Metal-induced oxidative stress and human plasma protein oxidation after SARS-CoV-2 infection
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[1] Omar H. Butt,et al. Plasma proteomics of SARS-CoV-2 infection and severity reveals impact on Alzheimer and coronary disease pathways , 2022, iScience.
[2] Lorena Novoa-Aponte,et al. Unique underlying principles shaping copper homeostasis networks , 2022, JBIC Journal of Biological Inorganic Chemistry.
[3] H. Rafatpanah,et al. Elevated levels of C3, C4, and CH50 of the complement system in ICU and non‐ICU patients with COVID‐19 , 2022, Health science reports.
[4] Xin Zheng,et al. Association of Complement C3 with Clinical Deterioration Among Hospitalized Patients with COVID-19 , 2022, International journal of general medicine.
[5] Habiba S. Alsafar,et al. Upregulation of oxidative stress gene markers during SARS-COV-2 viral infection , 2021, Free Radical Biology and Medicine.
[6] L. Schomburg,et al. Relation of Serum Copper Status to Survival in COVID-19 , 2021, Nutrients.
[7] M. Aschner,et al. Serum Zinc, Copper, and Other Biometals Are Associated with COVID-19 Severity Markers , 2021, Metabolites.
[8] Christos T. Chasapis,et al. A SARS-CoV-2 –human metalloproteome interaction map , 2021, Journal of Inorganic Biochemistry.
[9] J. Pincemail,et al. Oxidative Stress Status in COVID-19 Patients Hospitalized in Intensive Care Unit for Severe Pneumonia. A Pilot Study , 2021, Antioxidants.
[10] Mariana P Serrano,et al. Oxidation of tyrosine: antioxidant mechanism of L-DOPA disclosed. , 2021, Free radical biology & medicine.
[11] H. Habib,et al. The role of iron in the pathogenesis of COVID-19 and possible treatment with lactoferrin and other iron chelators , 2021, Biomedicine & Pharmacotherapy.
[12] Wenzhong Liu,et al. COVID-19: captures iron and generates reactive oxygen species to damage the human immune system , 2020, Autoimmunity.
[13] S. Kulshrestha,et al. Blood clots in COVID-19 patients: Simplifying the curious mystery , 2020, Medical Hypotheses.
[14] Marjan Azghandi,et al. Detection of novel coronavirus (SARS-CoV-2) RNA in peripheral blood specimens , 2020, Journal of translational medicine.
[15] M. Jaeger,et al. Complement Activation in the Disease Course of Coronavirus Disease 2019 and Its Effects on Clinical Outcomes , 2020, The Journal of infectious diseases.
[16] N. Yazıhan,et al. The Relation Between Trace Element Status (Zinc, Copper, Magnesium) and Clinical Outcomes in COVID-19 Infection During Pregnancy , 2020, Biological Trace Element Research.
[17] L. Vandekerckhove,et al. On the whereabouts of SARS-CoV-2 in the human body: A systematic review , 2020, PLoS pathogens.
[18] S. Y. Kim,et al. In-depth blood proteome profiling analysis revealed distinct functional characteristics of plasma proteins between severe and non-severe COVID-19 patients , 2020, Scientific Reports.
[19] Michael D Healy,et al. SARS-CoV-2 viral load is associated with increased disease severity and mortality , 2020, Nature Communications.
[20] A. Cecchini,et al. SARS-CoV-2 infection pathogenesis is related to oxidative stress as a response to aggression , 2020, Medical Hypotheses.
[21] A. Palmer,et al. Hyperferritinemia in critically ill COVID-19 patients – Is ferritin the product of inflammation or a pathogenic mediator? , 2020, Clinica Chimica Acta.
[22] Shuke Nie,et al. Serum Iron Level as a Potential Predictor of Coronavirus Disease 2019 Severity and Mortality: A Retrospective Study , 2020, Open forum infectious diseases.
[23] Xiaokun Li,et al. Assessment of Hypokalemia and Clinical Characteristics in Patients With Coronavirus Disease 2019 in Wenzhou, China , 2020, JAMA network open.
