Reducing oxidative protein folding alleviates senescence by minimizing ER‐to‐nucleus H2O2 release
暂无分享,去创建一个
[1] M. Serrano,et al. Hallmarks of aging: An expanding universe , 2022, Cell.
[2] J. Qu,et al. Single-nucleus profiling unveils a geroprotective role of the FOXO3 in primate skeletal muscle aging , 2022, Protein & cell.
[3] J. I. Izpisúa Belmonte,et al. Single-cell transcriptomic atlas of mouse cochlear aging , 2022, Protein & cell.
[4] Hong Wang,et al. Nestin prevents mesenchymal stromal cells from apoptosis in LPS-induced lung injury via inhibition of unfolded protein response sensor IRE1α , 2022, Life Medicine.
[5] F. Vizoso,et al. Aging and Mesenchymal Stem Cells: Basic Concepts, Challenges and Strategies , 2022, Biology.
[6] D. Klionsky,et al. Manipulating Autophagic Degradation in Human Diseases: from Mechanisms to Interventions , 2022, Life Medicine.
[7] Yanjiang Wang,et al. Continuous antioxidant drug exposure: a bridge from ideal world to real world of therapy for amyotrophic lateral sclerosis , 2022, Life Medicine.
[8] Q. Kong,et al. The landscape of aging , 2022, Science China Life Sciences.
[9] J. Qu,et al. 4E-BP1 counteracts human mesenchymal stem cell senescence via maintaining mitochondrial homeostasis , 2022, Protein & cell.
[10] J. Kirkland,et al. Targeting senescent cells for a healthier longevity: the roadmap for an era of global aging , 2022, Life medicine.
[11] Lei Wang,et al. Oxidative protein folding fidelity and redoxtasis in the endoplasmic reticulum. , 2022, Trends in biochemical sciences.
[12] Lishu Guo,et al. Aging-associated accumulation of mitochondrial DNA mutations in tumor origin , 2022, Life Medicine.
[13] Yiwei Sun,et al. SARS-CoV-2 ORF8 reshapes the ER through forming mixed disulfides with ER oxidoreductases , 2022, Redox Biology.
[14] J. Qu,et al. Large-scale chromatin reorganization reactivates placenta-specific genes that drive cellular aging. , 2022, Developmental cell.
[15] J. Qu,et al. FTO stabilizes MIS12 and counteracts senescence , 2022, Protein & Cell.
[16] J. Qu,et al. Destabilizing heterochromatin by APOE mediates senescence , 2022, Nature Aging.
[17] M. Fricker,et al. Spatial and temporal control of mitochondrial H2O2 release in intact human cells , 2022, The EMBO journal.
[18] Lei Wang,et al. The extracellular Ero1α/PDI electron transport system regulates platelet function by increasing glutathione reduction potential , 2022, Redox biology.
[19] J. Qu,et al. Hyperthermia differentially affects specific human stem cells and their differentiated derivatives , 2021, Protein & cell.
[20] J. Qu,et al. Large-scale chemical screen identifies Gallic acid as a geroprotector for human stem cells , 2021, Protein & Cell.
[21] J. Qu,et al. Exosomes from antler stem cells alleviate mesenchymal stem cell senescence and osteoarthritis , 2021, Protein & cell.
[22] J. Qu,et al. SIRT3 consolidates heterochromatin and counteracts senescence , 2021, Nucleic acids research.
[23] F. Tang,et al. Resurrection of endogenous retroviruses during aging reinforces senescence , 2021, Cell.
[24] N. Mackman,et al. Plasminogen activator inhibitor 1 and venous thrombosis in pancreatic cancer. , 2021, Blood advances.
[25] Lei Wang,et al. Protein disulfide isomerase is regulated in multiple ways: Consequences for conformation, activities, and pathophysiological functions , 2020, BioEssays : news and reviews in molecular, cellular and developmental biology.
[26] Jing Qu,et al. Aging Atlas: a multi-omics database for aging biology , 2020, Nucleic Acids Res..
