Synthetic Small Molecules Induce Insulin Secretion and Pancreatic Beta-Cell-Specific Gene Expression.

IF 1.9 4区 生物学 Q1 ANATOMY & MORPHOLOGY Cells Tissues Organs Pub Date : 2023-01-01 DOI:10.1159/000522154
Mohammad Rabiei, Naser Kalhor, Aisan Farhadi, Sorour Ramezanpour, Yaser Tahamtani, Mahnaz Azarnia
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引用次数: 1

Abstract

Despite various efficient pharmaceuticals which are already used to manage diabetes, new drugs are needed to preserve and restore the function of pancreatic β-cells (pβCs) including cell-specific gene expression and insulin production and secretion. Newly developed small molecules (SMs) with potential anti-diabetic activity need to be preliminarily tested. Mice insulinoma MIN6 cells can be utilized as an in vitro screening model. These cells have pβC characteristics and can secrete insulin in response to glucose level changes. As well, the β-cell-specific gene expression pattern of these cells is similar to that of mouse pancreatic islet cells. It is possible to use this cell line as a research tool to study the function of pβCs. To date, approximately 60 genes have been identified which are effective in the pβC embryonic development and insulin production and secretion during puberty, including pancreas/duodenum homeobox protein 1 (Pdx1), neuronal differentiation 1 (Neurod1), neurogenin3 (Ngn3), and insulin-1 precursor (Ins1). In this study, a family of new SMs that are structurally similar to glinides was synthesized through 3 different synthetic methods and categorized into 3 categories (C1-C3). Then, these novel SMs were characterized by testing their effects on cell viability, pβC-specific gene expression, and insulin secretion in MIN6 in 4 different concentrations and at 3 time points (24, 48, and 72 h). According to our results, SMs of C1 (1j, 1k, and 1l) and 2 SMs of C3 (1f, 1i), at 200 μM concentration, were able to increase the expression levels of Pdx1, Neurod1, Ngn3, and Ins1 as well as the insulin secretion after 24 h. However, C2 (1a, 1b, 1c, and 1d) did not show significant bioactivity of MIN6 cells. These investigated molecules can provide a tool for exploring pseudo-islet functionality in MIN6 cells or provide a possible basis for future therapeutic interventions for diabetes.

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合成小分子诱导胰岛素分泌和胰腺β细胞特异性基因表达。
尽管各种有效的药物已经用于治疗糖尿病,但需要新的药物来保护和恢复胰腺β细胞(p - β c)的功能,包括细胞特异性基因表达和胰岛素的产生和分泌。新开发的具有潜在抗糖尿病活性的小分子(SMs)需要进行初步试验。小鼠胰岛素瘤MIN6细胞可作为体外筛选模型。这些细胞具有p - β c特征,可以分泌胰岛素以响应葡萄糖水平的变化。此外,这些细胞的β细胞特异性基因表达模式与小鼠胰岛细胞相似。该细胞系可作为研究p - β cs功能的研究工具。迄今为止,大约有60个基因已被确定在pβC胚胎发育和青春期胰岛素的产生和分泌中起作用,包括胰腺/十二指肠同源盒蛋白1 (Pdx1)、神经元分化1 (Neurod1)、神经原蛋白3 (Ngn3)和胰岛素-1前体(Ins1)。本研究通过3种不同的合成方法合成了与gliides结构相似的新SMs家族,并将其分为3类(C1-C3)。然后,这些小说短信以测试其对细胞活力的影响,pβC-specific基因表达,和胰岛素分泌MIN6在3 4不同浓度和时间点(24、48和72 h)。根据我们的结果,SMs的C1 (1 j, k, 1 l)和2 SMs的C3 (1 f, 1我),在200μM浓度,能够增加Pdx1的表达水平,Neurod1, Ngn3, Ins1以及胰岛素分泌后24 h。然而,C2 (1 a、1 b 1 c,和1d)对MIN6细胞没有明显的生物活性。这些被研究的分子可以为探索MIN6细胞的伪胰岛功能提供工具,或为未来糖尿病的治疗干预提供可能的基础。
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来源期刊
Cells Tissues Organs
Cells Tissues Organs 生物-发育生物学
CiteScore
4.90
自引率
3.70%
发文量
45
审稿时长
6-12 weeks
期刊介绍: ''Cells Tissues Organs'' aims at bridging the gap between cell biology and developmental biology and the emerging fields of regenerative medicine (stem cell biology, tissue engineering, artificial organs, in vitro systems and transplantation biology). CTO offers a rapid and fair peer-review and exquisite reproduction quality. Special topic issues, entire issues of the journal devoted to a single research topic within the range of interests of the journal, are published at irregular intervals.
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