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高脂肪饮食喂养对 Znt8 敲除小鼠的影响:β 细胞和全敲除 Znt8 之间的差异。

Effects of high-fat diet feeding on Znt8-null mice: differences between β-cell and global knockout of Znt8.

机构信息

Department of Physiology, University of Toronto, Ontario, Canada.

出版信息

Am J Physiol Endocrinol Metab. 2012 May 15;302(9):E1084-96. doi: 10.1152/ajpendo.00448.2011. Epub 2012 Feb 14.

DOI:10.1152/ajpendo.00448.2011
PMID:22338079
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3774340/
Abstract

Genomewide association studies have linked a polymorphism in the zinc transporter 8 (Znt8) gene to higher risk of developing type 2 diabetes. Znt8 is highly expressed in pancreatic β-cells where it is involved in the regulation of zinc transport into granules. However, Znt8 is also expressed in other tissues including α-cells, where its function is as yet unknown. Previous work demonstrated that mice lacking Znt8 globally were more susceptible to diet-induced obesity (Lemaire et al., Proc Natl Acad Sci USA 106: 14872-14877, 2009; Nicolson et al., Diabetes 58: 2070-2083, 2009). Therefore, the main goal of this study was to examine the physiological impact of β-cell-specific Znt8 deficiency in mice during high-fat high-calorie (HFHC) diet feeding. For these studies, we used β-cell-specific Znt8 knockout (Ins2Cre:Znt8loxP/loxP) and whole body Znt8 knockout (Cre-:Znt8(-/-)) mice placed on a HFHC diet for 16 wk. Ins2Cre:Znt8loxP/loxP mice on HFHC diet had similar body weights throughout the study but displayed impaired insulin biosynthesis and secretion and were glucose intolerant compared with littermate control Ins2Cre mice. In contrast, Cre-:Znt8(-/-) mice became remarkably obese, hyperglycemic, hyperinsulinemic, insulin resistant, and glucose intolerant compared with littermate control Cre- mice. These data show that β-cell Znt8 alone does not considerably aggravate weight gain and glucose intolerance during metabolic stress imposed by an HFHC diet. However, global loss of Znt8 is involved in exacerbating diet-induced obesity and resulting insulin resistance, and this may be due to the loss of Znt8 activity in a tissue other than the β-cell. Thus, our data suggest that Znt8 contributes to the risk of developing type 2 diabetes through β-cell- and non-β-cell-specific effects.

摘要

全基因组关联研究将锌转运蛋白 8(Znt8)基因中的一个多态性与 2 型糖尿病发病风险的增加联系起来。Znt8 在胰腺β细胞中高度表达,在调节锌向颗粒内的转运中发挥作用。然而,Znt8 也在其他组织中表达,包括α细胞,但其功能尚不清楚。先前的研究表明,全身性缺乏 Znt8 的小鼠更容易发生饮食诱导的肥胖(Lemaire 等人,Proc Natl Acad Sci USA 106: 14872-14877,2009;Nicolson 等人,Diabetes 58: 2070-2083,2009)。因此,本研究的主要目标是在高脂肪高热量(HFHC)饮食喂养期间检查β细胞特异性 Znt8 缺失对小鼠的生理影响。为此,我们使用β细胞特异性 Znt8 敲除(Ins2Cre:Znt8loxP/loxP)和全身 Znt8 敲除(Cre-:Znt8(-/-))小鼠在 HFHC 饮食下进行了 16 周的研究。Ins2Cre:Znt8loxP/loxP 小鼠在整个研究过程中体重相似,但与同窝对照 Ins2Cre 小鼠相比,胰岛素生物合成和分泌受损,且葡萄糖耐量受损。相比之下,Cre-:Znt8(-/-) 小鼠与同窝对照 Cre- 小鼠相比,表现出明显的肥胖、高血糖、高胰岛素血症、胰岛素抵抗和葡萄糖不耐受。这些数据表明,在 HFHC 饮食引起的代谢应激下,β细胞 Znt8 单独并不会显著加重体重增加和葡萄糖不耐受。然而,Znt8 的全身性缺失会加剧饮食诱导的肥胖和由此产生的胰岛素抵抗,这可能是由于 Znt8 活性在β细胞以外的组织中丧失。因此,我们的数据表明,Znt8 通过β细胞和非β细胞特异性作用导致 2 型糖尿病发病风险的增加。

