Search bioRxiv⌕ Search

Biology subjects

Cartolano, M.

Publications and source records attributed to Cartolano, M..

2 recordsLinked to original sources

A targetable dependency on nonsense-mediated decay for proteostasis and immune control in small cell lung cancer

Small cell lung cancer (SCLC) is among the deadliest cancers with excessive somatic alterations, expectedly resulting in immunogenic epitopes. However, patient benefit from immunotherapy is limited. We found abundant frameshift mutations in SCLC, regarded as highly immunogenic, counterbalanced by a hyperactive nonsense-mediated decay (NMD) pathway, responsible for frameshift-mRNA degradation. NMD activity correlated with tumor mutational burden (TMB) across cancers, suggesting that SCLC depends on NMD for cellular homeostasis and immune evasion. NMD inhibition impaired SCLC proliferation and induced ER stress-dependent apoptosis in a TMB-dependent manner, thereby enabling pharmacological inhibition in vivo which effectively controlled tumor growth. By integrating genome and transcriptome sequencing with MHC-I immunopeptidomics and functional in vitro and in vivo assays, we identified that NMD inhibition boosted neoantigen expression and presentation by tumor cells and increased T cell recognition, thus enhancing overall tumor immunogenicity and further improving immunotherapy efficacy in vivo. Our work shows that SCLC - as a TMBhigh cancer - relies on NMD for survival and immune escape, uncovering a novel TMB-dependent tractable vulnerability for this devastating disease.

cancer biology↗

Codon bias determines sorting of ion channel protein

The choice of codons can influence local translation kinetics during protein synthesis. The question of whether the modulation of polypeptide folding and binding to chaperons influences sorting of nascent membrane proteins remains unclear. Here, we use two similar K+ channels as model systems to examine the impact of codon choice on protein sorting. By monitoring transient expression of GFP tagged proteins in mammalian cells we find that targeting of one channel to the secretory pathway is insensitive to codon optimization. In contrast, sorting of the second channel to the mitochondria is very sensitive to codon choice. The protein with an identical amino acid sequence is sorted in a codon and cell cycle dependent manner either to mitochondria or the secretory pathway. The data establish that a gene with either rare or frequent codons serves together with a cell-state depending decoding mechanism as a secondary code for sorting intracellular proteins.

cell biology↗