Mesenchymal stem cell conditioned medium improves hypoxic injury to protect islet graft function.

Q3 Medicine
Juan Chen, Mengyu Tian, Jianmin Wu, Xingshi Gu, Huaping Liu, Xiaoqian Ma, Wei Wang
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引用次数: 0

Abstract

Objectives: Islet transplantation is one of the most promising curative methods for type 1 diabetes mellitus (T1DM), but early hypoxic death of the graft post-transplantation impedes successful treatment. To improve the efficacy of islet transplantation and enhance islet cell resistance to hypoxia, reducing hypoxic injury before revascularization is crucial. Mesenchymal stem cells (MSCs) are known to regulate immune responses and protect against hypoxic damage through paracrine mechanisms. This study aims to verify the protective effects of MSC-conditioned medium (CM) in enhancing islet cells' tolerance to hypoxic conditions and preserving islet graft function.

Methods: MIN6 cells were cultured under hypoxic conditions (1% oxygen), and their viability was assessed at different time points using AO/PI staining, observed through fluorescence microscopy. MIN6 cells were treated with varying concentrations of MSC-CM under normal and hypoxic conditions. At different time points, cell viability was measured by Annexin/PI flow cytometry, and insulin secretion capacity was assessed through glucose-stimulated insulin secretion tests. A NCG T1DM mouse model was established, and islet cells from BALB/c mice were co-incubated with MSC-CM for 24 hours. The islet cells were then transplanted under the renal capsule of NCG T1DM mice. Mice body weight and blood glucose levels were monitored, and glucose tolerance tests were conducted to evaluate graft function. Graft survival was further assessed by HE staining and insulin immunohistochemistry.

Results: Under hypoxic conditions, MIN6 cell death increased with prolonged hypoxia. Flow cytometry showed that after 48 hours of hypoxia, the survival rate of MIN6 cells was significantly lower than that of the normoxic group [(68.07±7.90)% vs (94.57±2.12)%, P<0.01)]. MSC-CM treatment restored the insulin secretion function of MIN6 cells under hypoxia, with the stimulation index (SI) increasing from 1.43±0.06 to 1.77±0.02 (P<0.001). Both 10% and 20% MSC-CM effectively mitigated hypoxic damage, whereas 30% MSC-CM had weaker effects. Glucose-stimulated insulin secretion results showed trends consistent with cell survival. Primary mouse islet cells pretreated with 10% MSC-CM and transplanted under the renal capsule of T1DM mice showed a sustained decrease in blood glucose levels 5 days post-surgery. HE staining and insulin immunohistochemistry indicated that the islet cells in the MSC-CM group maintained more intact morphology and higher insulin secretion. Glucose tolerance tests demonstrated better graft function in the MSC-CM group.

Conclusions: Hypoxia significantly reduces the survival of MIN6 cells and suppresses their insulin secretion function. However, MSC-CM can significantly improve hypoxia-induced cell death and functional decline, and protect islet graft function in a T1DM mouse transplantation model.

间充质干细胞条件培养基改善缺氧损伤保护胰岛移植物功能。
目的:胰岛移植是治疗1型糖尿病(T1DM)最有希望的方法之一,但移植后早期缺氧死亡阻碍了成功治疗。为了提高胰岛移植的疗效,增强胰岛细胞对缺氧的抵抗能力,在血运重建前减少缺氧损伤是至关重要的。间充质干细胞(MSCs)通过旁分泌机制调节免疫反应并防止缺氧损伤。本研究旨在验证MSC-conditioned medium (CM)在增强胰岛细胞对缺氧条件的耐受性和维持胰岛移植物功能方面的保护作用。方法:在低氧条件下(1%氧气)培养MIN6细胞,采用AO/PI染色法测定不同时间点细胞活力,荧光显微镜观察。在正常和缺氧条件下,用不同浓度的MSC-CM处理MIN6细胞。在不同时间点,采用Annexin/PI流式细胞术检测细胞活力,通过葡萄糖刺激胰岛素分泌试验评估胰岛素分泌能力。建立NCG T1DM小鼠模型,将BALB/c小鼠胰岛细胞与MSC-CM共孵育24小时。然后将胰岛细胞移植到NCG T1DM小鼠肾被膜下。监测小鼠体重和血糖水平,并通过葡萄糖耐量试验评估移植物功能。通过HE染色和胰岛素免疫组化进一步评估移植物存活。结果:缺氧条件下,MIN6细胞死亡随缺氧时间延长而增加。流式细胞术显示,缺氧48 h后,MIN6细胞存活率明显低于常氧组[(68.07±7.90)% vs(94.57±2.12)%]。结论:缺氧可显著降低MIN6细胞存活率,抑制其胰岛素分泌功能。然而,在T1DM小鼠移植模型中,MSC-CM可显著改善缺氧诱导的细胞死亡和功能下降,并保护胰岛移植功能。
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
中南大学学报(医学版)
中南大学学报(医学版) Medicine-Medicine (all)
CiteScore
1.00
自引率
0.00%
发文量
8237
期刊介绍: Journal of Central South University (Medical Sciences), founded in 1958, is a comprehensive academic journal of medicine and health sponsored by the Ministry of Education and Central South University. The journal has been included in many important databases and authoritative abstract journals at home and abroad, such as the American Medline, Pubmed and its Index Medicus (IM), the Netherlands Medical Abstracts (EM), the American Chemical Abstracts (CA), the WHO Western Pacific Region Medical Index (WPRIM), and the Chinese Science Citation Database (Core Database) (CSCD); it is a statistical source journal of Chinese scientific and technological papers, a Chinese core journal, and a "double-effect" journal of the Chinese Journal Matrix; it is the "2nd, 3rd, and 4th China University Excellent Science and Technology Journal", "2008 China Excellent Science and Technology Journal", "RCCSE China Authoritative Academic Journal (A+)" and Hunan Province's "Top Ten Science and Technology Journals". The purpose of the journal is to reflect the new achievements, new technologies, and new experiences in medical research, medical treatment, and teaching, report new medical trends at home and abroad, promote academic exchanges, improve academic standards, and promote scientific and technological progress.
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