Area of research
Molecular Biology · Global and Planetary Change
Research interest
Research interests include Cell biology, Dental pulp stem cells, Stem cell, Neural stem cell, Biology, and China.
Compound flood effects, challenges and solutions: Lessons toward climate-resilient Chinese coastal cities
The rate of change in clinical indicators can predict the progression of hepatitis B virus-related acute-on-chronic preliver failure
Urban flood risks and emerging challenges in a Chinese delta: The case of the Pearl River Delta
Polydopamine functionalized mesoporous silica as ROS-sensitive drug delivery vehicles for periodontitis treatment by modulating macrophage polarization
Amplification-Free and Mix-and-Read Analysis of Multiplexed MicroRNAs on a Single Plasmonic Microbead
Combination of Decitabine and a Modified Regimen of Cisplatin, Cytarabine and Dexamethasone: A Potential Salvage Regimen for Relapsed or Refractory Diffuse Large B-Cell Lymphoma After Second-Line Treatment Failure
Basic fibroblast growth factor promotes human dental pulp stem cells cultured in 3D porous chitosan scaffolds to neural differentiation
miR-140-5p regulates the odontoblastic differentiation of dental pulp stem cells via the Wnt1/β-catenin signaling pathway
Wedelolactone Enhances Odontoblast Differentiation by Promoting Wnt/β-Catenin Signaling Pathway and Suppressing NF-κB Signaling Pathway
Chitosan scaffolds induce human dental pulp stem cells to neural differentiation: potential roles for spinal cord injury therapy
JAB1 accelerates odontogenic differentiation of dental pulp stem cells
AGS3 is involved in TNF-α medicated osteogenic differentiation of human dental pulp stem cells
RAC1 regulate tumor necrosis factor‐α‐mediated impaired osteogenic differentiation of dental pulp stem cells
Insulin‐like growth factor 1 can promote proliferation and osteogenic differentiation of human dental pulp stem cells via m<scp>TOR</scp> pathway
Repeated lipopolysaccharide stimulation promotes cellular senescence in human dental pulp stem cells (DPSCs)
3D Porous Chitosan Scaffolds Suit Survival and Neural Differentiation of Dental Pulp Stem Cells
p16INK4A mediates age-related changes in mesenchymal stem cells derived from human dental pulp through the DNA damage and stress response
IGF-1 Promotes Brn-4 Expression and Neuronal Differentiation of Neural Stem Cells via the PI3K/Akt Pathway