[24] S. Corrao,et al. COVID-19: hemoglobin, iron, and hypoxia beyond inflammation. A narrative review , 2020, Clinics and practice.
[25] L. Delgado-Roche,et al. Oxidative Stress as Key Player in Severe Acute Respiratory Syndrome Coronavirus (SARS-CoV) Infection , 2020, Archives of Medical Research.
[26] Wenzhong Liu,et al. COVID-19:Attacks the 1-Beta Chain of Hemoglobin and Captures the Porphyrin to Inhibit Human Heme Metabolism , 2020 .
[27] Chuan Qin,et al. Dysregulation of immune response in patients with COVID-19 in Wuhan, China , 2020, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[28] V. A. Rao,et al. Differentiating the Effects of Oxidative Stress Tests on Biopharmaceuticals , 2019, Pharmaceutical Research.
[29] Gabriele Meloni,et al. Copper metallothioneins , 2017, IUBMB life.
[30] Rong-Fong Shen,et al. Complex Nature of Protein Carbonylation Specificity After Metal-Catalyzed Oxidation , 2017, Pharmaceutical Research.
[31] Chao Lu,et al. Retrospective study , 2016, Medicine.
[32] V. A. Rao,et al. Comparative Effects of Metal-Catalyzed Oxidizing Systems on Carbonylation and Integrity of Therapeutic Proteins , 2016, Pharmaceutical Research.
[33] V. A. Rao,et al. Metal-Mediated Protein Oxidation: Applications of a Modified ELISA-Based Carbonyl Detection Assay for Complex Proteins , 2015, Pharmaceutical Research.
[34] S. Dutta,et al. Kaposi's Sarcoma-Associated Herpesvirus Induces Nrf2 during De Novo Infection of Endothelial Cells to Create a Microenvironment Conducive to Infection , 2014, PLoS pathogens.
[35] B. Aryal,et al. Doxorubicin-induced carbonylation and degradation of cardiac myosin binding protein C promote cardiotoxicity , 2014, Proceedings of the National Academy of Sciences.
[36] L. Liotta,et al. Reactive oxygen species activate NFκB (p65) and p53 and induce apoptosis in RVFV infected liver cells. , 2014, Virology.
[37] U. Baxa,et al. Mito-Tempol and Dexrazoxane Exhibit Cardioprotective and Chemotherapeutic Effects through Specific Protein Oxidation and Autophagy in a Syngeneic Breast Tumor Preclinical Model , 2013, PloS one.
[38] E. Mohammadi,et al. Barriers and facilitators related to the implementation of a physiological track and trigger system: A systematic review of the qualitative evidence , 2017, International journal for quality in health care : journal of the International Society for Quality in Health Care.
[39] Jacob Kennedy,et al. Plasma Proteome Profiles Associated with Inflammation, Angiogenesis, and Cancer , 2011, PloS one.
[40] A. Rosenzweig,et al. Structural biology of copper trafficking. , 2009, Chemical reviews.
[41] R. Shrivastava,et al. Interaction of viral proteins with metal ions: role in maintaining the structure and functions of viruses , 2005, FEMS Immunology and Medical Microbiology.
[42] T. O’Halloran,et al. Structure and chemistry of the copper chaperone proteins. , 2000, Current opinion in chemical biology.
[43] C. Baird,et al. The pilot study. , 2000, Orthopedic nursing.
[44] E. Stadtman,et al. Conversion of amino acid residues in proteins and amino acid homopolymers to carbonyl derivatives by metal-catalyzed oxidation reactions. , 1989, The Journal of biological chemistry.
[45] E. Stadtman,et al. Carbonyl assays for determination of oxidatively modified proteins. , 1994, Methods in enzymology.
[46] E. Stadtman,et al. Metal ion-catalyzed oxidation of proteins: biochemical mechanism and biological consequences. , 1990, Free radical biology & medicine.
[47] D. Mosher,et al. Fibronectin concentration is decreased in plasma of severely ill patients with disseminated intravascular coagulation. , 1978, The Journal of laboratory and clinical medicine.