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Muratani, S.

Publications and source records attributed to Muratani, S..

2 recordsLinked to original sources

Functional inactivation of the telomerase chaperone TCAB1 primes cells for the activation of ALT in osteosarcoma

Activation of the alternative lengthening of telomeres (ALT) pathway accounts for cellular immortalization in 75% of pediatric osteosarcoma. ALT does not rely on a single enzyme but instead, catalyzes telomere elongation via homologous recombination. There has been steady progress in defining the mechanisms that regulate the ALT pathway. However, the spectrum of genetic mutations that underlie activation of ALT remains unclear. Osteosarcomas, like many cancers, frequently harbor inactivating mutations in the tumor suppressor gene TP53. However, instead of single nucleotide variants that lead to expression of mutant TP53 protein, osteosarcoma tumors often acquire unique structural variations within the first intron of the TP53 gene leading to complete gene inactivation. TP53 is located on chromosome 17p13.1 in a head-to-head orientation and partially overlapping with the gene WRAP53 (WD repeat containing antisense to TP53). WRAP53, also known as TCAB1, is an RNA chaperone that is an essential component of the telomerase holoenzyme. TCAB1 functions to facilitate trafficking of the telomerase RNA (hTR) within the nucleus to ensure assembly and localization of the telomerase enzyme to telomere ends to promote telomere elongation. Loss of TCAB1 function abolishes telomerase activity, driving progressive telomere attrition. Here, using whole-genome sequencing of osteosarcoma samples we identified SVs within the TP53 gene that not only compromise TP53, but also inactivate TCAB1. These TCAB1 SVs were prevalent in approximately 40% of ALT positive osteosarcoma tumors suggesting that functional inactivation of the telomerase holoenzyme may be an early and previously unrecognized event contributing to the activation of the ALT pathway.

cancer biology↗

Distinct malignant cell states and myeloid glutamate signaling associated with aggressive pancreatic neuroendocrine tumors

Pancreatic neuroendocrine tumors (PNET) are rare malignancies of the endocrine pancreas with diverse clinical outcomes. While some PNETs are indolent, others are aggressive and metastasize quickly. However, clinically-relevant molecular stratification for PNET to predict outcomes and guide therapeutic decision-making is limited. Thus, there is an urgent need to understand the molecular heterogeneity of PNETs to refine prognostication and discover novel therapeutic vulnerabilities. We performed single-nucleus RNA sequencing on resected primary and metastatic PNETs (n = 20), including two PNETs with neoadjuvant treatment. We inferred gene expression programs (GEPs) of malignant and non-malignant cells and investigated associations with clinical outcomes. Next, we inferred interactions in the tumor microenvironment (TME) and performed transwell assays for functional validation. Finally, we explored genomic and transcriptomic evolution in a unique case study of an untreated primary PNET with two asynchronous hepatic metastases. A malignant GEP enriched for neural/synaptic signaling genes was associated with worse overall survival, broad chromosomal loss of heterozygosity, and alternative lengthening of telomeres. Another malignant GEP enriched for VEGF signaling increased throughout metastatic progression in our case study. We found that macrophage-derived glutamate drives polarization towards an immunosuppressive phenotype and activates the MAPK/ERK pathway in malignant cells to increase migratory capacity. This study provides a detailed single-nucleus transcriptomic classification of malignant, stromal, and immune cell types and states in PNETs, their interactions in the TME, and associations with clinical outcomes. The refined molecular taxonomy of PNET may guide the development of more efficacious biomarkers and therapeutic strategies.

cancer biology↗