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An oxidative stress - and immunotherapy-related six-gene signature defines immune subtypes and predicts prognosis and immunotherapy response in hepatocellular carcinoma.

BACKGROUND: Oxidative stress and the tumor immune microenvironment jointly shape hepatocellular carcinoma (HCC) progression and response to immunotherapy, yet integrated biomarkers linking these processes are lacking. METHODS: Transcriptomic and clinical data from The Cancer Genome Atlas (TCGA) and Gene Expression Omnibus (GEO) datasets were used to identify oxidative stress- and immunotherapyrelated differentially expressed genes (OSIRDEGs). Functional enrichment, weighted gene co-expression network analysis (WGCNA) and LASSO-Cox regression were used to construct a prognostic signature. Consensus clustering, TIDE, CIBERSORT and ssGSEA characterized immune phenotypes. Somatic mutation, copy-number and drug-response data were integrated to assess genomic alterations and drug sensitivity. Expression of model genes was validated by qRT-PCR and western blotting in HCC cell lines. RESULTS: We identified 24 OSIRDEGs enriched in cell-cycle and mitotic pathways. WGCNA intersection yielded 18 module genes, from which a six-gene signature (BUB1B, CDKN2A, CENPE, HMMR, PTTG1, SPP1) was derived. The signature robustly stratified patients into high- and low-risk groups with significantly different progression-free and disease-free survival in both TCGA-LIHC and GSE14520. Based on signature expression, two molecular subtypes were defined, exhibiting distinct survival, immune landscapes and predicted immunotherapy responsiveness. Model genes harbored recurrent alterations and showed significant correlations with anticancer agents. All six genes were upregulated at mRNA and protein levels in metastatic HCC cell lines versus normal hepatocytes. CONCLUSIONS: We systematically explored the landscape of OSIRDEGs in HCC, and proposed a validated six-gene signature that refines prognostic stratification, delineates immunerelevant HCC subtypes and highlights candidate biomarkers for therapeutic selection and mechanistic investigation.

Humans

Decoding the PTTG family's contribution to LUAD pathogenesis: a comprehensive study on expression, epigenetics, and therapeutic interventions.

BACKGROUND: Lung adenocarcinoma (LUAD) stands as a prevalent malignancy, yet its pathology remains incompletely comprehended. METHODS: In this comprehensive study, we explored the roles of the pituitary tumor-transforming gene (PTTG) family, including PTTG1, PTTG2, and the pseudogene PTTG3P in lung adenocarcinoma (LUAD). Employing a multi-faceted approach, we conducted in-depth analyses using clinical samples and expression datasets. RESULTS: Our findings revealed a significant up-regulation of PTTG family genes in LUAD cell lines and tissue samples compared to adjacent normal controls, suggesting their potential as diagnostic biomarkers. Through promoter methylation and mutational analyses, we uncovered regulatory mechanisms influencing PTTG gene expression. The exploration of the PTTG family's impact on LUAD patient survival demonstrated their association with adverse outcomes, emphasizing their potential prognostic relevance. Moreover, functional assays demonstrated that the knockdown of PTTG1 and PTTG2 genes resulted in the reduction of cell proliferation, colony formation, and cell migration abilities in A549 and H1975 LUAD cells. Furthermore, our investigation extended to therapeutic avenues, where we identified Calcitriol as a potential drug within the DrugBank database to down-regulate PTTG genes. Molecular docking analyses provided insights into the strong interaction between Calcitriol and PTTG1/PTTG2 proteins, laying the groundwork for further exploration of Calcitriol in LUAD treatment. CONCLUSION: In conclusion, this study contributes a comprehensive understanding of the PTTG family's involvement in LUAD, shedding light on their diagnostic, prognostic, and therapeutic implications.

Humans

Pituitary tumor-transforming gene 1 and endocrine cancers: an up-to-date review through history, current insights and future perspectives.

Pituitary tumor-transforming gene 1 (PTTG1), discovered in 1997 by Pei and Melmed, takes part in cellular replication, cell cycle control, DNA repair mechanisms, organogenesis, metabolism regulation, cellular transformation, and senescence. Its biological actions include protein-protein interactions, modulation of gene transcription, and other than intracellular and autocrine mechanisms, even paracrine activities. For the reasons mentioned above, PTTG1 stands out as a multifaceted regulator of cancer biology; it is involved in genomic and chromosomal instability, local invasiveness, neo-lymphangiogenesis, and metastatic spreading. In solid neoplasms, endocrine neoplasms, although deemed rare, have experienced a significant increase in diagnostic incidence in recent years. Endocrine cancers are still a major challenge in healthcare and research since several questions remain unanswered, even though researchers have made considerable efforts to uncover their causes. Twenty-seven years have passed since PTTG1's discovery, and several works have been published. However, only the tip of the iceberg has been unveiled. Herein, we review current knowledge of PTTG1's action in endocrine cancers, such as pituitary, thyroid, testicular, adrenal, pancreatic, and ovarian.

Humans