Normal view
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Cell
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Extrachromosomal DNA replication and maintenance couple with DNA damage pathway in tumors
This study demonstrates that extrachromosomal DNA (ecDNA) replication induces DNA double-strand breaks and activates the DNA damage response (DDR). The DDR pathways, such as alt-NHEJ, are critical for ecDNA maintenance in tumor cells. Mechanistic insights into ecDNA replication and maintenance unveil a therapeutic approach for treating tumors harboring ecDNA.
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Omics in Hepatocellular
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Integrative multi-omics analysis reveals a novel subtype of hepatocellular carcinoma with biological and clinical relevance
Front Immunol. 2024 Dec 6;15:1517312. doi: 10.3389/fimmu.2024.1517312. eCollection 2024.ABSTRACTBACKGROUND: Hepatocellular carcinoma (HCC) is a highly heterogeneous tumor, and the development of accurate predictive models for prognosis and drug sensitivity remains challenging.METHODS: We integrated laboratory data and public cohorts to conduct a multi-omics analysis of HCC, which included bulk RNA sequencing, proteomic analysis, single-cell RNA sequencing (scRNA-seq), spatial transcriptomics seq
Integrative multi-omics analysis reveals a novel subtype of hepatocellular carcinoma with biological and clinical relevance
Front Immunol. 2024 Dec 6;15:1517312. doi: 10.3389/fimmu.2024.1517312. eCollection 2024.
ABSTRACT
BACKGROUND: Hepatocellular carcinoma (HCC) is a highly heterogeneous tumor, and the development of accurate predictive models for prognosis and drug sensitivity remains challenging.
METHODS: We integrated laboratory data and public cohorts to conduct a multi-omics analysis of HCC, which included bulk RNA sequencing, proteomic analysis, single-cell RNA sequencing (scRNA-seq), spatial transcriptomics sequencing (ST-seq), and genome sequencing. We constructed a tumor purity (TP) and tumor microenvironment (TME) prognostic risk model. Proteomic analysis validated the TP-TME-related signatures. Joint analysis of scRNA-seq and ST-seq revealed characteristic clusters associated with TP high-risk subtypes, and immunohistochemistry confirmed the expression of key genes. We conducted functional enrichment analysis, transcription factor activity inference, cell-cell interaction, drug efficacy analysis, and mutation information analysis to identify a novel subtype of HCC.
RESULTS: Our analyses constructed a robust HCC prognostic risk prediction model. The patients with TP-TME high-risk subtypes predominantly exhibit hypoxia and activation of the Wnt/beta-catenin, Notch, and TGF-beta signaling pathways. Furthermore, we identified a novel subtype, XPO1+Epithelial. This subtype expresses signatures of the TP risk subtype and aligns with the biological behavior of high-risk patients. Additional analyses revealed that XPO1+Epithelial is influenced primarily by fibroblasts via ligand-receptor interactions, such as FN1-(ITGAV+ITGB1), and constitute a significant component of the TP-TME subtype. Moreover, XPO1+Epithelial interact with monocytes/macrophages, T/NK cells, and endothelial cells through ligand-receptor pairs, including MIF-(CD74+CXCR4), MIF-(CD74+CD44), and VEGFA-VEGFR1R2, respectively, thereby promoting the recruitment of immune-suppressive cells and angiogenesis. The ST-seq cohort treated with Tyrosine Kinase Inhibitors (TKIs) and Programmed Cell Death Protein 1 (PD-1) presented elevated levels of TP and TME risk subtype signature genes, as well as XPO1+Epithelial, T-cell, and endothelial cell infiltration in the treatment response group. Drug sensitivity analyses indicated that TP-TME high-risk subtypes, including sorafenib and pembrolizumab, were associated with sensitivity to multiple drugs. Further exploratory analyses revealed that CTLA4, PDCD1, and the cancer antigens MSLN, MUC1, EPCAM, and PROM1 presented significantly increase expression levels in the high-risk subtype group.
CONCLUSIONS: This study constructed a robust prognostic model for HCC and identified novel subgroups at the single-cell level, potentially assisting in the assessment of prognostic risk for HCC patients and facilitating personalized drug therapy.
PMID:39712016 | PMC:PMC11659151 | DOI:10.3389/fimmu.2024.1517312
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Cell
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A multi-tissue metabolome atlas of primate pregnancy
A multi-tissue metabolome atlas of 23 maternal tissues from pregnant monkeys revealed dynamic metabolic coupling, core pathways, and a multitude of pregnancy-adaptive metabolites during normal primate pregnancy, with implications for female health.
A multi-tissue metabolome atlas of primate pregnancy
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Nature Biotechnology - Issue - nature.com science feeds
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Mosaic integration and knowledge transfer of single-cell multimodal data with MIDAS
Nature Biotechnology, Published online: 23 January 2024; doi:10.1038/s41587-023-02040-ySingle-cell, multiomic datasets are integrated using dimensionality reduction, imputation and batch correction.
Mosaic integration and knowledge transfer of single-cell multimodal data with MIDAS
Nature Biotechnology, Published online: 23 January 2024; doi:10.1038/s41587-023-02040-y
Single-cell, multiomic datasets are integrated using dimensionality reduction, imputation and batch correction.-
Nature - Issue - nature.com science feeds
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Scientific discovery in the age of artificial intelligence
Nature, Published online: 02 August 2023; doi:10.1038/s41586-023-06221-2The advances in artificial intelligence over the past decade are examined, with a discussion on how artificial intelligence systems can aid the scientific process and the central issues that remain despite advances.
Scientific discovery in the age of artificial intelligence
Nature, Published online: 02 August 2023; doi:10.1038/s41586-023-06221-2
The advances in artificial intelligence over the past decade are examined, with a discussion on how artificial intelligence systems can aid the scientific process and the central issues that remain despite advances.-
Nature Biotechnology - Issue - nature.com science feeds
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De novo detection of somatic mutations in high-throughput single-cell profiling data sets
Nature Biotechnology, Published online: 06 July 2023; doi:10.1038/s41587-023-01863-zSComatic identifies somatic mutations from scRNA-seq and scATAC data without a matched reference sample.
De novo detection of somatic mutations in high-throughput single-cell profiling data sets
Nature Biotechnology, Published online: 06 July 2023; doi:10.1038/s41587-023-01863-z
SComatic identifies somatic mutations from scRNA-seq and scATAC data without a matched reference sample.