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xie, l.

Publications and source records attributed to xie, l..

2 recordsLinked to original sources

ATM-Mediated Translocation of RanBPM Regulates DNA Damage Response by Stabilizing p21 in Non-Small Cell Lung Cancer Cells

Non-small cell lung cancer (NSCLC) is the leading cause of cancer-induced deaths around the world, and platinum-based chemotherapy remains a standard-of-care for most patients with advanced NSCLC. DNA damage response (DDR) induced by platinum or Etoposide activated a panel of cell cycle-regulatory proteins including p21 through p53 pathway. In this present study, we found that the level of p21 or RanBPM is lower in NSCLC than non-malignant tissues and has a highly positive correlation, which is negatively correlated with the survival of patients. We further revealed that RanBPM protein physically interacts with p21, RanBPM deubiquitinates p21 by recruiting a deubiquitinase USP11 to maintain protein stability of p21. Furthermore, RanBPM regulates DNA damage response (DDR) in a p21-dependent manner, and DNA damage promotes the translocation of RanBPM into the nucleus and regulates p21 protein stability through ATM-mediated pathways. We for the first time revealed a novel mechanism of p21 protein stability regulated by RanBPM, and the novel roles of RanBPM in the regulation of DDR.

cancer biology↗

A Novel Mice Model of Catecholaminergic Polymorphic Ventricular Tachycardia Generated by CRISPR/Cas9

Catecholaminergic polymorphic ventricular tachycardia (CPVT) has been considered as one of the most important causes of childrens sudden cardiac death. Mutations in the genes for RyR2 and CASQ2, two mainly subtypes of CPVT, have been identified. However, the mutation in the gene of TECRL was rarely reported, which could be another genetic cause of CPVT. We evaluated myocardial contractility, electrophysiology, calcium handling in Tecrl knockout (Tecrl KO) mice and human induced pluripotent stem cell-derived cardiomyocytes. Immediately after epinephrine plus caffeine injection, Tecrl KO mice showed much more multiple premature ventricular beats and ventricular tachycardia. The Tecrl KO mice demonstrate CPVT phenotypes. Mechanistically, intracellular calcium amplitude was reduced, while time to baseline of 50 was increased in acute isolated cardiomyocytes. RyR2 protein levels decreased significantly upon cycloheximide treatment in TECRL deficiency cardiomyocytes. Overexpression of TECRL and KN93 can partially reverse cardiomyocytes calcium dysfunction, and this is p-CaMKII/CaMKII dependent. Therefore, a new CPVT mouse model was constructed. We propose a previously unrecognized mechanism of TECRL and provide support for the therapeutic targeting of TECRL in treating CPVT.

molecular biology↗