日期:
2020 年 — 2026 年
2020
2021
2022
2023
2024
2025
2026
影响因子:

African swine fever virus DEAD-box helicase D1133L promotes OGG1-driven incision of genomic 8-oxoG via HDAC5 deacetylation.

非洲猪瘟病毒 DEAD-box 解旋酶 D1133L 通过 HDAC5 去乙酰化促进 OGG1 驱动的基因组 8-oxoG 的切割。

Correction: Miu et al. MRC-5 Human Lung Fibroblasts Alleviate the Genotoxic Effect of Fe-N Co-Doped Titanium Dioxide Nanoparticles Through an OGG1/2-Dependent Reparatory Mechanism. Int. J. Mol. Sci. 2023, 24, 6401

更正:Miu 等人,《MRC-5 人肺成纤维细胞通过 OGG1/2 依赖性修复机制缓解 Fe-N 共掺杂二氧化钛纳米颗粒的基因毒性作用》,《国际分子科学杂志》,2023 年,24 卷,6401 页。

Miu, Bogdan Andrei; Voinea, Ionela Cristina; Diamandescu, Lucian; Dinischiotu, Anca

OGG1 and MUTYH DNA Glycosylases, the Dynamic Duo Against 8-Oxoguanine DNA Lesion: Structure, Regulation, and Novel Emerging Roles

OGG1 和 MUTYH DNA 糖基化酶:对抗 8-氧鸟嘌呤 DNA 损伤的动态二人组:结构、调控和新兴作用

Gómez-Ramírez, Ana P; Malek, Melody; García-González, Estela G; Campos, Sergio E; Brieba, Luis G; David, Sheila S; Trasviña-Arenas, Carlos H

OGG1 increases exercise endurance via elevated skeletal muscle FGF21

OGG1通过提高骨骼肌FGF21水平来增强运动耐力。

Blaze, Bhavya; Sharma, Priyanka; Gupta, Bhavya Prakash; Mandal, Souvik; Komakula, Sai Santosh Babu; Anthony, Tracy; Marfo, Emmanuel; Sampath, Harini

OGG1 activation improves T cell resilience to oxidative stress after allo-SCT and T cell engager exposure

OGG1激活可提高异基因造血干细胞移植和T细胞衔接器暴露后T细胞对氧化应激的抵抗力。

Saul, D; Lischer, C; Bruns, H; Ziegler, N; Kannt, A; Michel, M; Mougiakakos, D

Capturing a glycosylase reaction intermediate in DNA repair by freeze-trapping of a pH-responsive hOGG1 mutant

利用冷冻捕获法捕获 pH 响应型 hOGG1 突变体,从而捕获 DNA 修复中的糖基化酶反应中间体

Unno, Masaki; Morikawa, Masayuki; Sychrovský, Vladimír; Koga, Masataka; Minowa, Nozomi; Komuro, Saki; Shimizu, Mami; Fukuta, Mariko; Tsuyuguchi, Fuuka; Mano, Haruka; Ochi, Yusuke; Nakashima, Katsuyuki; Okamoto, Yasuko; Saio, Tomohide; Hattori, Yoshikazu; Tanaka, Yoshiyuki

Dynamic genome-wide mapping reveals how chromatin context shapes OGG1-mediated repair and related mutagenesis in human cells

动态全基因组图谱揭示染色质环境如何影响人类细胞中OGG1介导的修复及相关突变

Li, Jie; Li, Lin; Tan, Yuanqing; Yin, Mengdie; Li, Yuxuan; Yin, Dongrui; An, Jiao; Zhuang, Guanglei; Qian, Maoxiang; Hu, Jinchuan

Reassessing the roles of oxidative DNA base lesion 8-oxoGua and repair enzyme OGG1 in tumorigenesis

重新评估氧化性DNA碱基损伤8-oxoGua和修复酶OGG1在肿瘤发生中的作用

Wang, Jing; Li, Chunshuang; Han, Jinling; Xue, Yaoyao; Zheng, Xu; Wang, Ruoxi; Radak, Zsolt; Nakabeppu, Yusaku; Boldogh, Istvan; Ba, Xueqing

Genomic 8-oxoguanine modulates gene transcription independent of its repair by DNA glycosylases OGG1 and MUTYH

基因组8-氧鸟嘌呤通过不依赖于DNA糖基化酶OGG1和MUTYH修复的方式调节基因转录。

Obermann, Tobias; Sakshaug, Teri; Kanagaraj, Vishnu Vignesh; Abentung, Andreas; Sousa, Mirta Mittelstedt Leal de; Hagen, Lars; Sarno, Antonio; Bjørås, Magnar; Scheffler, Katja

OGG1S326C variant frequent in human populations facilitates inflammatory responses due to its extended interaction with DNA substrate

OGG1S326C 变异体在人类群体中常见,由于其与 DNA 底物的相互作用增强,可促进炎症反应。

Han, Jinling; Zhang, Meichen; Ge, Jiakun; Ji, Zhihua; Zhao, Jianyi; Hu, Yinchao; Li, Chunshuang; Xue, Yaoyao; Li, Xining; Zhao, Haiwang; Cui, Zixu; Tian, Miaomiao; Zheng, Xu; Wang, Dapeng; Wang, Jing; Wei, Min; Radak, Zsolt; Nakabeppu, Yusaku; Boldogh, Istvan; Ba, Xueqing