Single-cell RNA sequencing deciphers the mechanism of sepsis-induced liver injury and the therapeutic effects of artesunate
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Zhijie Li | Yong Jiang | Piao Luo | Jigang Wang | Y. Wong | Jiayun Chen | F. Liao | Yu-lin Feng | Ping Song | Chen Wang | Qian Zhang | Qiang Liu | Peng Gao | Yun-meng Bai | Xue-ling He | Lu-lin Xie | Lu-lin Xie
[1] Qiang Xu,et al. New opportunities and challenges of natural products research: When target identification meets single-cell multiomics , 2022, Acta pharmaceutica Sinica. B.
[2] Xianai Shi,et al. Advances in plant-derived natural products for antitumor immunotherapy , 2021, Archives of Pharmacal Research.
[3] M. Shankar-Hari,et al. The immunology of sepsis. , 2021, Immunity.
[4] Wei Cheng,et al. Effects of Neutrophil Extracellular Traps in Patients With Septic Coagulopathy and Their Interaction With Autophagy , 2021, Frontiers in Immunology.
[5] K. Qu,et al. Single-cell analysis of COVID-19, sepsis, and HIV infection reveals hyperinflammatory and immunosuppressive signatures in monocytes , 2021, Cell Reports.
[6] Marie-Pierre L. Gauthier,et al. A Novel Single Cell RNA-seq Analysis of Non-Myeloid Circulating Cells in Late Sepsis , 2021, Frontiers in Immunology.
[7] F. Oesch,et al. The immunosuppressive activity of artemisinin‐type drugs towards inflammatory and autoimmune diseases , 2021, Medicinal research reviews.
[8] Song-Tao Shou,et al. The roles of macrophage polarization in the host immune response to sepsis. , 2021, International immunopharmacology.
[9] A. Zwolak,et al. Metabolic Alterations in Sepsis , 2021, Journal of clinical medicine.
[10] Xuetao Cao,et al. Epigenetic Remodeling in Innate Immunity and Inflammation. , 2021, Annual review of immunology.
[11] Lixin Zhou,et al. PD-1 signaling pathway in sepsis: Does it have a future? , 2021, Clinical immunology.
[12] T. Billiar,et al. Targeting adaptor protein SLP76 of RAGE as a therapeutic approach for lethal sepsis , 2021, Nature communications.
[13] Huanming Yang,et al. Single-cell landscape of the ecosystem in early-relapse hepatocellular carcinoma , 2020, Cell.
[14] O. Harismendy,et al. Deciphering cell–cell interactions and communication from gene expression , 2020, Nature reviews. Genetics.
[15] Jian Sun,et al. Gut-liver crosstalk in sepsis-induced liver injury , 2020, Critical Care.
[16] Devin M. Jones,et al. Dynamic Roles for IL-2–STAT5 Signaling in Effector and Regulatory CD4+ T Cell Populations , 2020, The Journal of Immunology.
[17] Dong Li,et al. Artesunate Ameliorates Sepsis-Induced Acute Lung Injury by Activating the mTOR/AKT/PI3K Axis. , 2020, Gene.
[18] Lihua Zhang,et al. Inference and analysis of cell-cell communication using CellChat , 2020, Nature Communications.
[19] Li Yang,et al. Comparative analysis of cell lineage differentiation during hepatogenesis in humans and mice at the single-cell transcriptome level , 2020, Cell Research.
[20] Shao-Peng Lin,et al. Artemisinin improves neurocognitive deficits associated with sepsis by activating the AMPK axis in microglia , 2020, Acta Pharmacologica Sinica.
[21] N. Henderson,et al. Single-cell technologies in hepatology: new insights into liver biology and disease pathogenesis , 2020, Nature Reviews Gastroenterology & Hepatology.
[22] R. Crystal,et al. Single-Cell Transcriptome Analysis of Mouse Liver Cell-Specific Tropism and Transcriptional Dysregulation Following Intravenous Administration of AAVrh.10 Vectors. , 2020, Human gene therapy.
[23] J. Marshall,et al. Biomarkers of sepsis: time for a reappraisal , 2020, Critical Care.
[24] É. Vivier,et al. SnapShot: Natural Killer Cells , 2020, Cell.
[25] N. Hacohen,et al. An immune-cell signature of bacterial sepsis , 2020, Nature Medicine.
[26] Hongke Zeng,et al. Single-cell transcriptomics reveals the alteration of peripheral blood mononuclear cells driven by sepsis. , 2020, Annals of translational medicine.
[27] Jiandie D. Lin,et al. A Single‐Cell Perspective of the Mammalian Liver in Health and Disease , 2020, Hepatology.
[28] Muming Yu,et al. Pathological alteration and therapeutic implications of sepsis-induced immune cell apoptosis , 2019, Cell Death & Disease.
[29] Jiandie D. Lin,et al. Landscape of Intercellular Crosstalk in Healthy and NASH Liver Revealed by Single-Cell Secretome Gene Analysis. , 2019, Molecular cell.
[30] F. DeLeo,et al. Neutrophils in innate immunity and systems biology‐level approaches , 2019, Wiley interdisciplinary reviews. Systems biology and medicine.
[31] Paul J. Hoffman,et al. Comprehensive Integration of Single-Cell Data , 2018, Cell.
