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XC
Verified CAS / Academic Author2 Decoded Studies

Prof. XIN Chao

Tongji Hospital, School of Life Sciences and Technology, Tongji University

Co-Affiliations:Southwest University of Science and Technology

Research Publications & English Decoded Briefs

Showing 2 publications
Acta Biochimica et Biophysica Sinica2025DOI: 10.3724/abbs.2025043

D-mannose suppresses the angiogenesis and progression of colorectal cancer

Angiogenesis is an important factor influencing the development of solid tumors, and vascular endothelial growth factor receptor-2 (VEGFR2) is a central regulator of angiogenesis. Antibodies and inhibitors against VEGFR2 have been widely used in various malignancies. However, the regulatory mechanism of VEGFR2 has not been fully clarified. Here, we show that D-mannose can significantly inhibit angiogenesis and tumor growth by degrading VEGFR2. Specifically, D-mannose inactivates GSK3β by promoting the phosphorylation of GSK3β at Ser9, enhances the nuclear translocation of TFE3, and promotes lysosomal biogenesis, thereby increasing the lysosome-mediated degradation of VEGFR2. Thus, D-mannose significantly inhibits the proliferation, migration, and capillary formation of human umbilical vein endothelial cells (HUVECs) in vitro. Oral administration of D-mannose dramatically inhibits angiogenesis and tumor growth in mice. Our findings reveal a previously unrecognized anti-tumor mechanism of D-mannose by destabilizing VEGFR2 and provide a new strategy for the clinical treatment of colorectal cancer (CRC).

Chinese Traditional and Herbal Drugs2026DOI: 10.7501/j.issn.0253-2670.2026.15.20261507

Preparation and Cytopharmacology Evaluation of Self-Assembled Saikosaponin D-Cannabidiol Nanoparticles

This study reports the fabrication and in vitro evaluation of carrier-free self-assembled nanoparticles (SSD-CBD) composed of saikosaponin D (SSD) and cannabidiol (CBD) at a 3:1 mass ratio via nano co-precipitation. Assembly mechanisms were probed using XPS, FTIR, and 1H-1H NOESY, revealing hydrogen bonding and hydrophobic interactions as principal driving forces. Physicochemical characterization by TEM and DLS confirmed a stable nanoscale architecture. The formulation exhibited pH-responsive release, preferentially discharging payload in tumor microenvironment (pH 6.8) while retaining stability at physiological pH 7.4. In HepG2 hepatocellular carcinoma cells, SSD and CBD displayed synergy with a combination index (CI) of 0.79. MTT assays, Annexin V-FITC/PI flow cytometry, and caspase activity measurements demonstrated that SSD-CBD nanoparticles induce apoptosis via the mitochondrial pathway. The carrier-free strategy addresses CBD's poor aqueous solubility and instability, simultaneously improving delivery efficiency and enabling precise synergistic drug co-administration. These findings provide an experimental foundation for intelligent nanomedicine development based on SSD. However, in vivo pharmacokinetics, tissue distribution, tumor accumulation, and potential hepatotoxicity of SSD in nanoformulation remain unresolved. Future work should focus on surface engineering (e.g., PEGylation or targeting ligand modification) to enhance stability and tumor targeting, integration of immunomodulatory components, and scalable GMP-compliant manufacturing with comprehensive quality control.