[27] J. Qu,et al. METTL3 counteracts premature aging via m6A-dependent stabilization of MIS12 mRNA , 2020, Nucleic acids research.
[28] M. Krause,et al. PAI-1, the Plasminogen System, and Skeletal Muscle , 2020, International journal of molecular sciences.
[29] J. C. Belmonte,et al. Stabilization of heterochromatin by CLOCK promotes stem cell rejuvenation and cartilage regeneration , 2020, Cell Research.
[30] K. Inaba,et al. Observing the nonvectorial yet cotranslational folding of a multidomain protein, LDL receptor, in the ER of mammalian cells , 2020, Proceedings of the National Academy of Sciences.
[31] J. Qu,et al. SIRT7 antagonizes human stem cell aging as a heterochromatin stabilizer , 2020, Protein & Cell.
[32] J. Qu,et al. ZKSCAN3 counteracts cellular senescence by stabilizing heterochromatin , 2020, Nucleic acids research.
[33] J. D. Symons,et al. Protein and Mitochondria Quality Control Mechanisms and Cardiac Aging , 2020, Cells.
[34] Natalie M. Mishina,et al. Ultrasensitive Genetically Encoded Indicator for Hydrogen Peroxide Identifies Roles for the Oxidant in Cell Migration and Mitochondrial Function. , 2020, Cell metabolism.
[35] J. Danesh,et al. Integrative analysis of the plasma proteome and polygenic risk of cardiometabolic diseases , 2019, Nature Metabolism.
[36] J. Qu,et al. DJ-1 is dispensable for human stem cell homeostasis , 2019, Protein & Cell.
[37] Yanbo Zhang,et al. Mesenchymal Stem Cells for Regenerative Medicine , 2019, Cells.
[38] J. I. Izpisúa Belmonte,et al. Stabilizing heterochromatin by DGCR8 alleviates senescence and osteoarthritis , 2019, Nature Communications.
[39] Frédérick A. Mallette,et al. mTOR as a central regulator of lifespan and aging , 2019, F1000Research.
[40] V. Gorgoulis,et al. Mitochondrial Homeostasis and Cellular Senescence , 2019, Cells.
[41] L. Ferrucci,et al. A proteomic atlas of senescence-associated secretomes for aging biomarker development , 2019, bioRxiv.
[42] F. Tang,et al. Maintenance of Nucleolar Homeostasis by CBX4 Alleviates Senescence and Osteoarthritis. , 2019, Cell reports.
[43] T. Wei,et al. Targeting the functional interplay between endoplasmic reticulum oxidoreductin-1α and protein disulfide isomerase suppresses the progression of cervical cancer , 2019, EBioMedicine.
[44] J. Qu,et al. Telomere-dependent and telomere-independent roles of RAP1 in regulating human stem cell homeostasis , 2019, Protein & Cell.
[45] M. Hipp,et al. The proteostasis network and its decline in ageing , 2019, Nature Reviews Molecular Cell Biology.
[46] Xian Wang,et al. Homocysteine causes vascular endothelial dysfunction by disrupting endoplasmic reticulum redox homeostasis , 2018, Redox biology.
[47] M. Ushio-Fukai,et al. Redox Regulation of Mitochondrial Fission Protein Drp1 by Protein Disulfide Isomerase Limits Endothelial Senescence , 2018, Cell reports.
[48] Lei Wang,et al. Secretory kinase Fam20C tunes endoplasmic reticulum redox state via phosphorylation of Ero1α , 2018, The EMBO journal.
[49] Jiping Yang,et al. Metformin alleviates human cellular aging by upregulating the endoplasmic reticulum glutathione peroxidase 7 , 2018, Aging cell.
[50] A. Dillin,et al. A Futile Battle? Protein Quality Control and the Stress of Aging. , 2018, Developmental cell.
[51] Sanjiv J. Shah,et al. A null mutation in SERPINE1 protects against biological aging in humans , 2017, Science Advances.
