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本文引用的文献

1
Gs-coupled GPCR signalling in AgRP neurons triggers sustained increase in food intake.AgRP神经元中Gs偶联的GPCR信号传导引发食物摄入量的持续增加。
Nat Commun. 2016 Jan 8;7:10268. doi: 10.1038/ncomms10268.
2
Palatability Can Drive Feeding Independent of AgRP Neurons.适口性可驱动进食,与AgRP神经元无关。
Cell Metab. 2015 Oct 6;22(4):646-57. doi: 10.1016/j.cmet.2015.07.011. Epub 2015 Aug 13.
3
Mouse insulin cells expressing an inducible RIPCre transgene are functionally impaired.表达可诱导RIPCre转基因的小鼠胰岛素细胞功能受损。
J Biol Chem. 2015 Feb 6;290(6):3647-53. doi: 10.1074/jbc.M114.615484. Epub 2014 Dec 22.
4
O-GlcNAc transferase enables AgRP neurons to suppress browning of white fat.O-连接的N-乙酰葡糖胺转移酶使AgRP神经元能够抑制白色脂肪的棕色化。
Cell. 2014 Oct 9;159(2):306-17. doi: 10.1016/j.cell.2014.09.010.
5
When Proteins Start to Make Sense: Fine-tuning Aminoglycosides for PTC Suppression Therapy.当蛋白质开始发挥作用:为PTC抑制疗法微调氨基糖苷类药物。
Medchemcomm. 2014 Aug 1;5(8):1092-1105. doi: 10.1039/C4MD00081A.
6
Therapeutics based on stop codon readthrough.基于终止密码子通读的疗法。
Annu Rev Genomics Hum Genet. 2014;15:371-94. doi: 10.1146/annurev-genom-091212-153527. Epub 2014 Apr 18.
7
Arcuate AgRP neurons mediate orexigenic and glucoregulatory actions of ghrelin.弓状 AgRP 神经元介导 ghrelin 的食欲刺激和糖调节作用。
Mol Metab. 2013 Oct 17;3(1):64-72. doi: 10.1016/j.molmet.2013.10.001. eCollection 2014 Feb.
8
Genetic identification of a neural circuit that suppresses appetite.遗传鉴定抑制食欲的神经回路。
Nature. 2013 Nov 7;503(7474):111-4. doi: 10.1038/nature12596. Epub 2013 Oct 13.
9
NR2B subunit of the NMDA glutamate receptor regulates appetite in the parabrachial nucleus.NMDA 谷氨酸受体 NR2B 亚基调节臂旁核中的食欲。
Proc Natl Acad Sci U S A. 2013 Sep 3;110(36):14765-70. doi: 10.1073/pnas.1314137110. Epub 2013 Aug 20.
10
Cardiac fibrosis in mice expressing an inducible myocardial-specific Cre driver.在表达诱导型心肌特异性 Cre 驱动子的小鼠中发生的心脏纤维化。
Dis Model Mech. 2013 Nov;6(6):1470-6. doi: 10.1242/dmm.010470. Epub 2013 Aug 7.

新型诱导性遗传方法揭示了γ-氨基丁酸在控制进食和新陈代谢中的关键作用。

New inducible genetic method reveals critical roles of GABA in the control of feeding and metabolism.

作者信息

Meng Fantao, Han Yong, Srisai Dollada, Belakhov Valery, Farias Monica, Xu Yong, Palmiter Richard D, Baasov Timor, Wu Qi

机构信息

Children's Nutrition Research Center, Department of Pediatrics, Baylor College of Medicine, Houston, TX 77030;

Department of Molecular Physiology and Biophysics, University of Iowa, Iowa City, IA 52242;

出版信息

Proc Natl Acad Sci U S A. 2016 Mar 29;113(13):3645-50. doi: 10.1073/pnas.1602049113. Epub 2016 Mar 14.

DOI:10.1073/pnas.1602049113
PMID:26976589
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4822580/
Abstract

Currently available inducible Cre/loxP systems, despite their considerable utility in gene manipulation, have pitfalls in certain scenarios, such as unsatisfactory recombination rates and deleterious effects on physiology and behavior. To overcome these limitations, we designed a new, inducible gene-targeting system by introducing an in-frame nonsense mutation into the coding sequence of Cre recombinase (nsCre). Mutant mRNAs transcribed from nsCre transgene can be efficiently translated into full-length, functional Cre recombinase in the presence of nonsense suppressors such as aminoglycosides. In a proof-of-concept model, GABA signaling from hypothalamic neurons expressing agouti-related peptide (AgRP) was genetically inactivated within 4 d after treatment with a synthetic aminoglycoside. Disruption of GABA synthesis in AgRP neurons in young adult mice led to a dramatic loss of body weight due to reduced food intake and elevated energy expenditure; they also manifested glucose intolerance. In contrast, older mice with genetic inactivation of GABA signaling by AgRP neurons had only transient reduction of feeding and body weight; their energy expenditure and glucose tolerance were unaffected. These results indicate that GABAergic signaling from AgRP neurons plays a key role in the control of feeding and metabolism through an age-dependent mechanism. This new genetic technique will augment current tools used to elucidate mechanisms underlying many physiological and neurological processes.

摘要

目前可用的诱导型Cre/loxP系统,尽管在基因操作中具有相当大的实用性,但在某些情况下存在缺陷,如重组率不理想以及对生理和行为产生有害影响。为了克服这些局限性,我们通过在Cre重组酶(nsCre)的编码序列中引入一个框内无义突变,设计了一种新的诱导型基因靶向系统。在存在诸如氨基糖苷类等无义抑制因子的情况下,从nsCre转基因转录的突变mRNA能够有效地翻译成全长的、有功能的Cre重组酶。在一个概念验证模型中,在用合成氨基糖苷类处理后的4天内,表达刺鼠相关肽(AgRP)的下丘脑神经元的GABA信号被基因失活。年轻成年小鼠中AgRP神经元的GABA合成中断导致由于食物摄入量减少和能量消耗增加而体重急剧下降;它们还表现出葡萄糖不耐受。相比之下,通过AgRP神经元使GABA信号基因失活的老年小鼠仅出现短暂的进食和体重下降;它们的能量消耗和葡萄糖耐受性未受影响。这些结果表明,来自AgRP神经元的GABA能信号通过一种年龄依赖性机制在进食和代谢控制中起关键作用。这种新的基因技术将增强目前用于阐明许多生理和神经过程潜在机制的工具。