Integrating microarray-based spatial transcriptomics and single-cell RNA-sequencing reveals tissue architecture in oesophageal squamous cell carcinoma
暂无分享,去创建一个
F. Tan | Q. Xue | Yin Li | Shugeng Gao | X. Xue | Lei Guo | Zhenlin Yang | Jie He | Wei Guo | Bo-lun Zhou | Qilin Huai | Wei Guo | Xiang Liu | Bolun Zhou | Xian Liu | Wei Guo
[1] C. Zhan,et al. Dissecting the single-cell transcriptome network in patients with esophageal squamous cell carcinoma receiving operative paclitaxel plus platinum chemotherapy , 2021, Oncogenesis.
[2] Ying Cheng,et al. Effect of Camrelizumab vs Placebo Added to Chemotherapy on Survival and Progression-Free Survival in Patients With Advanced or Metastatic Esophageal Squamous Cell Carcinoma: The ESCORT-1st Randomized Clinical Trial. , 2021, JAMA.
[3] Ruibin Xi,et al. Spatiotemporal Immune Landscape of Colorectal Cancer Liver Metastasis at Single-Cell Level. , 2021, Cancer discovery.
[4] M. Shah,et al. Immunotherapy in Patients With Locally Advanced Esophageal Carcinoma: ASCO Treatment of Locally Advanced Esophageal Carcinoma Guideline Rapid Recommendation Update. , 2021, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.
[5] N. Sun,et al. LAMC1 upregulation via TGFβ induces inflammatory cancer‐associated fibroblasts in esophageal squamous cell carcinoma via NF‐κB–CXCL1–STAT3 , 2021, Molecular oncology.
[6] C. Zhan,et al. Dissecting the single-cell transcriptome network underlying esophagus non-malignant tissues and esophageal squamous cell carcinoma , 2021, EBioMedicine.
[7] Xinzheng V. Guo,et al. Single-cell protein activity analysis identifies recurrence-associated renal tumor macrophages , 2021, Cell.
[8] X. Chen,et al. Clinical and biomarker analyses of sintilimab versus chemotherapy as second-line therapy for advanced or metastatic esophageal squamous cell carcinoma: a randomized, open-label phase 2 study (ORIENT-2) , 2021, Nature communications.
[9] J. Joyce,et al. Therapeutic Targeting of the Tumor Microenvironment. , 2021, Cancer discovery.
[10] J. L. Dunn,et al. Bidirectional Crosstalk Between Eosinophils and Esophageal Epithelial Cells Regulates Inflammatory and Remodeling Processes , 2021, Mucosal Immunology.
[11] K. Livak,et al. Applying high-dimensional single-cell technologies to the analysis of cancer immunotherapy , 2020, Nature Reviews Clinical Oncology.
[12] Jian Cao,et al. Immune suppressive landscape in the human esophageal squamous cell carcinoma microenvironment , 2020, Nature Communications.
[13] Erin L. Schenk,et al. Therapy-Induced Evolution of Human Lung Cancer Revealed by Single-Cell RNA Sequencing , 2020, Cell.
[14] Lihua Zhang,et al. Inference and analysis of cell-cell communication using CellChat , 2020, Nature Communications.
[15] S. Linnarsson,et al. Molecular architecture of the developing mouse brain , 2020, Nature.
[16] H. Baba,et al. Tumor immune microenvironment and immune checkpoint inhibitors in esophageal squamous cell carcinoma , 2020, Cancer science.
[17] D. Tuveson,et al. DIVERSITY AND BIOLOGY OF CANCER-ASSOCIATED FIBROBLASTS. , 2020, Physiological reviews.
[18] B. Becher,et al. Single-Cell Mapping of Human Brain Cancer Reveals Tumor-Specific Instruction of Tissue-Invading Leukocytes , 2020, Cell.
[19] Deepali V. Sawant,et al. Single-Cell Analyses Inform Mechanisms of Myeloid-Targeted Therapies in Colon Cancer , 2020, Cell.
[20] J. Kleinman,et al. Transcriptome-scale spatial gene expression in the human dorsolateral prefrontal cortex , 2020, Nature Neuroscience.
[21] Linna Peng,et al. Dissecting esophageal squamous-cell carcinoma ecosystem by single-cell transcriptomic analysis , 2020, Nature Communications.
