Aberrant alternative splicing is increasingly recognized as a fundamental driver of cancer initiation and progression. The splicing factor 3b (SF3b) complex, an essential component of the U2 small nuclear ribonucleoprotein (snRNP), plays a pivotal role in branch point sequence (BPS) recognition and in coordinating spliceosome assembly and activation. Recent advances in cryo-electron microscopy (cryo-EM) have revealed the structural plasticity of the SF3b complex, highlighting its dynamic transition between open and closed conformations that stabilize pre-mRNA substrates during the splicing cycle. Genetic and functional perturbations of SF3b, particularly recurrent mutations in its core subunit SF3B1, are frequently observed in human malignancies, most prominently in myelodysplastic syndromes (MDS) and chronic lymphocytic leukemia (CLL). These alterations reshape splice site selection, generate aberrant transcript isoforms, and reprogram cancer-relevant signaling pathways. In this review, we integrate current knowledge of the molecular architecture and regulatory dynamics of the SF3b complex with its emerging roles in cancer-associated splicing programs. We discuss the consequences of SF3b mutations and non-mutational dysregulation on transcriptome remodeling, genome stability, and tumor cell fitness, as well as the contribution of post-translational modifications of SF3b components to splicing control. Furthermore, we critically evaluate recent progress in targeting the SF3b complex, focusing on the structural basis of SF3b inhibitors, insights gained from preclinical studies, and lessons learned from early-phase clinical trials. Collectively, this review positions the SF3b complex as a disease-modifying hub at the intersection of RNA splicing and cancer biology, and highlights the opportunities and challenges associated with therapeutically targeting spliceosome components in oncology.
Shulin Li, Li-Tong Shang, Jiayi Yang et al.· Blood Advances· 0 citations
Chimeric antigen receptor (CAR)-T cell therapy has achieved remarkable success in B-cell malignancies, but its application in acute myeloid leukemia (AML) and renal cell carcinoma (RCC) remains challenging due to the lack of ideal target antigens. CD70 is highly expressed on AML and RCC tumor cells, while its expression in normal tissues is largely restricted to activated lymphocytes, making it a promising immunotherapeutic target. However, CD70 expression on activated T cells can trigger fratricide in CD70-targeted CAR-T cells, posing a major challenge for their preparation and efficacy. Using an analog of the clinical-stage anti-CD70 antibody ARGX-110 as a reference, we screened a phage display library from immunized mice and identified high-affinity anti-CD70 antibodies, which were then used to construct a panel of second-generation CARs. Functional characterization identified a lead candidate, A174-CAR-T, with high CAR expression, strong in vitro antitumor activity, and low fratricide. We further humanized its single-chain variable fragment to generate A174-hu1-CAR. Compared with the parental construct, A174-hu1-CAR-T cells exhibited enhanced expansion and markedly reduced surface expression of CD70, consistent with improved cis-masking (i.e., surface shielding on the same cell). Molecular docking and surface electrostatic potential analyses suggested that humanization optimized the scFv-CD70 binding interface, which together with increased CAR surface expression contributed to the enhanced masking and reduced fratricide. Functionally, A174-hu1-CAR-T cells maintained potent cytotoxicity and showed enrichment of proliferative and central memory T-cell subsets. In xenograft models, A174-hu1-CAR-T infusion demonstrated potent antitumor efficacy against both AML and RCC, with a favorable safety profile. Overall, we developed a humanized CD70-targeted CAR-T cell therapy, A174-hu1-CAR-T, with reduced fratricide and potent antitumor activity, providing a preclinical foundation to support further translational development.
Meng-Jia Zhang, Zhihao Wang, Cheng Gao et al.· International Immunopharmaco...· 0 citations
Gastric cancer (GC) is a globally lethal malignancy, with invasion and metastasis driving treatment failure and poor prognosis. MX dynamin like GTPase 1 (MX1) shows tumor-specific functional heterogeneity, while its expression, biological functions and molecular mechanisms in GC remain unclear. Here, we explored MX1's clinical significance and its regulatory mechanism in GC cell migration. We integrated public databases and institutional paired clinical samples for bioinformatics analysis of MX1's correlation with clinical outcomes, and verified its pro-migratory effect via Transwell and wound healing assays. Co-immunoprecipitation/mass spectrometry (Co-IP/MS), immunofluorescence and ubiquitination assays were used to identify MX1-interacting proteins and dissect the underlying mechanism, and the Genomics of Drug Sensitivity in Cancer database was applied for chemosensitivity analysis. MX1 was aberrantly upregulated in GC tissues and served as an independent prognostic biomarker, with high expression associated with shortened overall, first-progression and post-progression survival. MX1 promoted GC cell migration and epithelial-mesenchymal transition pathway enrichment, and directly bound Annexin A2 (ANXA2) in the cytoplasm; both were co-enriched in endothelial and epithelial cells by single-cell sequencing. MX1 dose-dependently upregulated ANXA2 protein (without affecting its mRNA) by inhibiting NEDD4L/TRIM65-mediated ANXA2 ubiquitination and degradation, enhancing ANXA2 stability. Additionally, high MX1 expression correlated with increased paclitaxel sensitivity in GC patients based on database analysis, and CCK-8 assays confirmed that MX1 overexpression significantly reduced the paclitaxel IC50 in gastric cancer cells, supporting its potential as a predictive biomarker for paclitaxel efficacy. This study demonstrates that MX1 promotes GC cell migration by suppressing ANXA2 ubiquitination and degradation, highlighting the critical role of the MX1-ANXA2 axis in GC progression. These findings provide novel molecular targets and theoretical support for GC prognostic evaluation, individualized chemotherapy and targeted therapy.
Hang Yang, Huihan Ai, Zikun Wu et al.· Biochimica et Biophysica Act...· 0 citations