CD105+CAF-derived exosomes CircAMPK1 promotes pancreatic cancer progression by activating autophagy
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Shiyu Chen | Xiaowu Li | Zhiwei He | Xiushen Li | Kun Cai | Hui Liu
[1] Wentao Wang,et al. New insight into circRNAs: characterization, strategies, and biomedical applications , 2023, Experimental Hematology & Oncology.
[2] Jun Yu Li,et al. Cancer-associated fibroblast-related prognostic signature predicts prognosis and immunotherapy response in pancreatic adenocarcinoma based on single-cell and bulk RNA-sequencing , 2023, Scientific reports.
[3] A. Farooqi,et al. Unraveling the Complex Web of Mechanistic Regulation of Versatile NEDD4 Family by Non-Coding RNAs in Carcinogenesis and Metastasis: From Cell Culture Studies to Animal Models , 2023, Cancers.
[4] Qifeng Yang,et al. Cancer-associated fibroblasts facilitate breast cancer progression through exosomal circTBPL1-mediated intercellular communication , 2023, Cell death & disease.
[5] Fan Zhang,et al. Exosomal circRNA: emerging insights into cancer progression and clinical application potential , 2023, Journal of Hematology & Oncology.
[6] Chuan Liu,et al. ANXA6/TRPV2 axis promotes lymphatic metastasis in head and neck squamous cell carcinoma by inducing autophagy , 2023, Experimental Hematology & Oncology.
[7] Wen-Zhou Ding,et al. Hypoxia-associated circPRDM4 promotes immune escape via HIF-1α regulation of PD-L1 in hepatocellular carcinoma , 2023, Experimental Hematology & Oncology.
[8] A. Jemal,et al. Cancer statistics, 2023 , 2023, CA: a cancer journal for clinicians.
[9] Md. Asiful Islam,et al. Emerging role of exosomes in cancer progression and tumor microenvironment remodeling , 2022, Journal of Hematology & Oncology.
[10] Zhiwei He,et al. Exosome-derived FGD5-AS1 promotes tumor-associated macrophage M2 polarization-mediated pancreatic cancer cell proliferation and metastasis. , 2022, Cancer letters.
[11] A. Heguy,et al. Single-cell RNA sequencing reveals the effects of chemotherapy on human pancreatic adenocarcinoma and its tumor microenvironment , 2022, bioRxiv.
[12] K. Pradhan,et al. Innate immune mediator, Interleukin-1 receptor accessory protein (IL1RAP), is expressed and pro-tumorigenic in pancreatic cancer , 2022, Journal of Hematology & Oncology.
[13] Minmin Shi,et al. LncRNA-PACERR induces pro-tumour macrophages via interacting with miR-671-3p and m6A-reader IGF2BP2 in pancreatic ductal adenocarcinoma , 2022, Journal of Hematology & Oncology.
[14] H. Long,et al. Heterogeneity of the tumor immune microenvironment and its clinical relevance , 2022, Experimental Hematology & Oncology.
[15] N. Gavara,et al. Disruption of pancreatic stellate cell myofibroblast phenotype promotes pancreatic tumor invasion , 2022, Cell reports.
[16] M. Samuel,et al. Differentiation of the tumor microenvironment: are CAFs the Organizer? , 2021, Trends in cell biology.
[17] Yanjie Wei,et al. A novel protein AXIN1-295aa encoded by circAXIN1 activates the Wnt/β-catenin signaling pathway to promote gastric cancer progression , 2021, Molecular Cancer.
[18] Kefei Yuan,et al. IL‐6–induced cGGNBP2 encodes a protein to promote cell growth and metastasis in intrahepatic cholangiocarcinoma , 2021, Hepatology.
[19] S. Cai,et al. p113 isoform encoded by CUX1 circular RNA drives tumor progression via facilitating ZRF1/BRD4 transactivation , 2021, Molecular Cancer.
[20] R. Kalluri,et al. Clinical and therapeutic relevance of cancer-associated fibroblasts , 2021, Nature Reviews Clinical Oncology.
[21] Yuli Lin,et al. CAFs shape myeloid‐derived suppressor cells to promote stemness of intrahepatic cholangiocarcinoma through 5‐lipoxygenase , 2021, Hepatology.
[22] Y. She,et al. A novel protein encoded by circASK1 ameliorates gefitinib resistance in lung adenocarcinoma by competitively activating ASK1-dependent apoptosis. , 2021, Cancer letters.