[52] P. Lio’,et al. Global gene expression profiling and senescence biomarker analysis of hESC exposed to H2O2 induced non-cytotoxic oxidative stress , 2017, Stem Cell Research & Therapy.
[53] J. Bao,et al. Senescence of mesenchymal stem cells (Review). , 2017, International journal of molecular medicine.
[54] Neville E Sanjana,et al. Genome-scale CRISPR-Cas9 knockout and transcriptional activation screening , 2016, Nature Protocols.
[55] G. Krasnov,et al. Mitochondrial dysfunction and oxidative stress in aging and cancer , 2016, Oncotarget.
[56] G. Bánhegyi,et al. Transit of H2O2 across the endoplasmic reticulum membrane is not sluggish. , 2016, Free radical biology & medicine.
[57] R. Flaumenhaft,et al. Inhibition of Protein Disulfide Isomerase in Thrombosis. , 2016, Basic & clinical pharmacology & toxicology.
[58] D. Guan,et al. SIRT6 safeguards human mesenchymal stem cells from oxidative stress by coactivating NRF2 , 2016, Cell Research.
[59] D. Ron,et al. ERO1-independent production of H2O2 within the endoplasmic reticulum fuels Prdx4-mediated oxidative protein folding , 2015, The Journal of cell biology.
[60] F. Tang,et al. A Werner syndrome stem cell model unveils heterochromatin alterations as a driver of human aging , 2015, Science.
[61] J. Atkin,et al. Novel roles for protein disulphide isomerase in disease states: a double edged sword? , 2015, Front. Cell Dev. Biol..
[62] A. Wagers,et al. Stem cell aging: mechanisms, regulators and therapeutic opportunities , 2014, Nature Medicine.
[63] Christian Appenzeller‐Herzog,et al. GPx8 peroxidase prevents leakage of H2O2 from the endoplasmic reticulum. , 2014, Free radical biology & medicine.
[64] N. Neamati,et al. Protein disulfide isomerase: a promising target for cancer therapy. , 2014, Drug discovery today.
[65] R. Sitia,et al. Glutathione peroxidase 7 utilizes hydrogen peroxide generated by Ero1α to promote oxidative protein folding. , 2014, Antioxidants & redox signaling.
[66] N. Nikolsky,et al. Sublethal Oxidative Stress Induces the Premature Senescence of Human Mesenchymal Stem Cells Derived from Endometrium , 2013, Oxidative medicine and cellular longevity.
[67] M. Ushio-Fukai,et al. Platelet protein disulfide isomerase is required for thrombus formation but not for hemostasis in mice. , 2013, Blood.
[68] Hong Wang,et al. Targeting mitochondrial reactive oxygen species as novel therapy for inflammatory diseases and cancers , 2013, Journal of Hematology & Oncology.
[69] N. Bulleid,et al. Multiple ways to make disulfides. , 2011, Trends in biochemical sciences.
[70] Feras Hatahet,et al. Protein disulfide isomerase: a critical evaluation of its function in disulfide bond formation. , 2009, Antioxidants & redox signaling.
[71] Nektarios Tavernarakis. Ageing and the regulation of protein synthesis: a balancing act? , 2008, Trends in cell biology.
[72] Richard I. Morimoto,et al. Adapting Proteostasis for Disease Intervention , 2008, Science.
[73] R. Westrick,et al. Plasminogen activator inhibitor-1 in vascular thrombosis. , 2007, Current drug targets.
[74] G. Ruvkun,et al. Lifespan Regulation by Evolutionarily Conserved Genes Essential for Viability , 2007, PLoS genetics.
[75] J. Weissman,et al. Oxidative protein folding in eukaryotes , 2004, The Journal of cell biology.
[76] D. Harman. Aging: a theory based on free radical and radiation chemistry. , 1956, Journal of gerontology.
[77] J. Szemraj,et al. Reactive oxygen species upregulate expression of PAI-1 in endothelial cells. , 2002, Cellular & molecular biology letters.