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β 细胞 Ca3.1 通道表达增强可损害胰岛素分泌和葡萄糖稳态。

Enhanced expression of β cell Ca3.1 channels impairs insulin release and glucose homeostasis.

机构信息

The Rolf Luft Research Center for Diabetes and Endocrinology, Karolinska Institutet, SE-171 76 Stockholm, Sweden;

The Rolf Luft Research Center for Diabetes and Endocrinology, Karolinska Institutet, SE-171 76 Stockholm, Sweden.

出版信息

Proc Natl Acad Sci U S A. 2020 Jan 7;117(1):448-453. doi: 10.1073/pnas.1908691117. Epub 2019 Dec 23.

Abstract

Voltage-gated calcium 3.1 (Ca3.1) channels are absent in healthy mouse β cells and mediate minor T-type Ca currents in healthy rat and human β cells but become evident under diabetic conditions. Whether more active Ca3.1 channels affect insulin secretion and glucose homeostasis remains enigmatic. We addressed this question by enhancing de novo expression of β cell Ca3.1 channels and exploring the consequent impacts on dynamic insulin secretion and glucose homeostasis as well as underlying molecular mechanisms with a series of in vitro and in vivo approaches. We now demonstrate that a recombinant adenovirus encoding enhanced green fluorescent protein-Ca3.1 subunit (Ad-EGFP-Ca3.1) efficiently transduced rat and human islets as well as dispersed islet cells. The resulting Ca3.1 channels conducted typical T-type Ca currents, leading to an enhanced basal cytosolic-free Ca concentration ([Ca]). Ad-EGFP-Ca3.1-transduced islets released significantly less insulin under both the basal and first phases following glucose stimulation and could no longer normalize hyperglycemia in recipient rats rendered diabetic by streptozotocin treatment. Furthermore, Ad-EGFP-Ca3.1 transduction reduced phosphorylated FoxO1 in the cytoplasm of INS-1E cells, elevated FoxO1 nuclear retention, and decreased syntaxin 1A, SNAP-25, and synaptotagmin III. These effects were prevented by inhibiting Ca3.1 channels or the Ca-dependent phosphatase calcineurin. Enhanced expression of β cell Ca3.1 channels therefore impairs insulin release and glucose homeostasis by means of initial excessive Ca influx, subsequent activation of calcineurin, consequent dephosphorylation and nuclear retention of FoxO1, and eventual FoxO1-mediated down-regulation of β cell exocytotic proteins. The present work thus suggests an elevated expression of Ca3.1 channels plays a significant role in diabetes pathogenesis.

摘要

电压门控钙通道 3.1(Ca3.1)在健康小鼠β细胞中不存在,在健康大鼠和人β细胞中介导较小的 T 型钙电流,但在糖尿病条件下变得明显。更多活跃的 Ca3.1 通道是否会影响胰岛素分泌和葡萄糖稳态仍然是个谜。我们通过增强β细胞 Ca3.1 通道的从头表达,并通过一系列体外和体内方法探索对动态胰岛素分泌和葡萄糖稳态以及潜在分子机制的影响来解决这个问题。我们现在证明,一种编码增强型绿色荧光蛋白-Ca3.1 亚基的重组腺病毒(Ad-EGFP-Ca3.1)可以有效地转导大鼠和人胰岛以及分散的胰岛细胞。由此产生的 Ca3.1 通道传导典型的 T 型钙电流,导致基础胞质游离 Ca 浓度升高([Ca])。在葡萄糖刺激后的基础期和第一期,Ad-EGFP-Ca3.1 转导的胰岛释放的胰岛素明显减少,并且不能使接受链脲佐菌素治疗的糖尿病大鼠的高血糖正常化。此外,Ad-EGFP-Ca3.1 转导降低了 INS-1E 细胞细胞质中磷酸化的 FoxO1,增加了 FoxO1 的核保留,并减少了 syntaxin 1A、SNAP-25 和 synaptotagmin III。这些作用可以通过抑制 Ca3.1 通道或钙依赖性磷酸酶钙调神经磷酸酶来预防。增强的β细胞 Ca3.1 通道表达因此通过初始过量的 Ca 内流、随后的钙调神经磷酸酶激活、随后的去磷酸化和 FoxO1 的核保留以及最终的 FoxO1 介导的β细胞胞吐蛋白下调来损害胰岛素释放和葡萄糖稳态。本研究表明,Ca3.1 通道的高表达在糖尿病发病机制中起重要作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d0f6/6955371/8d08354e0ec3/pnas.1908691117fig01.jpg

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