Area of research
Plant Science · Physiology
Research interest
Research interests include Plant Molecular Biology Research, Plant Disease Resistance and Genetics, Plant Stress Responses and Tolerance, and Adipose Tissue and Metabolism.
Glehnia littoralis polysaccharides alleviate lung and intestinal mucosal barrier damage in rats with ulcerative colitis via aryl hydrocarbon receptor activation
Mechanistic investigation of the ameliorative effect of liquiritin on hypoxia/reoxygenation‑induced cardiomyocyte injury based on network pharmacology and <i>in</i> <i>vitro</i> validation
Hesperetin ameliorates ischemia/hypoxia‐induced myocardium injury via inhibition of oxidative stress, apoptosis, and regulation of Ca<sup>2+</sup> homeostasis
Additional file 2 of Genome-wide identification and expression analysis reveals spinach brassinosteroid-signaling kinase (BSK) gene family functions in temperature stress response
Additional file 6 of Genome-wide identification and expression analysis reveals spinach brassinosteroid-signaling kinase (BSK) gene family functions in temperature stress response
Additional file 5 of Genome-wide identification and expression analysis reveals spinach brassinosteroid-signaling kinase (BSK) gene family functions in temperature stress response
Additional file 1 of Genome-wide identification and expression analysis reveals spinach brassinosteroid-signaling kinase (BSK) gene family functions in temperature stress response
Additional file 4 of Genome-wide identification and expression analysis reveals spinach brassinosteroid-signaling kinase (BSK) gene family functions in temperature stress response
Exploration of the hepatoprotective effect and mechanism of magnesium isoglycyrrhizinate in mice with arsenic trioxide‑induced acute liver injury
Protective effects of safranal on hypoxia/reoxygenation‑induced injury in H9c2 cardiac myoblasts via the PI3K/AKT/GSK3β signaling pathway
<p>Protective Effects of Crocetin on Arsenic Trioxide-Induced Hepatic Injury: Involvement of Suppression in Oxidative Stress and Inflammation Through Activation of Nrf2 Signaling Pathway in Rats</p>
Loss of Adipose Growth Hormone Receptor in Mice Enhances Local Fatty Acid Trapping and Impairs Brown Adipose Tissue Thermogenesis