[32] S. Lukowski,et al. Transcriptomics and single‐cell RNA‐sequencing , 2019 .
[33] M. Singer,et al. Lymphocyte subset expression and serum concentrations of PD-1/PD-L1 in sepsis - pilot study , 2018, Critical Care.
[34] Jia Gu,et al. fastp: an ultra-fast all-in-one FASTQ preprocessor , 2018, bioRxiv.
[35] T. Iba,et al. Inflammation and thrombosis: roles of neutrophils, platelets and endothelial cells and their interactions in thrombus formation during sepsis , 2018, Journal of thrombosis and haemostasis : JTH.
[36] A. Zyad,et al. More insights into the pharmacological effects of artemisinin , 2018, Phytotherapy research : PTR.
[37] F. Venet,et al. Advances in the understanding and treatment of sepsis-induced immunosuppression , 2018, Nature Reviews Nephrology.
[38] L. DeLeve,et al. Liver Sinusoidal Endothelial Cell: An Update , 2017, Seminars in Liver Disease.
[39] Karunakaran A Kalesh,et al. Artemisinin as an anticancer drug: Recent advances in target profiling and mechanisms of action , 2017, Medicinal research reviews.
[40] R. Satija,et al. Single-cell RNA sequencing to explore immune cell heterogeneity , 2017, Nature Reviews Immunology.
[41] F. Swirski,et al. Cytokine storm and sepsis disease pathogenesis , 2017, Seminars in Immunopathology.
[42] M. Netea,et al. The immunopathology of sepsis and potential therapeutic targets , 2017, Nature Reviews Immunology.
[43] F. Tacke,et al. Liver macrophages in tissue homeostasis and disease , 2017, Nature Reviews Immunology.
[44] Anna Huttenlocher,et al. Neutrophil migration in infection and wound repair: going forward in reverse , 2016, Nature Reviews Immunology.
[45] Shangha Pan,et al. Artesunate Protects Against Sepsis-Induced Lung Injury Via Heme Oxygenase-1 Modulation , 2016, Inflammation.
[46] R. Bellomo,et al. The Third International Consensus Definitions for Sepsis and Septic Shock (Sepsis-3). , 2016, JAMA.
[47] Frank Tacke,et al. Immunology in the liver — from homeostasis to disease , 2016, Nature Reviews Gastroenterology &Hepatology.
[48] T. Rőszer,et al. Understanding the Mysterious M2 Macrophage through Activation Markers and Effector Mechanisms , 2015, Mediators of inflammation.
[49] M. Rosengart,et al. Adenosine monophosphate-activated protein kinase activation protects against sepsis-induced organ injury and inflammation. , 2015, The Journal of surgical research.
[50] Hongwei Liang,et al. Molecular Mechanisms That Influence the Macrophage M1–M2 Polarization Balance , 2014, Front. Immunol..
[51] Shulin Li,et al. The Role of the Liver in Sepsis , 2014, International reviews of immunology.
[52] D. Brenner,et al. Interactions between the intestinal microbiome and liver diseases. , 2014, Gastroenterology.
[53] Yong-ming Yao,et al. Macrophage Polarization in Inflammatory Diseases , 2014, International journal of biological sciences.
[54] Cole Trapnell,et al. Pseudo-temporal ordering of individual cells reveals dynamics and regulators of cell fate decisions , 2014, Nature Biotechnology.
[55] P. Kubes,et al. Immune surveillance by the liver , 2013, Nature Immunology.
[56] T. van der Poll,et al. Host innate immune responses to sepsis , 2013, Virulence.
[57] C. Chung,et al. Kupffer cells protect liver sinusoidal endothelial cells from Fas-dependent apoptosis in sepsis by down-regulating gp130. , 2013, The American journal of pathology.
[58] M. Idzko,et al. PHAGOCYTES, GRANULOCYTES, AND MYELOPOIESIS Platelet serotonin promotes the recruitment of neutrophils to sites of acute inflammation in mice , 2017 .
[59] Percy A. Knolle,et al. Living in the liver: hepatic infections , 2012, Nature Reviews Immunology.
[60] Yan Zhang,et al. Upregulation of programmed death-1 on T cells and programmed death ligand-1 on monocytes in septic shock patients , 2011, Critical care.
[61] Yan Zhang,et al. PD-L1 blockade improves survival in experimental sepsis by inhibiting lymphocyte apoptosis and reversing monocyte dysfunction , 2010, Critical care.
[62] Honglei Xu,et al. Selective blockade of endothelial NF‐κB pathway differentially affects systemic inflammation and multiple organ dysfunction and injury in septic mice , 2009, The Journal of pathology.
[63] S. Dower,et al. The role of Toll-like receptors in the regulation of neutrophil migration, activation, and apoptosis. , 2005, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[64] P. Radermacher,et al. SELECTIVE INDUCIBLE NITRIC OXIDE SYNTHASE INHIBITION DURING LONG-TERM HYPERDYNAMIC PORCINE BACTEREMIA , 2004, Shock.
[65] Richard Moreau,et al. Liver sinusoidal endothelial cells: Physiology and role in liver diseases. , 2017, Journal of hepatology.
[66] F. Tacke,et al. Liver — guardian, modifier and target of sepsis , 2017, Nature Reviews Gastroenterology &Hepatology.