Jul 2026· International Journal of Molecular Sciences· Vol 27, pp. 6598· 0 citations· 69 references
Medicine
Abstract
Butyrophilin-like 9 (BTNL9), a member of the immunoglobulin superfamily containing a bZIP-like domain, has a poorly defined role in cancer. Here, we identify BTNL9 as a non-canonical transcriptional regulator and investigate its function in non-small cell lung cancer (NSCLC). Coiled-coil prediction, native PAGE, and co-immunoprecipitation demonstrated BTNL9 homodimerization via its bZIP-like region, while subcellular fractionation and immunofluorescence confirmed its presence in both the nucleus and cytoplasm. Chromatin immunoprecipitation sequencing (ChIP-seq) analysis identified 9709 BTNL9-associated genomic regions, including sites proximal to transcription start sites, with enrichment of a cytosine-rich motif. Whether chromatin association reflects direct DNA binding or indirect co-regulatory interaction remains to be experimentally confirmed. Integrated transcriptomic and protein analyses revealed that BTNL9 overexpression represses genes involved in cell cycle progression and DNA replication while activating a subset of p53-associated pathways. Consistently, functional assays showed that increased BTNL9 expression induces cell cycle arrest, suppresses proliferation and clonogenicity, and inhibits tumor growth in xenograft models. In addition, cytotoxicity assays demonstrated enhanced sensitivity to bortezomib, with context-dependent effects on etoposide response. Analysis of public clinical datasets further showed that low BTNL9 expression is associated with advanced tumor stage, reduced remission rates, and poorer survival outcomes in NSCLC. These findings identify BTNL9 as a non-canonical tumor-suppressive transcriptional regulator with potential biomarker relevance in NSCLC.
The molecular characteristics and pathological mechanisms of RBM47 are summarized, the preclinical rationale for its potential utility as a biomarker and therapeutic node is discussed, and current research limitations, conflicting evidence, and translational bottlenecks are critically analyzed.
Shihua Huang, Qingsong Wang, Junhong Shen et al.· Frontiers in Immunology· 0 citations
These findings establish CTD-2566 J3.1 as a multifunctional enhancer-associated lncRNA (e-lncRNA) that orchestrates key oncogenic processes in luminal breast cancer and underscores the utility of three-dimensional culture systems to reveal context-specific lncRNA functions.
Stephanie I. Nuñez-Olvera, L. R. Hernández-Barrientos, Elia Martínez-Baeza et al.· International Journal of Bio...· 0 citations
This study uncovers a therapeutic vulnerable lncRNA-centric circuitry and provides compelling preclinical evidence for the development and application of a novel RNA targeting-LNP based therapy for treatment of myeloid leukemia.
Zhenggen Jin, Brendan D. Ma, Karen Y. T. Chan et al.· bioRxiv· 0 citations
Post-transcriptional regulation of gene expression has emerged as a fundamental determinant of cancer initiation, progression, and therapeutic response. Among the RNA-binding proteins (RBPs) involved in mRNA turnover and translational regulation, tristetraprolin (TTP), encoded by the ZFP36 gene, and “Human antigen R” (HuR), encoded by ELAVL1, represent two functionally antagonistic regulators of AU-rich element (ARE)-containing transcripts. TTP promotes the degradation of target mRNAs through recruitment of deadenylation and decay complexes, whereas HuR generally stabilizes and enhances the translation of overlapping mRNA subsets. Because many oncogenic, inflammatory, angiogenic, and metastasis-associated transcripts contain AREs within their 3′ untranslated regions, the balance between TTP-mediated decay and HuR-mediated stabilization critically influences tumor biology. Accumulating evidence demonstrates that loss of TTP expression or activity and cytoplasmic accumulation of HuR are recurrent features across multiple cancer types, including breast, colorectal, pancreatic, gastric, liver, ovarian, and lung cancers. Importantly, several studies indicate that the reciprocal interplay between these proteins establishes a post-transcriptional rheostat controlling cancer-associated RNA regulons. This review summarizes current knowledge regarding the molecular biology of TTP and HuR, emphasizing their opposing functions in mRNA metabolism and cancer progression. We discuss mechanisms regulating their expression, localization, phosphorylation, and RNA-binding activity; analyze cancer-specific evidence; and examine models in which both proteins are co-expressed or functionally interconnected. Finally, we evaluate therapeutic strategies aimed at restoring TTP function or inhibiting HuR activity and discuss future perspectives for targeting post-transcriptional regulatory networks in oncology.
R. Lotti, Tommaso Selmi, Alexis Grande et al.· Frontiers in Oncology· 0 citations