[22] Deepak Kgk,et al. Tumor Microenvironment: Challenges and Opportunities in Targeting Metastasis of Triple Negative Breast Cancer. , 2020, Pharmacological research.
[23] Itai Yanai,et al. Integrating microarray-based spatial transcriptomics and single-cell RNA-seq reveals tissue architecture in pancreatic ductal adenocarcinomas , 2020, Nature Biotechnology.
[24] Allen W. Zhang,et al. Single cell transcriptome analysis reveals disease-defining T cell subsets in the tumor microenvironment of classic Hodgkin lymphoma. , 2019, Cancer discovery.
[25] Joakim Lundeberg,et al. A Spatiotemporal Organ-Wide Gene Expression and Cell Atlas of the Developing Human Heart , 2019, Cell.
[26] Sagar,et al. Systematic Identification of Cell-Cell Communication Networks in the Developing Brain , 2019, iScience.
[27] L. Shevde,et al. The Tumor Microenvironment Innately Modulates Cancer Progression. , 2019, Cancer research.
[28] Huiyin Lan,et al. Tumor-associated macrophages in tumor metastasis: biological roles and clinical therapeutic applications , 2019, Journal of Hematology & Oncology.
[29] Zhihua Liu,et al. Multi-region sequencing unveils novel actionable targets and spatial heterogeneity in esophageal squamous cell carcinoma , 2019, Nature Communications.
[30] Xuetao Cao,et al. Tumor-educated B cells selectively promote breast cancer lymph node metastasis by HSPA4-targeting IgG , 2019, Nature Medicine.
[31] R. Weinberg,et al. New insights into the mechanisms of epithelial–mesenchymal transition and implications for cancer , 2018, Nature reviews. Molecular cell biology.
[32] A. Jemal,et al. Global cancer statistics 2018: GLOBOCAN estimates of incidence and mortality worldwide for 36 cancers in 185 countries , 2018, CA: a cancer journal for clinicians.
[33] J. Maaskola,et al. Spatially Resolved Transcriptomics Enables Dissection of Genetic Heterogeneity in Stage III Cutaneous Malignant Melanoma. , 2018, Cancer research.
[34] Gang Yang,et al. Tumor microenvironment participates in metastasis of pancreatic cancer , 2018, Molecular Cancer.
[35] Zachary T. Giaccone,et al. IL-6 Mediates Cross-Talk between Tumor Cells and Activated Fibroblasts in the Tumor Microenvironment. , 2018, Cancer research.
[36] Chun Jimmie Ye,et al. Single‐Cell RNA Sequencing of Lymph Node Stromal Cells Reveals Niche‐Associated Heterogeneity , 2018, Immunity.
[37] J. Debnath,et al. Inflammatory signaling cascades and autophagy in cancer , 2018, Autophagy.
[38] Jesper Lagergren,et al. Oesophageal cancer , 2017, The Lancet.
[39] Shawn M. Gillespie,et al. Single-Cell Transcriptomic Analysis of Primary and Metastatic Tumor Ecosystems in Head and Neck Cancer , 2017, Cell.
[40] F. Bray,et al. Predicting the Future Burden of Esophageal Cancer by Histological Subtype: International Trends in Incidence up to 2030 , 2017, The American Journal of Gastroenterology.
[41] J. Medema,et al. Intra-tumor heterogeneity from a cancer stem cell perspective , 2017, Molecular Cancer.
[42] Adam J. Bass,et al. The Tumor Microenvironment in Esophageal Cancer , 2016, Oncogene.
[43] J. Jonkers,et al. IL17-producing γδ T cells and neutrophils conspire to promote breast cancer metastasis , 2015, Nature.
[44] A. Regev,et al. Spatial reconstruction of single-cell gene expression , 2015, Nature Biotechnology.
[45] D. Quail,et al. Microenvironmental regulation of tumor progression and metastasis , 2014 .
[46] J. Lagergren,et al. Recent developments in esophageal adenocarcinoma , 2013, CA: a cancer journal for clinicians.
[47] Yingsong 櫻松 Lin 林,et al. Epidemiology of Esophageal Cancer in Japan and China , 2013, Journal of epidemiology.
[48] J. Joyce,et al. Therapeutic Targeting of the Tumor Microenvironment. , 2021, Cancer discovery.
[49] J. Luketich,et al. Oesophageal carcinoma , 2013, The Lancet.