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瘦多基因肥胖抵抗小鼠模型肝脏转录组和骨骼肌中部分基因表达揭示的肥胖抵抗机制。

Obesity resistant mechanisms in the Lean polygenic mouse model as indicated by liver transcriptome and expression of selected genes in skeletal muscle.

机构信息

University of Ljubljana, Biotechnical Faculty, Department of Animal Science, Groblje 3, 1230 DomŽale, Slovenia.

出版信息

BMC Genomics. 2011 Feb 3;12:96. doi: 10.1186/1471-2164-12-96.

Abstract

BACKGROUND

Divergently selected Lean and Fat mouse lines represent unique models for a polygenic form of resistance and susceptibility to obesity development. Previous research on these lines focused mainly on obesity-susceptible factors in the Fat line. This study aimed to examine the molecular basis of obesity-resistant mechanisms in the Lean line by analyzing various fat depots and organs, the liver transcriptome of selected metabolic pathways, plasma and lipid homeostasis and expression of selected skeletal muscle genes.

RESULTS

Expression profiling using our custom Steroltalk v2 microarray demonstrated that Lean mice exhibit a higher hepatic expression of cholesterol biosynthesis genes compared to the Fat line, although this was not reflected in elevation of total plasma or liver cholesterol. However, FPLC analysis showed that protective HDL cholesterol was elevated in Lean mice. A significant difference between the strains was also found in bile acid metabolism. Lean mice had a higher expression of Cyp8b1, a regulatory enzyme of bile acid synthesis, and the Abcb11 bile acid transporter gene responsible for export of acids to the bile. Additionally, a higher content of blood circulating bile acids was observed in Lean mice. Elevated HDL and upregulation of some bile acids synthesis and transport genes suggests enhanced reverse cholesterol transport in the Lean line--the flux of cholesterol out of the body is higher which is compensated by upregulation of endogenous cholesterol biosynthesis. Increased skeletal muscle Il6 and Dio2 mRNA levels as well as increased activity of muscle succinic acid dehydrogenase (SDH) in the Lean mice demonstrates for the first time that changes in muscle energy metabolism play important role in the Lean line phenotype determination and corroborate our previous findings of increased physical activity and thermogenesis in this line. Finally, differential expression of Abcb11 and Dio2 identifies novel strong positional candidate genes as they map within the quantitative trait loci (QTL) regions detected previously in crosses between the Lean and Fat mice.

CONCLUSION

We identified novel candidate molecular targets and metabolic changes which can at least in part explain resistance to obesity development in the Lean line. The major difference between the Lean and Fat mice was in increased liver cholesterol biosynthesis gene mRNA expression, bile acid metabolism and changes in selected muscle genes' expression in the Lean line. The liver Abcb11 and muscle Dio2 were identified as novel positional candidate genes to explain part of the phenotypic difference between the Lean and Fat lines.

摘要

背景

选择的瘦鼠和胖鼠品系代表了一种多基因肥胖易感性和肥胖发展抗性的独特模型。之前对这些品系的研究主要集中在胖鼠系的肥胖易感性因素上。本研究旨在通过分析各种脂肪组织和器官、选定代谢途径的肝脏转录组、血浆和脂质稳态以及选定骨骼肌基因的表达,研究瘦鼠系肥胖抗性机制的分子基础。

结果

使用我们定制的 Steroltalk v2 微阵列进行的表达谱分析表明,与胖鼠系相比,瘦鼠肝脏中胆固醇生物合成基因的表达更高,尽管这并未反映在总血浆或肝脏胆固醇升高上。然而,FPLC 分析表明,保护性高密度脂蛋白胆固醇在瘦鼠中升高。在两种品系之间还发现了显著差异,表现在胆汁酸代谢上。瘦鼠中 Cyp8b1 的表达较高,Cyp8b1 是胆汁酸合成的调节酶,而 Abcb11 胆汁酸转运体基因负责将酸输出到胆汁中。此外,瘦鼠血液中循环胆汁酸的含量也较高。升高的 HDL 和一些胆汁酸合成和转运基因的上调表明,在瘦鼠系中,胆固醇的逆向转运增加,即胆固醇从体内流出的通量增加,这被内源性胆固醇生物合成的上调所补偿。瘦鼠骨骼肌 Il6 和 Dio2 mRNA 水平的增加以及肌肉琥珀酸脱氢酶 (SDH) 活性的增加首次证明了肌肉能量代谢的变化在瘦鼠系表型决定中起着重要作用,并证实了我们之前在该品系中发现的增加的体力活动和产热的研究结果。最后,Abcb11 和 Dio2 的差异表达确定了新的强定位候选基因,因为它们位于之前在瘦鼠和胖鼠之间的杂交中检测到的数量性状位点 (QTL) 区域内。

结论

我们确定了新的候选分子靶标和代谢变化,这些至少可以部分解释瘦鼠系对肥胖发展的抗性。瘦鼠和胖鼠之间的主要区别在于瘦鼠系肝脏胆固醇生物合成基因 mRNA 表达、胆汁酸代谢和选定肌肉基因表达的变化。肝脏 Abcb11 和肌肉 Dio2 被确定为解释瘦鼠和胖鼠系之间部分表型差异的新的定位候选基因。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0d32/3044672/f77e417682b8/1471-2164-12-96-1.jpg

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