuan, Xia Yun, Zhang Chen-Yu, Yin Chong-Chong, Qiu Chen, Li Kai, Sun Peng, Han Xiao
Key Laboratory of Human Functional Genomics of Jiangsu Province, Department of Biochemistry and Molecular Biology, Nanjing Medical University, Nanjing, China.
Department of Pathology, The First Affiliated Hospital of Nanjing Medical University, Nanjing, China.
Br J Pharmacol. 2020 Oct;177(19):4433-4447. doi: 10.1111/bph.15183. Epub 2020 Aug 19.
Intra-islet heparan sulfate (HS) plays an important role in the maintenance of pancreatic islet function. The aim of this study was to investigate the effect mechanism of HS loss on the functioning of islets in diabetic mice.
The hypoglycaemic effect of a heparanase inhibitor, OGT2115, was tested in a streptozotocin-induced diabetic mouse model. The islets in pancreatic sections were also stained to reveal their morphology. An insulinoma cell line (MIN6) and primary isolated murine islets were used to investigate the effect of OGT2115 in vitro.
Intra-islet HS was clearly lost in streptozotocin-induced diabetic mice due to the increased heparanase expression in damaged islets. OGT2115 prevented intra-islet HS loss and improved the glucose profile and insulin secretion in streptozotocin-treated mice. The apoptosis of pancreatic beta cells and the infiltration of mononuclear macrophages, CD4- and CD8-positive T-cells in islets was reduced by OGT2115 in streptozotocin-treated mice, but OGT2115 did not alter the direct streptozotocin-induced damage in vitro. The expression of heparanase was increased in high glucose-treated isolated islets but not in response to direct streptozotocin stimulation. Further experiments showed that high glucose stimuli could decreased expression of PPARγ in cultured islets, thereby relieving the PPARγ-induced inhibition of heparanase gene expression.
Hyperglycaemia could cause intra-islet HS loss by elevating the expression of heparanase, thereby aggravating inflammatory cell infiltration and islet damage. Inhibition of heparanase might provide benefit for pancreatic beta cell protection in Type 1 diabetes.
胰岛内硫酸乙酰肝素(HS)在维持胰岛功能中起重要作用。本研究旨在探讨HS缺失对糖尿病小鼠胰岛功能的影响机制。
在链脲佐菌素诱导的糖尿病小鼠模型中测试硫酸乙酰肝素酶抑制剂OGT2115的降血糖作用。对胰腺切片中的胰岛进行染色以显示其形态。使用胰岛素瘤细胞系(MIN6)和原代分离的小鼠胰岛在体外研究OGT2115的作用。
在链脲佐菌素诱导的糖尿病小鼠中,由于受损胰岛中硫酸乙酰肝素酶表达增加,胰岛内HS明显缺失。OGT2115可防止胰岛内HS缺失,并改善链脲佐菌素处理小鼠的血糖谱和胰岛素分泌。OGT2115可减少链脲佐菌素处理小鼠胰岛中胰腺β细胞的凋亡以及单核巨噬细胞、CD4和CD8阳性T细胞的浸润,但OGT2115在体外并未改变链脲佐菌素直接诱导的损伤。高糖处理的分离胰岛中硫酸乙酰肝素酶的表达增加,但对链脲佐菌素直接刺激无反应。进一步实验表明,高糖刺激可降低培养胰岛中PPARγ的表达,从而减轻PPARγ诱导的硫酸乙酰肝素酶基因表达抑制。
高血糖可通过提高硫酸乙酰肝素酶的表达导致胰岛内HS缺失,从而加重炎症细胞浸润和胰岛损伤。抑制硫酸乙酰肝素酶可能对1型糖尿病的胰腺β细胞保护有益。