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Genomic Approach to Asthma 哮喘的基因组方法
Pub Date : 2019-12-31 DOI: 10.1007/978-981-10-8764-6
Xiangdong Wang, Zhihong Chen
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引用次数: 1
Lipidomics in Health & Disease 健康与疾病中的脂质组学
Pub Date : 2018-01-01 DOI: 10.1007/978-981-13-0620-4
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引用次数: 1
A PARP1-Erk2 synergism is required for stimulation-induced expression of immediate early genes 刺激诱导的即时早期基因表达需要PARP1-Erk2协同作用
Pub Date : 2016-07-11 DOI: 10.14800/GTB.1367
M. Cohen-Armon
A PARP1-Erk2 synergism was required to generate synaptic long-term potentiation in the CA3-CA1 hippocampal connections. This molecular mechanism was associated with the recently identified pivotal role of polyADP-ribosylation in learning. High frequency electrical stimulation of cortical and hippocampal neurons induced binding of phosphorylated Erk2 (transported into the nucleus) to the nuclear protein PARP1. PARP1-Erk2 binding induced PARP1 activation and polyADP-ribosylation of its prominent substrate, linker histone H1. A facilitated access of PARP1-bound phosphorylated Erk2 to its substrates, transcription factors Elk1 and CREB was attributed to the release of polyADP-ribosylated H1 from the DNA, causing local DNA relaxation. Erk-induced phosphorylation of transcription factors activating the HAT activity of CBP (CREB binding protein), recruited acetylated histone H4 to the promoters of immediate early genes (IEG) cfos, zif268 and arc, which are implicated in synaptic plasticity. In accordance, their induced expression was suppressed after PARP1 genetic deletion in PARP1-KO mice, or after PARP1 inhibition or silencing. Moreover, under these conditions, long-term synaptic potentiation (LTP) (indicating synaptic plasticity) was not generation in the hippocampal CA3-CA1 connections, and learning abilities were impaired. Furthermore, both IEG expression and LTP generation failed when cerebral neurons accumulated single strand DNA breaks, due to a predominant binding of PARP1 to nicked DNA, occluding its Erk binding sites. Thus, a declined synaptic plasticity is anticipated when aged cerebral neurons accumulate DNA single-strand breaks during life span.
在CA3-CA1海马连接中产生突触长期增强需要PARP1-Erk2协同作用。这种分子机制与最近发现的聚adp核糖基化在学习中的关键作用有关。皮层和海马神经元的高频电刺激诱导磷酸化的Erk2(转运到细胞核)与核蛋白PARP1结合。PARP1- erk2结合诱导PARP1激活和其主要底物连接蛋白H1的聚adp核糖基化。parp1结合的磷酸化Erk2易于接近其底物,转录因子Elk1和CREB归因于从DNA中释放聚adp核糖化的H1,导致局部DNA松弛。erk诱导的转录因子磷酸化激活CBP (CREB结合蛋白)的HAT活性,将乙酰化组蛋白H4募集到直接早期基因(IEG) cfos、zif268和arc的启动子上,这些基因与突触可塑性有关。因此,在PARP1- ko小鼠中,PARP1基因缺失或PARP1抑制或沉默后,它们的诱导表达受到抑制。此外,在这些条件下,海马CA3-CA1连接不产生长期突触增强(LTP)(表明突触可塑性),学习能力受损。此外,当大脑神经元积累单链DNA断裂时,由于PARP1与缺口DNA的主要结合,阻塞了其Erk结合位点,IEG表达和LTP生成都失败了。因此,当衰老的大脑神经元在生命周期中积累DNA单链断裂时,预计突触可塑性会下降。
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引用次数: 4
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Gene & translational bioinformatics
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