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Qiang Wu

Publications and source records attributed to Qiang Wu.

2 recordsLinked to original sources

Evaluation of a rapid-release mitomycin C-loaded porous microcapsule formulation (MitoCap) in a human urothelium-tumour model.

Intravesical mitomycin C (MMC) is limited by short bladder exposure and incomplete delivery to residual tumour tissue. We developed MitoCap, a porous MMC-loaded microcapsule formulation, and evaluated its formulation properties and antitumour performance in a human three-dimensional urothelium-tumour model (3D-UHU-TU). Microcapsules were produced by electrohydrodynamic atomisation using 2% or 5% poly(lactic-co-glycolic acid) (PLGA). Compared with 5% PLGA, the 2% formulation generated smaller microcapsules (2.90 ± 0.30 versus 4.03 ± 0.81 µm), greater apparent surface porosity and faster MMC release, with approximately 60% released within 15 min. The 2% formulation achieved an MMC loading capacity of 4.99 ± 0.16% (w/w), corresponding to 95.78 ± 3.09% recovery relative to the theoretical loading, and was selected for biological evaluation. The 3D-UHU-TU model integrates RT112 or T24 bladder cancer spheroids into a differentiated, urine-tolerant human urothelium, enabling tumour and urothelial responses to be assessed within the same construct. FITC-loaded microcapsules increased fluorescent model cargo signal within tumour regions compared with equivalent free FITC. Following 1 h apical exposure and 72 h recovery, MitoCap increased tumour-associated cleaved caspase-3 and tumour cell death relative to dose-matched free MMC. Tumour cell death increased from 62.3 ± 7.9% to 94.2 ± 1.3% in RT112 models and from 36.6 ± 4.7% to 52.8 ± 4.8% in T24 models, without increasing urothelial cell death relative to dose-matched free MMC. These findings support MitoCap as a rapid-release intravesical MMC formulation and demonstrate the value of compartment-resolved human urothelium-tumour models for evaluating local drug delivery.

Bladder cancer

Stromal Hedgehog Signaling Drives Segment-Specific Malignant Transformation of Gastrointestinal Stem Cells by Producing Bone Morphogenetic Protein Antagonists.

BACKGROUND & AIMS: Hedgehog signaling plays a complex role in epithelial-stromal interactions, but its effects on gastrointestinal stem cells mediated by heterogeneous stromal cell populations remain incompletely defined. Here, we investigate how stromal Hedgehog signaling regulates gastric stem cells and tumorigenesis in a segment-specific manner. METHODS: We genetically activated Hedgehog signaling in distinct stromal cell lineages using Col1a2-, Pdgfra-, Gli1-, Acta2-, and Prrx1-CreERT mouse lines, combined with lineage tracing, RNA sequencing, chromatin immunoprecipitation-quantitative polymerase chain reaction, and pharmacologic interventions. Human gastric cancer data from The Cancer Genome Atlas were also analyzed. RESULTS: We show that genetic activation of Hedgehog signaling in stromal cells marked by Col1a2, Pdgfra, or Gli1, but not by Acta2, induces tumorigenesis in the stomach and gastroesophageal junction, but not in the small or large intestine. Hedgehog signaling increases the expression of multiple bone morphogenetic protein antagonists in gastric but not colonic stromal cells, via Gli1-mediated transcription. These bone morphogenetic protein antagonists, in turn, activate Wnt/β-catenin signaling in gastric stem cells, driving their proliferation and initiating gastric cancer expressing CD44 and Sox9, but not Lgr5. Activating bone morphogenetic protein or inhibiting Wnt signaling blocks tumor initiation. Analysis of patient data from The Cancer Genome Atlas reveals elevated Hedgehog signaling in gastric cancers, which correlates with suppressed bone morphogenetic protein signaling. CONCLUSIONS: These findings uncover a gastrointestinal segment-specific oncogenic role for Hedgehog signaling in Col1a2+Acta2- stromal cells, mediated through the bone morphogenetic protein-Wnt-β-catenin axis.

BMP Antagonists