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本文引用的文献

1
Human islet distribution program for basic research at a single center.单中心基础研究的人胰岛分布计划
Transplant Proc. 2011 Nov;43(9):3195-7. doi: 10.1016/j.transproceed.2011.10.003.
2
Beta-cell uncoupling protein 2 regulates reactive oxygen species production, which influences both insulin and glucagon secretion.β-细胞解偶联蛋白 2 调节活性氧的产生,这会影响胰岛素和胰高血糖素的分泌。
Diabetes. 2011 Nov;60(11):2710-9. doi: 10.2337/db11-0132. Epub 2011 Oct 7.
3
Glucose regulates free cytosolic Zn²⁺ concentration, Slc39 (ZiP), and metallothionein gene expression in primary pancreatic islet β-cells.葡萄糖调节胰腺β细胞内游离细胞溶质锌离子浓度、Slc39(锌转运蛋白)和金属硫蛋白基因的表达。
J Biol Chem. 2011 Jul 22;286(29):25778-89. doi: 10.1074/jbc.M111.246082. Epub 2011 May 25.
4
Vhl is required for normal pancreatic β cell function and the maintenance of β cell mass with age in mice.Vhl 对于正常的胰腺 β 细胞功能以及小鼠 β 细胞数量随年龄增长的维持是必需的。
Lab Invest. 2011 Apr;91(4):527-38. doi: 10.1038/labinvest.2010.207. Epub 2011 Jan 17.
5
Downregulation of ZnT8 expression in pancreatic β-cells of diabetic mice.糖尿病小鼠胰岛β细胞中 ZnT8 表达下调。
Islets. 2009 Sep-Oct;1(2):124-8. doi: 10.4161/isl.1.2.9433.
6
The longitudinal association of common susceptibility variants for type 2 diabetes and obesity with fasting glucose level and BMI.2 型糖尿病和肥胖常见易感变异与空腹血糖水平和 BMI 的纵向关联。
BMC Med Genet. 2010 Oct 8;11:140. doi: 10.1186/1471-2350-11-140.
7
Deletion of Pten in pancreatic ß-cells protects against deficient ß-cell mass and function in mouse models of type 2 diabetes.敲除胰腺β细胞中的 Pten 可防止 2 型糖尿病小鼠模型中β细胞质量和功能的不足。
Diabetes. 2010 Dec;59(12):3117-26. doi: 10.2337/db09-1805. Epub 2010 Sep 17.
8
Conditional gene targeting in mouse pancreatic ß-Cells: analysis of ectopic Cre transgene expression in the brain.条件性基因靶向在小鼠胰腺β细胞中的应用:异位 Cre 转基因在大脑中的表达分析。
Diabetes. 2010 Dec;59(12):3090-8. doi: 10.2337/db10-0624. Epub 2010 Aug 29.
9
Free zinc ions outside a narrow concentration range are toxic to a variety of cells in vitro.在狭窄的浓度范围之外,游离的锌离子对体外的各种细胞都是有毒的。
Exp Biol Med (Maywood). 2010 Jun;235(6):741-50. doi: 10.1258/ebm.2010.009258.
10
Beta cell-specific Znt8 deletion in mice causes marked defects in insulin processing, crystallisation and secretion.小鼠胰岛β细胞特异性 Znt8 缺失导致胰岛素加工、结晶和分泌的显著缺陷。
Diabetologia. 2010 Aug;53(8):1656-68. doi: 10.1007/s00125-010-1733-9. Epub 2010 Apr 28.