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Biology subjects

Chen, L.-N.

Publications and source records attributed to Chen, L.-N..

2 recordsLinked to original sources

Double-strand breaks can induce DNA replication and damage amplification in G2 phase-like oocytes of mice

Break-induced DNA replication (BIR) have been detected not only in the genome of rare disease patients but also in cancer cells, however, the mechanisms of BIR formation havent been explained in details. In the late G2 phase-like mouse oocytes, we found DNA double-strand breaks (DSBs) could induce Rad51 dependent small-scale DNA replication. In addition, we also found the DSBs could be amplified in mouse oocytes, and the amplification could be inhibited by Rad51 inhibitor IBR2 and DNA replication inhibitor ddATP. Lastly, we found the DSB repair was relatively inefficiency in hybrid mouse oocytes compared with that of the purebred mouse oocytes. We found DSBs could induce BIR more easier in hybrid mouse oocytes, indicating the DNA repair in oocytes could be affected by the sequence differences between homologous chromatids. In summary, our results indicated that the condensed chromatin configuration in late G2 phase and the sequence similarity between broken DNA and template DNA are causing factors of BIR in mammalian genome, and the DNA damage could be amplified in late G2 phase cells.

genetics

Cryo-EM structures of inactive and Gi-coupled GABAB heterodimer

Metabotropic GABAB G protein-coupled receptor functions as a mandatory heterodimer of GB1 and GB2 subunits and mediates inhibitory neurotransmission in the central nervous system. Each subunit is composed of the extracellular Venus flytrap (VFT) domain and transmembrane (TM) domain. Here we present cryo-EM structures of human full-length heterodimeric GABAB receptor in the antagonist-bound inactive state and in the active state complexed with agonist and positive allosteric modulator in the presence of Gi1 protein at a resolution range of 2.8-3.0 [A]. Cryo-EM analysis of the activated-GABAB-Gi1 complex revealed that Gi1 couples to the activated receptor primarily in three major conformations, one via GB1 TM and two via GB2 TM, respectively. Our structures reveal that agonist binding stabilizes the closure of GB1 VFT, which in turn triggers a rearrangement of TM interfaces between two subunits from TM3-TM5/TM3-TM5 in the inactive state to TM6/TM6 in the active state and finally induces the opening of intracellular loop 3 and synergistically shifting of TM3, 4 and 5 helices in GB2 TM domain to accommodate the 5-helix of Gi1. These results provide a structural framework for understanding class C GPCR activation and a rational template for allosteric modulator design targeting dimeric interface of GABAB receptor.

molecular biology