Ribosomes play pivotal roles in normal physiology, cellular responses to stimuli, and disease pathogenesis. Ribosome biogenesis is essential for cancer cell growth. Although several ribosomal proteins have been implicated in tumorigenesis, their functional roles in glioblastoma multiforme (GBM) remain poorly understood. Using a CRISPR-based screening system targeting RNA-binding proteins (RBPs) in three glioma cell lines (LN229, U118MG, and T98G), we identified essential RBPs for glioma growth and observed significant enrichment of ribosomal proteins. Analysis of TCGA datasets (LGG survival analysis via GEPIA ( n = 676) showed that elevated RPS5 correlated with poor overall survival ( p = 4 × 10 −6 ) and disease-free survival ( p = 6.9 × 10 −4 ). Functional experiments demonstrated that RPS5 silencing inhibited glioma malignant phenotypes both in vitro and in vivo. Mechanistically, RPS5 regulated translational processes in glioma cells, including start/stop codon recognition and cap-independent translation. Ribosome profiling ( n = 3) coupled with RNA sequencing revealed that RPS5 enhanced the translational efficiency of SLC4A7 and MAK16, driving GBM progression. Furthermore, bicistronic reporter assays with rigorous controls (promoter-less vector, splicing analysis, and Rluc knockdown) demonstrated that the SLC4A7 5′UTR possesses cap-independent translation activity enhanced by RPS5, whereas RPS5 regulates MAK16 translation without relying on this cap-independent element. Our data reveal a pro-oncogenic role of RPS5 in glioma progression and highlight its critical function in regulating translation. These findings provide new evidence supporting the central role of ribosome protein-induced translational dysregulation in cancer and offer innovative perspectives for developing molecular therapie s targeting GBM. • RPS5 acts as a translational regulator driving malignant progression in GBM. • RPS5 influences ribosome assembly and promotes overall cellular translation. • RPS5 promotes the translational efficiency of SLC4A7 and MAK16. • RPS5 expression is upregulated in glioma and significantly correlates with poor patient prognosis.
Wang et al. (Fri,) studied this question.