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D-Index & Metrics

Biology and Biochemistry

D-Index
57
Citations
14692
World Ranking
13646
National Ranking
5793

Overview

Andrew J. Gow is affiliated with Rutgers, The State University of New Jersey in the United States. Their research spans multiple fields within medicine and biochemistry, genetics, and molecular biology. The primary focus areas include pulmonary and respiratory medicine, molecular biology, health, toxicology and mutagenesis, physiology, and immunology.

The scientist's work covers a range of topics including heme oxygenase-1 and carbon monoxide, air quality and health impacts, nitric oxide and endothelin effects, climate change and health impacts, pesticide exposure and toxicity, eicosanoids and hypertension pharmacology, and chronic obstructive pulmonary disease (COPD) research.

Andrew J. Gow has contributed to several recent scientific publications. These include the following papers:

  • "Nitric oxide regulation of cellular metabolism: Adaptive tuning of cellular energy" (2022), published in Nitric Oxide
  • "Transcriptional profiling of lung macrophages during pulmonary injury induced by nitrogen mustard" (2020), published in Annals of the New York Academy of Sciences
  • "Human Mesenchymal Stem Cells as a Carrier for a Cell-Mediated Drug Delivery" (2022), published in Frontiers in Bioengineering and Biotechnology
  • "Biological Mechanisms of S-Nitrosothiol Formation and Degradation: How Is Specificity of S-Nitrosylation Achieved?" (2021), published in Antioxidants
  • "Regulation of Lung Macrophage Activation and Oxidative Stress Following Ozone Exposure by Farnesoid X Receptor" (2020), published in Toxicological Sciences

The scientist frequently collaborates with several coauthors who have contributed extensively alongside them. Notable frequent coauthors include Debra L. Laskin, Elena Abramova, Jeffrey D. Laskin, Changjiang Guo, and Emily Stevenson.

Andrew J. Gow's research has appeared across a variety of publication venues. The leading venues where they have published the highest numbers include Applied In Vitro Toxicology, The FASEB Journal, Toxicology and Applied Pharmacology, Toxicological Sciences, and the Journal of Pharmacology and Experimental Therapeutics.

Best Publications

  • Fas-Induced Caspase Denitrosylation

    Joan B. Mannick;Alfred Hausladen;Limin Liu;Douglas T. Hess

  • Methamphetamine neurotoxicity: necrotic and apoptotic mechanisms and relevance to human abuse and treatment

    Colin Davidson;Andrew J. Gow;Tong H. Lee;Everett H. Ellinwood

  • Nitric oxide in the human respiratory cycle.

    Timothy J. McMahon;Richard E. Moon;Ben P. Luschinger;Martha S. Carraway

  • Effects of peroxynitrite-induced protein modifications on tyrosine phosphorylation and degradation.

    Andrew J. Gow;Daniel Duran;Stuart Malcolm;Harry Ischiropoulos

  • The oxyhemoglobin reaction of nitric oxide.

    Andrew J. Gow;Benjamin P. Luchsinger;John R. Pawloski;David J. Singel;David J. Singel

  • Biological significance of nitric oxide-mediated protein modifications.

    Andrew J. Gow;Christiana R. Farkouh;David A. Munson;Michael A. Posencheg

  • A Novel Reaction Mechanism for the Formation of S-Nitrosothiol in Vivo

    Andrew J. Gow;Donald G. Buerk;Harry Ischiropoulos

  • CARBON DIOXIDE ENHANCEMENT OF PEROXYNITRITE-MEDIATED PROTEIN TYROSINE NITRATION

    Andrew Gow;Daniel Duran;Stephen R. Thom;Harry Ischiropoulos

  • Basal and stimulated protein S-nitrosylation in multiple cell types and tissues.

    Andrew J. Gow;Qiping Chen;Douglas T. Hess;Brian J. Day

  • Nitrosative stress: Metabolic pathway involving the flavohemoglobin

    Alfred Hausladen;Andrew J. Gow;Jonathan S. Stamler

  • Ascaris haemoglobin is a nitric oxide-activated ‘deoxygenase’

    Dena M. Minning;Andrew J. Gow;Joseph Bonaventura;Rod Braun

  • Chronic exposure to air pollution particles increases the risk of obesity and metabolic syndrome: findings from a natural experiment in Beijing.

    Yongjie Wei;Junfeng Jim Zhang;Zhigang Li;Andrew Gow

  • Hemoglobin conformation couples erythrocyte S-nitrosothiol content to O2 gradients

    Allan Doctor;Ruth Platt;Mary Lynn Sheram;Anne Eischeid

  • Loss of α-hemoglobin–stabilizing protein impairs erythropoiesis and exacerbates β-thalassemia

    Yi Kong;Suiping Zhou;Anthony J. Kihm;Anthony J. Kihm;Anne M. Katein

  • Nitric Oxide Chemistry and Cellular Signaling

    Andrew J. Gow;Harry Ischiropoulos

  • Flavohemoglobin denitrosylase catalyzes the reaction of a nitroxyl equivalent with molecular oxygen

    Alfred Hausladen;Andrew Gow;Jonathan S. Stamler

  • Molecular Mechanism of AHSP-Mediated Stabilization of α-Hemoglobin

    Liang Feng;David A. Gell;Suiping Zhou;Lichuan Gu

  • Detection of reactive nitrogen species using 2,7-dichlorodihydrofluorescein and dihydrorhodamine 123.

    Harry Ischiropoulos;Andrew Gow;Stephen R. Thom;Neil W. Kooy

  • S-Nitrosylation of Surfactant Protein-D Controls Inflammatory Function

    Chang Jiang Guo;Elena N. Atochina-Vasserman;Elena Abramova;Joseph P. Foley

  • S-Nitrosothiol measurements in biological systems.

    Andrew Gow;Allan Doctor;Joan Mannick;Benjamin Gaston

Frequent Co-Authors

Debra L. Laskin
Debra L. Laskin Rutgers, The State University of New Jersey
Jonathan S. Stamler
Jonathan S. Stamler Case Western Reserve University
Jeffrey D. Laskin
Jeffrey D. Laskin Rutgers, The State University of New Jersey
Michael F. Beers
Michael F. Beers University of Pennsylvania
Harry Ischiropoulos
Harry Ischiropoulos Children's Hospital of Philadelphia
Kian Fan Chung
Kian Fan Chung Imperial College London
Junfeng Zhang
Junfeng Zhang Duke University
Mary P. Ryan
Mary P. Ryan Imperial College London
Mitchell J. Weiss
Mitchell J. Weiss St. Jude Children's Research Hospital
Milo S. P. Shaffer
Milo S. P. Shaffer Imperial College London

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