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Molecular architecture of lineage allocation and tissue organization in early mouse embryo (vol 572, 528, 2019) 期刊论文
NATURE, 2020, 577 (7791) : E6-E6
作者:  Peng, Guangdun;  Suo, Shengbao;  Cui, Guizhong;  Yu, Fang;  Wang, Ran;  Chen, Jun;  Chen, Shirui;  Liu, Zhiwen;  Chen, Guoyu;  Qian, Yun;  Tam, Patrick P. L.;  Han, Jing-Dong J.;  Jing, Naihe
收藏  |  浏览/下载:13/0  |  提交时间:2020/07/03
HPF1 completes the PARP active site for DNA damage-induced ADP-ribosylation 期刊论文
NATURE, 2020, 579 (7800) : 598-+
作者:  Yao, Peng;  Wu, Huaqiang;  Gao, Bin;  Tang, Jianshi;  Zhang, Qingtian;  Zhang, Wenqiang;  Yang, J. Joshua;  Qian, He
收藏  |  浏览/下载:14/0  |  提交时间:2020/07/03

Assembly of a catalytic centre formed by HPF1 bound to PARP1 or PARP2 is essential for protein ADP-ribosylation after DNA damage in human cells.


The anti-cancer drug target poly(ADP-ribose) polymerase 1 (PARP1) and its close homologue, PARP2, are early responders to DNA damage in human cells(1,2). After binding to genomic lesions, these enzymes use NAD(+) to modify numerous proteins with mono- and poly(ADP-ribose) signals that are important for the subsequent decompaction of chromatin and the recruitment of repair factors(3,4). These post-translational modifications are predominantly serine-linked and require the accessory factor HPF1, which is specific for the DNA damage response and switches the amino acid specificity of PARP1 and PARP2 from aspartate or glutamate to serine residues(5-10). Here we report a co-structure of HPF1 bound to the catalytic domain of PARP2 that, in combination with NMR and biochemical data, reveals a composite active site formed by residues from HPF1 and PARP1 or PARP2 . The assembly of this catalytic centre is essential for the addition of ADP-ribose moieties after DNA damage in human cells. In response to DNA damage and occupancy of the NAD(+)-binding site, the interaction of HPF1 with PARP1 or PARP2 is enhanced by allosteric networks that operate within the PARP proteins, providing an additional level of regulation in the induction of the DNA damage response. As HPF1 forms a joint active site with PARP1 or PARP2, our data implicate HPF1 as an important determinant of the response to clinical PARP inhibitors.


  
Mechanism of adrenergic Ca(V)1.2 stimulation revealed by proximity proteomics 期刊论文
NATURE, 2020, 577 (7792) : 695-+
作者:  Peng, Guangdun;  Suo, Shengbao;  Cui, Guizhong;  Yu, Fang;  Wang, Ran;  Chen, Jun;  Chen, Shirui;  Liu, Zhiwen;  Chen, Guoyu;  Qian, Yun;  Tam, Patrick P. L.;  Han, Jing-Dong J.;  Jing, Naihe
收藏  |  浏览/下载:24/0  |  提交时间:2020/07/03

An in vivo approach to identify proteins whose enrichment near cardiac Ca(V)1.2 channels changes upon beta-adrenergic stimulation finds the G protein Rad, which is phosphorylated by protein kinase A, thereby relieving channel inhibition by Rad and causing an increased Ca2+ current.


Increased cardiac contractility during the fight-or-flight response is caused by beta-adrenergic augmentation of Ca(V)1.2 voltage-gated calcium channels(1-4). However, this augmentation persists in transgenic murine hearts expressing mutant Ca(V)1.2 alpha(1C) and beta subunits that can no longer be phosphorylated by protein kinase A-an essential downstream mediator of beta-adrenergic signalling-suggesting that non-channel factors are also required. Here we identify the mechanism by which beta-adrenergic agonists stimulate voltage-gated calcium channels. We express alpha(1C) or beta(2B) subunits conjugated to ascorbate peroxidase(5) in mouse hearts, and use multiplexed quantitative proteomics(6,7) to track hundreds of proteins in the proximity of Ca(V)1.2. We observe that the calcium-channel inhibitor Rad(8,9), a monomeric G protein, is enriched in the Ca(V)1.2 microenvironment but is depleted during beta-adrenergic stimulation. Phosphorylation by protein kinase A of specific serine residues on Rad decreases its affinity for beta subunits and relieves constitutive inhibition of Ca(V)1.2, observed as an increase in channel open probability. Expression of Rad or its homologue Rem in HEK293T cells also imparts stimulation of Ca(V)1.3 and Ca(V)2.2 by protein kinase A, revealing an evolutionarily conserved mechanism that confers adrenergic modulation upon voltage-gated calcium channels.