Proteomic Analysis Reveals That Mitochondria Dominate the Hippocampal Hypoxic Response in Mice
暂无分享,去创建一个
Y. Guan | Jia Liu | Xunming Ji | Yakun Gu | Mengyuan Guo | Zhengming Tian | Qianqian Shao | Gaifen Li | W. Ma | Chaoyu Wang
[1] K. Kaczyńska,et al. Respiratory Abnormalities in Parkinson’s Disease: What Do We Know from Studies in Humans and Animal Models? , 2022, International journal of molecular sciences.
[2] C. Culmsee,et al. Cytochrome c Oxidase Inhibition by ATP Decreases Mitochondrial ROS Production , 2022, Cells.
[3] Bin Zhang,et al. Chronic Intermittent Hypoxia Enhances Pathological Tau Seeding, Propagation, and Accumulation and Exacerbates Alzheimer-like Memory and Synaptic Plasticity Deficits and Molecular Signatures , 2021, Biological Psychiatry.
[4] Shuohui Dong,et al. Accumulated ROS Activates HIF-1α-Induced Glycolysis and Exerts a Protective Effect on Sensory Hair Cells Against Noise-Induced Damage , 2022, Frontiers in Molecular Biosciences.
[5] D. Sabatini,et al. Fumarate is a terminal electron acceptor in the mammalian electron transport chain , 2021, Science.
[6] A. Filer,et al. Inflammation causes remodeling of mitochondrial cytochrome c oxidase mediated by the bifunctional gene C15orf48 , 2021, Science advances.
[7] J. Girault,et al. Sleep Apnea Specific Hypoxic Burden, Symptom Subtypes and Risk of Cardiovascular Events and All-Cause Mortality. , 2021, American journal of respiratory and critical care medicine.
[8] L. Sazanov,et al. The assembly, regulation and function of the mitochondrial respiratory chain , 2021, Nature Reviews Molecular Cell Biology.
[9] D. Abrous,et al. A Baldwin interpretation of adult hippocampal neurogenesis: from functional relevance to physiopathology , 2021, Molecular Psychiatry.
[10] F. Plesinger,et al. Ventricular activation pattern assessment during right ventricular pacing: Ultra‐high‐frequency ECG study , 2021, Journal of cardiovascular electrophysiology.
[11] Greg M. Delgoffe,et al. Mitochondrial stress induced by continuous stimulation under hypoxia rapidly drives T cell exhaustion , 2021, Nature immunology.
[12] F. Plesinger,et al. Ventricular activation pattern assessment during right ventricular pacing; ultra-high-frequency ECG study , 2020 .
[13] B. Kadenbach. Complex IV- the regulatory center of mitochondrial oxidative phosphorylation. , 2020, Mitochondrion.
[14] Kevin S. Smith,et al. C9orf72 suppresses systemic and neural inflammation induced by gut bacteria , 2020, Nature.
[15] S. Vogt,et al. Stress-mediated generation of deleterious ROS in healthy individuals - role of cytochrome c oxidase , 2020, Journal of Molecular Medicine.
[16] N. Chandel,et al. Cellular adaptation to hypoxia through hypoxia inducible factors and beyond , 2020, Nature Reviews Molecular Cell Biology.
[17] Xuhui Yang,et al. Mitochondrial NDUFA4L2 protein promotes the vitality of lung cancer cells by repressing oxidative stress , 2019, Thoracic cancer.
[18] Damian Szklarczyk,et al. STRING v11: protein–protein association networks with increased coverage, supporting functional discovery in genome-wide experimental datasets , 2018, Nucleic Acids Res..
[19] H. Rafatpanah,et al. HTLV‐1 infection‐induced motor dysfunction, memory impairment, depression, and brain tissues oxidative damage in female BALB/c mice , 2018, Life sciences.
[20] Maojun Yang,et al. Structure of the intact 14-subunit human cytochrome c oxidase , 2018, Cell Research.
[21] J. Taanman,et al. NDUFA4 (Renamed COXFA4) Is a Cytochrome-c Oxidase Subunit , 2018, Trends in Endocrinology & Metabolism.
[22] F. Liu,et al. Overexpression of NDUFA4L2 is associated with poor prognosis in patients with colorectal cancer , 2017, ANZ journal of surgery.
[23] M. Brand,et al. Quantifying intracellular rates of glycolytic and oxidative ATP production and consumption using extracellular flux measurements , 2017, The Journal of Biological Chemistry.
[24] Pallav Sengupta,et al. Men and mice: Relating their ages. , 2016, Life sciences.
[25] Neville E. Sanjana,et al. Hypoxia as a therapy for mitochondrial disease , 2016, Science.
[26] I. Ng,et al. NDUFA4L2 Fine-tunes Oxidative Stress in Hepatocellular Carcinoma , 2016, Clinical Cancer Research.
[27] C. Schofield,et al. Protein Hydroxylation Catalyzed by 2-Oxoglutarate-dependent Oxygenases* , 2015, The Journal of Biological Chemistry.
[28] P. Achermann,et al. Ascent to moderate altitude impairs overnight memory improvements , 2015, Physiology & Behavior.
[29] I. Komuro,et al. Higd1a is a positive regulator of cytochrome c oxidase , 2015, Proceedings of the National Academy of Sciences.
[30] S. Yoshikawa,et al. Reaction mechanism of cytochrome c oxidase. , 2015, Chemical reviews.
[31] V. Sharma,et al. Multi-domain cognitive screening test for neuropsychological assessment for cognitive decline in acclimatized lowlanders staying at high altitude , 2012, The Indian journal of medical research.
[32] J. Enríquez,et al. Induction of the mitochondrial NDUFA4L2 protein by HIF-1α decreases oxygen consumption by inhibiting Complex I activity. , 2011, Cell metabolism.
[33] Stanton Newman,et al. The cerebral effects of ascent to high altitudes , 2009, The Lancet Neurology.
[34] W. Kaelin,et al. Oxygen sensing by metazoans: the central role of the HIF hydroxylase pathway. , 2008, Molecular cell.
[35] Robert A. Harris,et al. Deficiency or inhibition of oxygen sensor Phd1 induces hypoxia tolerance by reprogramming basal metabolism , 2008, Nature Genetics.
[36] G. Semenza,et al. HIF-1 Regulates Cytochrome Oxidase Subunits to Optimize Efficiency of Respiration in Hypoxic Cells , 2007, Cell.
[37] N. Denko,et al. HIF-1 mediates adaptation to hypoxia by actively downregulating mitochondrial oxygen consumption. , 2006, Cell metabolism.
[38] G. Semenza,et al. HIF-1-mediated expression of pyruvate dehydrogenase kinase: a metabolic switch required for cellular adaptation to hypoxia. , 2006, Cell metabolism.