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Front Physiol. 2021 Dec 3;12:781581. doi: 10.3389/fphys.2021.781581. eCollection 2021.
2
Channeling β-cell Maturity: KATP Surface Localization Imparts Glucose Sensing.引导β细胞成熟:KATP通道的表面定位赋予葡萄糖感应能力。
Endocrinology. 2021 Nov 1;162(11). doi: 10.1210/endocr/bqab171.
3
Engineering islets from stem cells for advanced therapies of diabetes.从干细胞工程化胰岛用于糖尿病的先进治疗。
Nat Rev Drug Discov. 2021 Dec;20(12):920-940. doi: 10.1038/s41573-021-00262-w. Epub 2021 Aug 10.
4
Decreased KATP Channel Activity Contributes to the Low Glucose Threshold for Insulin Secretion of Rat Neonatal Islets.KATP 通道活性降低导致大鼠新生胰岛的胰岛素分泌低血糖阈值降低。
Endocrinology. 2021 Sep 1;162(9). doi: 10.1210/endocr/bqab121.
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A Brief Review of the Mechanisms of β-Cell Dedifferentiation in Type 2 Diabetes.2 型糖尿病中β细胞去分化机制的简要综述。
Nutrients. 2021 May 10;13(5):1593. doi: 10.3390/nu13051593.
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Temporal Transcriptome Analysis Reveals Dynamic Gene Expression Patterns Driving β-Cell Maturation.时间转录组分析揭示驱动β细胞成熟的动态基因表达模式。
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Biol Proced Online. 2021 Mar 1;23(1):7. doi: 10.1186/s12575-021-00143-x.
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Postnatal maturation of calcium signaling in islets of Langerhans from neonatal mice.胰岛中钙离子信号的出生后成熟:来自新生小鼠的研究。
Cell Calcium. 2021 Mar;94:102339. doi: 10.1016/j.ceca.2020.102339. Epub 2020 Dec 28.
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Nat Rev Mol Cell Biol. 2021 Feb;22(2):142-158. doi: 10.1038/s41580-020-00317-7. Epub 2021 Jan 4.
10
Functional Genomics in Pancreatic β Cells: Recent Advances in Gene Deletion and Genome Editing Technologies for Diabetes Research.胰腺β细胞的功能基因组学:基因缺失和基因组编辑技术在糖尿病研究中的最新进展。
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慢性高血糖暴露下新生鼠胰岛与成熟胰岛钙振荡的相似性。

Similarities in Calcium Oscillations Between Neonatal Mouse Islets and Mature Islets Exposed to Chronic Hyperglycemia.

机构信息

Department of Biomedical Sciences, Heritage College of Osteopathic Medicine, Ohio University, Athens, Ohio 45701, USA.

Honors Tutorial College, Ohio University, Athens, Ohio 45701, USA.

出版信息

Endocrinology. 2022 Jul 1;163(7). doi: 10.1210/endocr/bqac066.

DOI:10.1210/endocr/bqac066
PMID:35551371
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9186310/
Abstract

Pulsatility is important to islet function. As islets mature into fully developed insulin-secreting micro-organs, their ability to produce oscillatory intracellular calcium ([Ca2+]i) patterns in response to glucose also matures. In this study, we measured [Ca2+]i using fluorescence imaging to characterize oscillations from neonatal mice on postnatal (PN) days 0, 4, and 12 in comparison to adult islets. Under substimulatory (3-mM) glucose levels, [Ca2+]i was low and quiescent for adult islets as expected, as well as for PN day 12 islets. In contrast, one-third of islets on PN day 0 and 4 displayed robust [Ca2+]i oscillations in low glucose. In stimulatory glucose (11 mM) conditions, oscillations were present on all neonatal days but differed from patterns in adults. By PN day 12, [Ca2+]i oscillations were approaching characteristics of fully developed islets. The immature response pattern of neonatal islets was due, at least in part, to differences in adenosine 5'-triphosphate (ATP)-sensitive K+-channel activity estimated by [Ca2+]i responses to KATP channel agents diazoxide and tolbutamide. Neonatal [Ca2+]i patterns were also strikingly similar to patterns observed in mature islets exposed to hyperglycemic conditions (20 mM glucose for 48 hours): elevated [Ca2+]i and oscillations in low glucose along with reduced pulse mass in high glucose. Since a hallmark of diabetic islets is dedifferentiation, we propose that diabetic islets display features of "reverse maturation," demonstrating similar [Ca2+]i dynamics as neonatal islets. Pulsatility is thus an important emergent feature of neonatal islets. Our findings may provide insight into reversing β-cell dedifferentiation and to producing better functioning β cells from pluripotent stem cells.

摘要

脉动性对胰岛功能很重要。随着胰岛成熟为完全发育的胰岛素分泌微器官,其对葡萄糖响应产生振荡细胞内钙 ([Ca2+]i) 模式的能力也随之成熟。在这项研究中,我们使用荧光成像测量 [Ca2+]i,以比较新生小鼠在出生后 (PN) 第 0、4 和 12 天的胰岛的振荡特征与成年胰岛。在亚刺激(3mM)葡萄糖水平下,成年胰岛以及 PN 第 12 天的胰岛的 [Ca2+]i 水平较低且处于静止状态,这是预期的结果。相比之下,PN 第 0 天和第 4 天的三分之一胰岛在低葡萄糖条件下显示出强烈的 [Ca2+]i 振荡。在刺激葡萄糖(11mM)条件下,所有新生日的胰岛都存在振荡,但与成年胰岛的模式不同。到 PN 第 12 天,[Ca2+]i 振荡接近完全发育的胰岛的特征。新生胰岛不成熟的反应模式至少部分归因于通过 KATP 通道剂二氮嗪和甲苯磺丁脲对 [Ca2+]i 反应估计的三磷酸腺苷 (ATP) 敏感钾通道活性的差异。新生 [Ca2+]i 模式也与在高血糖条件下暴露的成熟胰岛观察到的模式非常相似(20mM 葡萄糖 48 小时):在低葡萄糖中升高的 [Ca2+]i 和振荡以及在高葡萄糖中脉冲质量降低。由于糖尿病胰岛的特征是去分化,我们提出糖尿病胰岛表现出“反向成熟”的特征,显示出与新生胰岛相似的 [Ca2+]i 动力学。因此,脉动性是新生胰岛的一个重要新兴特征。我们的发现可能为逆转β细胞去分化并从多能干细胞产生更好功能的β细胞提供启示。