Area of research
Pulmonary and Respiratory Medicine · Molecular Biology
Research interest
Research interests include Molecular Biology Techniques and Applications, Advanced Proteomics Techniques and Applications, Ferroptosis and cancer prognosis, and Spine and Intervertebral Disc Pathology.
CHI3L3+ immature neutrophils inhibit anti-tumor immunity and impede immune checkpoint blockade therapy in bone metastases
Integrated bulk and single-cell transcriptomic analysis unveiled a novel cuproptosis-related lipid metabolism gene molecular pattern and a risk index for predicting prognosis and antitumor drug sensitivity in breast cancer
Training and experimental validation a novel anoikis- and epithelial‒mesenchymal transition-related signature for evaluating prognosis and predicting immunotherapy efficacy in gastric cancer
Proteomic analysis reveals the alleviation of follicular development defects in offspring mice under DEHP exposure by melatonin
Associations of Frailty Status and Sleep Quality With Incident Delirium: A Prospective Study in the <scp>UK</scp> Biobank
A Redox Homeostasis Modulatory Hydrogel with GLRX3<sup>+</sup> Extracellular Vesicles Attenuates Disc Degeneration by Suppressing Nucleus Pulposus Cell Senescence
Automated Multimodal Machine Learning for Esophageal Variceal Bleeding Prediction Based on Endoscopy and Structured Data
Identification of TGF-β signaling-related molecular patterns, construction of a prognostic model, and prediction of immunotherapy response in gastric cancer
Identification and Validation of a Prognostic Signature for Thyroid Cancer Based on Ferroptosis-Related Genes.
Additional file 2 of i-CRISPR: a personalized cancer therapy strategy through cutting cancer-specific mutations
Additional file 5 of Single-cell RNA sequencing reveals the potential mechanism of heterogeneity of immunomodulatory properties of foreskin and umbilical cord mesenchymal stromal cells
Integrative Analysis of DNA Methylation and Gene Expression Identified Follicular Thyroid Cancer-Specific Diagnostic Biomarkers.
Mesenchymal Stem Cells Improve Glycometabolism and Liver Regeneration in the Treatment of Post-hepatectomy Liver Failure.
Mesenchymal stem cells increase heme oxygenase 1-activated autophagy in treatment of acute liver failure.
The urinary levels of CTX-II, C2C, PYD, and Helix-II increased among adults with KBD: a cross-sectional study
Mfsd2a+ hepatocytes repopulate the liver during injury and regeneration
Platelet-derived growth factor-BB enhances MSC-mediated cardioprotection via suppression of miR-320 expression
Distinctive pharmacological differences between liver cancer cell lines HepG2 and Hep3B