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CB1受体基因敲除新生小鼠可免受乙醇诱导的DNA甲基转移酶1、DNA甲基转移酶3A和DNA甲基化损伤。

CB1-receptor knockout neonatal mice are protected against ethanol-induced impairments of DNMT1, DNMT3A, and DNA methylation.

作者信息

Nagre Nagaraja N, Subbanna Shivakumar, Shivakumar Madhu, Psychoyos Delphine, Basavarajappa Balapal S

机构信息

Division of Analytical Psychopharmacology, Nathan Kline Institute for Psychiatric Research, Orangeburg, NY 10962, USA.

Institute of Biosciences and Technology, Houston, Texas A&M University Health Science Center, Houston, TX 77030, USA.

出版信息

J Neurochem. 2015 Feb;132(4):429-442. doi: 10.1111/jnc.13006. Epub 2015 Jan 27.

Abstract

The significant consequences of ethanol use during pregnancy are neurobehavioral abnormalities involving hippocampal and neocortex malfunctions that cause learning and memory deficits collectively named fetal alcohol spectrum disorder. However, the molecular mechanisms underlying these abnormalities are still poorly understood and therefore warrant systematic research. Here, we document novel epigenetic abnormalities in the mouse model of fetal alcohol spectrum disorder. Ethanol treatment of P7 mice, which induces activation of caspase 3, impaired DNA methylation through reduced DNA methyltransferases (DNMT1 and DNMT3A) levels. Inhibition of caspase 3 activity, before ethanol treatment, rescued DNMT1, DNMT3A proteins as well as DNA methylation levels. Blockade of histone methyltransferase (G9a) activity or cannabinoid receptor type-1 (CB1R), prior to ethanol treatment, which, respectively, inhibits or prevents activation of caspase 3, rescued the DNMT1 and DNMT3A proteins and DNA methylation. No reduction of DNMT1 and DNMT3A proteins and DNA methylation was found in P7 CB1R null mice, which exhibit no ethanol-induced activation of caspase 3. Together, these data demonstrate that ethanol-induced activation of caspase 3 impairs DNA methylation through DNMT1 and DNMT3A in the neonatal mouse brain, and such impairments are absent in CB1R null mice. Epigenetic events mediated by DNA methylation may be one of the essential mechanisms of ethanol teratogenesis. Schematic mechanism of action by which ethanol impairs DNA methylation. Studies have demonstrated that ethanol has the capacity to bring epigenetic changes to contribute to the development of fetal alcohol spectrum disorder (FASD). However, the mechanisms are not well studied. P7 ethanol induces the activation of caspase 3 and impairs DNA methylation through reduced DNA methyltransferases (DNMT1 and DNMT3A) proteins (→). The inhibition or genetic ablation of cannabinoid receptor type-1 or inhibition of histone methyltransferase (G9a) by Bix (-----) or inhibition of caspase 3 activation by Q- quinoline-Val-Asp(Ome)-CH2-O-phenoxy (Q-VD-OPh) () rescue loss of DNMT1, DNMT3A as well as DNA methylation. Hence, the putative DNMT1/DNMT3A/DNA methylation mechanism may have a potential regulatory role in FASD.

摘要

孕期饮酒的重大后果是神经行为异常,涉及海马体和新皮质功能障碍,导致学习和记忆缺陷,统称为胎儿酒精谱系障碍。然而,这些异常背后的分子机制仍知之甚少,因此需要进行系统研究。在此,我们记录了胎儿酒精谱系障碍小鼠模型中的新型表观遗传异常。对P7小鼠进行乙醇处理会诱导半胱天冬酶3的激活,通过降低DNA甲基转移酶(DNMT1和DNMT3A)水平损害DNA甲基化。在乙醇处理前抑制半胱天冬酶3的活性可挽救DNMT1、DNMT3A蛋白以及DNA甲基化水平。在乙醇处理前阻断组蛋白甲基转移酶(G9a)的活性或大麻素受体1型(CB1R),分别抑制或阻止半胱天冬酶3的激活,可挽救DNMT1和DNMT3A蛋白以及DNA甲基化。在P7 CB1R基因敲除小鼠中未发现DNMT1和DNMT3A蛋白及DNA甲基化的减少,这些小鼠未表现出乙醇诱导的半胱天冬酶3激活。总之,这些数据表明,乙醇诱导的半胱天冬酶3激活通过DNMT1和DNMT3A损害新生小鼠大脑中的DNA甲基化,而在CB1R基因敲除小鼠中不存在这种损害。由DNA甲基化介导的表观遗传事件可能是乙醇致畸作用的重要机制之一。乙醇损害DNA甲基化的作用机制示意图。研究表明,乙醇有能力带来表观遗传变化,从而导致胎儿酒精谱系障碍(FASD)的发展。然而,其机制尚未得到充分研究。P7期乙醇诱导半胱天冬酶3的激活,并通过降低DNA甲基转移酶(DNMT1和DNMT3A)蛋白水平损害DNA甲基化(→)。大麻素受体1型的抑制或基因敲除,或用比司(-----)抑制组蛋白甲基转移酶(G9a),或用喹啉 - 缬氨酸 - 天冬氨酸(甲酯) - 甲基 - 苯氧基(Q - VD - OPh)抑制半胱天冬酶3的激活()可挽救DNMT1、DNMT3A以及DNA甲基化的缺失。因此,假定的DNMT1/DNMT3A/DNA甲基化机制可能在FASD中具有潜在的调节作用。

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