[23] M. Mandal,et al. The transformation of cancer-associated fibroblasts: Current perspectives on the role of TGF-β in CAF mediated tumor progression and therapeutic resistance. , 2021, Cancer letters.
[24] C. Jørgensen,et al. Single-cell analysis defines a pancreatic fibroblast lineage that supports anti-tumor immunity , 2021, Cancer cell.
[25] C. Lyssiotis,et al. The biological underpinnings of therapeutic resistance in pancreatic cancer , 2021, Genes & development.
[26] P. Blanchette,et al. AMPK-dependent phosphorylation is required for transcriptional activation of TFEB and TFE3 , 2021, Autophagy.
[27] Bo Li,et al. A novel protein encoded by circular SMO RNA is essential for Hedgehog signaling activation and glioblastoma tumorigenicity , 2021, Genome Biology.
[28] Mark R. Marten,et al. Guidelines for the use and interpretation of assays for monitoring autophagy (4th edition)1 , 2021, Autophagy.
[29] Rui Zhang,et al. LncRNA PVT1 promotes gemcitabine resistance of pancreatic cancer via activating Wnt/β-catenin and autophagy pathway through modulating the miR-619-5p/Pygo2 and miR-619-5p/ATG14 axes , 2020, Molecular Cancer.
[30] E. Jaffee,et al. The tumour microenvironment in pancreatic cancer — clinical challenges and opportunities , 2020, Nature Reviews Clinical Oncology.
[31] A. Maitra,et al. Pancreatic cancer stroma: an update on therapeutic targeting strategies , 2020, Nature Reviews Gastroenterology & Hepatology.
[32] Ling-Ling Chen. The expanding regulatory mechanisms and cellular functions of circular RNAs , 2020, Nature Reviews Molecular Cell Biology.
[33] Yan Wang,et al. The bioinformatics toolbox for circRNA discovery and analysis , 2020, Briefings Bioinform..
[34] Lianhong Li,et al. Exosomal transfer of miR-501 confers doxorubicin resistance and tumorigenesis via targeting of BLID in gastric cancer. , 2019, Cancer letters.
[35] J. Kjems,et al. The biogenesis, biology and characterization of circular RNAs , 2019, Nature Reviews Genetics.
[36] Martin J. Aryee,et al. Stromal Microenvironment Shapes the Intratumoral Architecture of Pancreatic Cancer , 2019, Cell.
[37] Masahide Takahashi,et al. Cancer-associated fibroblasts in gastrointestinal cancer , 2019, Nature Reviews Gastroenterology & Hepatology.
[38] Alain Bergeron,et al. Widespread and Functional RNA Circularization in Localized Prostate Cancer , 2019, Cell.
[39] P. Validire,et al. The clinical role of the TME in solid cancer , 2018, British Journal of Cancer.
[40] Jingtao Zhang,et al. The decade of exosomal long RNA species: an emerging cancer antagonist , 2018, Molecular cancer.
[41] Liu Ming,et al. A novel protein encoded by the circular form of the SHPRH gene suppresses glioma tumorigenesis , 2018, Oncogene.
[42] Suyun Huang,et al. Novel Role of FBXW7 Circular RNA in Repressing Glioma Tumorigenesis , 2017, Journal of the National Cancer Institute.
[43] K. Taniuchi,et al. CCDC88A, a prognostic factor for human pancreatic cancers, promotes the motility and invasiveness of pancreatic cancer cells , 2016, Journal of Experimental & Clinical Cancer Research.
[44] R. Hill,et al. CANCER-ASSOCIATED FIBROBLAST EXOSOMES REGULATE SURVIVAL AND PROLIFERATION OF PANCREATIC CANCER CELLS , 2016, Oncogene.
[45] L. Cantley,et al. Pancreatic stellate cells support tumour metabolism through autophagic alanine secretion , 2016, Nature.
[46] Derek S. Chan,et al. Targeting CXCL12 from FAP-expressing carcinoma-associated fibroblasts synergizes with anti–PD-L1 immunotherapy in pancreatic cancer , 2013, Proceedings of the National Academy of Sciences.
[47] B. Viollet,et al. AMPK and mTOR regulate autophagy through direct phosphorylation of Ulk1 , 2011, Nature Cell Biology.
[48] Monique A J van Eijndhoven,et al. Exosomes , 2010, Annual review of biochemistry.
[49] David Allard,et al. Inhibition of Hedgehog Signaling Enhances Delivery of Chemotherapy in a Mouse Model of Pancreatic Cancer , 2009, Science.
[50] Wright Jl. Writer's block. , 1996, The Journal of family practice.