Background Bladder and kidney cancer burden rises globally, with environmental toxicants driving their progression. Methods We integrated global epidemiological analysis, single-cell transcriptomics, cell-cell communication analysis, epithelial subclustering, pseudotime inference, toxicological target prediction, survival modeling, cross-cohort validation, single-cell virtual knockout, spatial transcriptomic deconvolution, molecular docking/dynamics, CETSA, and in vitro assays to define a shared molecular interface linking triphenyl phosphate (TPP) to bladder and kidney cancer. Results Both malignancies exhibited age- and SDI-associated burden patterns. Single-cell profiling identified conserved epithelial, stromal, and immune ecosystems, with tumor epithelial cells occupying central positions in intercellular communication networks. Epithelial subclustering revealed a reproducible EMT-high subcluster 4 in both cancers, which localized to a terminal-like pseudotime state and was associated with poor survival. Predicted TPP targets intersected with subcluster 4 signatures and converged on extracellular matrix organization, adhesion, and leukocyte transendothelial migration pathways. Integrative survival modeling and multi-cohort validation identified MMP9 as a robust prognostic candidate associated with tumor progression. Importantly, single-cell virtual knockout of MMP9 revealed convergent remodeling of proliferative, inflammatory, hypoxia-related, and stress-response programs across bladder and renal cancer epithelial cells, highlighting conserved regulatory circuitry. Spatial transcriptomics further localized MMP9 to macrophage- and fibroblast-enriched niches in both tumor types. Structural modeling and CETSA supported an interaction between TPP and MMP9. Experimentally, TPP upregulated MMP9 at both mRNA and protein levels in T24 and 786-O cells; higher concentrations reduced viability, whereas lower concentrations enhanced migration and clonogenic growth. Conclusions TPP promotes the malignant phenotypes of bladder and kidney cancer via MMP9, which is validated by virtual knockout and in vitro experiments.
Hao Wang, Hongquan Liu, Qian Li et al.· Clinical and Experimental Me...· 0 citations
BACKGROUND
Clear cell renal cell carcinoma (ccRCC) is characterized by intratumoral heterogeneity and a complex immune microenvironment, which contribute to disease progression and therapeutic resistance. Although ribosomal proteins have been implicated in tumor biology, the clinical relevance, microenvironmental impact, and biological role of ribosomal protein lateral stalk subunit P0 (RPLP0) in ccRCC remain unclear.
METHODS
We performed a comprehensive investigation integrating bulk transcriptomics (TCGA, GEO, ICGC, ArrayExpress), proteomics (CPTAC, HPA), single-cell RNA sequencing, and spatial transcriptomics to characterize RPLP0 expression, prognostic value, immunological relevance, and spatial distribution in ccRCC. The biological functions of RPLP0 were validated experimentally using clinical tissues (qRT-PCR, immunofluorescence) and ccRCC cell lines. Proliferation, migration, and invasion were assessed via CCK-8, wound healing, and Transwell assays following siRNA-mediated knockdown, with epithelial-mesenchymal transition (EMT) markers evaluated by Western blot.
RESULTS
RPLP0 was ubiquitously expressed in normal tissues but significantly upregulated in ccRCC at both the mRNA and protein levels, which was validated in clinical specimens and cell lines. High RPLP0 expression was associated with advanced tumor stage, metastasis, and poor clinical outcomes, and was identified as an independent prognostic factor. Functional enrichment analyses revealed that RPLP0 was closely linked to ribosome-related processes, DNA damage response, cell cycle regulation, and epithelial-mesenchymal transition. Immune analyses demonstrated that elevated RPLP0 expression correlated with M2 macrophages, as well as with enhanced expression of immune checkpoint and antigen presentation-related genes. Single-cell and spatial transcriptomic analyses revealed the preferential enrichment of RPLP0 in the malignant compartment, with spatial transcriptomics further demonstrating a positive correlation with macrophages. Drug sensitivity analyses based on pRRophetic predictions showed that RPLP0-high tumors were associated with higher estimated IC50 values for several targeted therapies, suggesting a potential association between elevated RPLP0 expression and predicted reduced drug sensitivity. Mechanistically, RPLP0 knockdown in vitro significantly inhibited ccRCC cell proliferation, migration, and invasion, and reversed EMT progression by downregulating mesenchymal markers and upregulating the epithelial marker.
CONCLUSIONS
These findings indicate that RPLP0 is aberrantly upregulated in ccRCC, promoting tumor progression, migration, and invasion by facilitating the EMT process. Furthermore, its close association with immune activation and spatial heterogeneity highlights its potential as a robust prognostic biomarker and a regulator of tumor-microenvironment interactions.
Bin Wang, Hongquan Liu, Yicheng Guo et al.· BMC Cancer· 0 citations