Integrated bioinformatics analysis and validation revealed potential immune-regulatory miR-892b, miR-199b-5p and miR-582-5p as diagnostic biomarkers in active tuberculosis.
暂无分享,去创建一个
[1] M. Soria,et al. Identification of bovine tuberculosis biomarkers to detect tuberculin skin test and IFNγ release assay false negative cattle. , 2019, Research in veterinary science.
[2] F. Arenas-Huertero,et al. Differential expression of miRNA-146a and miRNA-155 in gastritis induced by Helicobacter pylori infection in paediatric patients, adults, and an animal model , 2018, BMC Infectious Diseases.
[3] Zhilong Jiang,et al. Regulation of the NLRP3 inflammasome and macrophage pyroptosis by the p38 MAPK signaling pathway in a mouse model of acute lung injury , 2018, Molecular medicine reports.
[4] Guofeng Mao,et al. MiR‐1178 regulates mycobacterial survival and inflammatory responses in Mycobacterium tuberculosis‐infected macrophages partly via TLR4 , 2018, Journal of cellular biochemistry.
[5] Yongyan Wu,et al. MicroRNA-27b Modulates Inflammatory Response and Apoptosis during Mycobacterium tuberculosis Infection , 2018, The Journal of Immunology.
[6] Han Liu,et al. Identification of potential urine proteins and microRNA biomarkers for the diagnosis of pulmonary tuberculosis patients , 2018, Emerging Microbes & Infections.
[7] K. Floyd,et al. The global tuberculosis epidemic and progress in care, prevention, and research: an overview in year 3 of the End TB era. , 2018, The Lancet. Respiratory medicine.
[8] Naveed Sabir,et al. miRNAs in Tuberculosis: New Avenues for Diagnosis and Host-Directed Therapy , 2018, Front. Microbiol..
[9] B. Di Camillo,et al. Mycobacterium tuberculosis-induced miR-155 subverts autophagy by targeting ATG3 in human dendritic cells , 2018, PLoS pathogens.
[10] D. Russell,et al. Host transcriptional responses following ex vivo re-challenge with Mycobacterium tuberculosis vary with disease status , 2017, PloS one.
[11] Jun Lou,et al. MiR‐20b inhibits mycobacterium tuberculosis induced inflammation in the lung of mice through targeting NLRP3 , 2017, Experimental cell research.
[12] Hongwei Liang,et al. Characterization of a novel panel of plasma microRNAs that discriminates between Mycobacterium tuberculosis infection and healthy individuals , 2017, PloS one.
[13] Monoranjan Boro,et al. CXCL1 and CXCL2 Regulate NLRP3 Inflammasome Activation via G-Protein–Coupled Receptor CXCR2 , 2017, The Journal of Immunology.
[14] P. Marrack,et al. Nicotine Impairs Macrophage Control of Mycobacterium tuberculosis , 2017, American journal of respiratory cell and molecular biology.
[15] Xiangguo Duan,et al. MicroRNA-144-3p inhibits autophagy activation and enhances Bacillus Calmette-Guérin infection by targeting ATG4a in RAW264.7 macrophage cells , 2017, PloS one.
[16] Yan Gao,et al. MiR‐23a‐5p modulates mycobacterial survival and autophagy during mycobacterium tuberculosis infection through TLR2/MyD88/NF‐&kgr;B pathway by targeting TLR2 , 2017, Experimental cell research.
[17] C. Gray,et al. A combination of baseline plasma immune markers can predict therapeutic response in multidrug resistant tuberculosis , 2017, PloS one.
[18] M. Nireekshan Kumar,et al. MicroRNA 26a (miR-26a)/KLF4 and CREB-C/EBPβ regulate innate immune signaling, the polarization of macrophages and the trafficking of Mycobacterium tuberculosis to lysosomes during infection , 2017, PLoS pathogens.
[19] Jun Lou,et al. TLR‐4/miRNA‐32‐5p/FSTL1 signaling regulates mycobacterial survival and inflammatory responses in Mycobacterium tuberculosis‐infected macrophages , 2017, Experimental cell research.
[20] S. Gordon,et al. Circulating microRNAs as Potential Biomarkers of Infectious Disease , 2017, Front. Immunol..
[21] V. Prajapati,et al. Perturbed microRNA Expression by Mycobacterium tuberculosis Promotes Macrophage Polarization Leading to Pro-survival Foam Cell , 2017, Front. Immunol..
[22] I. Riquelme,et al. Tools for Sequence-Based miRNA Target Prediction: What to Choose? , 2016, International journal of molecular sciences.
[23] Vikash Singh,et al. Mycobacterium tuberculosis-triggered Hippo pathway orchestrates CXCL1/2 expression to modulate host immune responses , 2016, Scientific Reports.
[24] N. Zhou,et al. MiRNA-155 and miRNA-132 as potential diagnostic biomarkers for pulmonary tuberculosis: A preliminary study. , 2016, Microbial pathogenesis.
[25] Yuliang Qu,et al. microRNA-20a Inhibits Autophagic Process by Targeting ATG7 and ATG16L1 and Favors Mycobacterial Survival in Macrophage Cells , 2016, Front. Cell. Infect. Microbiol..
[26] N. Baliga,et al. MiR-155–regulated molecular network orchestrates cell fate in the innate and adaptive immune response to Mycobacterium tuberculosis , 2016, Proceedings of the National Academy of Sciences.
[27] Guangyuan Yu,et al. Circulating microRNAs as biomarkers for the early diagnosis of childhood tuberculosis infection , 2016, Molecular medicine reports.
[28] G. Zeng,et al. microRNA-146a promotes mycobacterial survival in macrophages through suppressing nitric oxide production , 2016, Scientific Reports.
[29] K. Moore,et al. Mycobacterium tuberculosis induces the miR-33 locus to reprogram autophagy and host lipid metabolism , 2016, Nature Immunology.
[30] Elsa Anes,et al. Immunomodulating microRNAs of mycobacterial infections. , 2016, Tuberculosis.
[31] Y. Peng,et al. MiR-582-5p/miR-590-5p targeted CREB1/CREB5–NF-κB signaling and caused opioid-induced immunosuppression in human monocytes , 2016, Translational Psychiatry.
[32] S. Babu,et al. Circulating Angiogenic Factors as Biomarkers of Disease Severity and Bacterial Burden in Pulmonary Tuberculosis , 2016, PloS one.
[33] Jicheng Li,et al. A Group of Novel Serum Diagnostic Biomarkers for Multidrug-Resistant Tuberculosis by iTRAQ-2D LC-MS/MS and Solexa Sequencing , 2016, International journal of biological sciences.
[34] S. Kim,et al. MicroRNA-125a Inhibits Autophagy Activation and Antimicrobial Responses during Mycobacterial Infection , 2015, The Journal of Immunology.
[35] Sang-Nae Cho,et al. Adjunctive biomarkers for improving diagnosis of tuberculosis and monitoring therapeutic effects. , 2015, The Journal of infection.
[36] S. Kaufmann,et al. The human immune response to tuberculosis and its treatment: a view from the blood , 2015, Immunological reviews.
[37] Xinchun Chen,et al. Increased Complement C1q Level Marks Active Disease in Human Tuberculosis , 2014, PloS one.
[38] Jicheng Li,et al. Screening and Identification of Six Serum microRNAs as Novel Potential Combination Biomarkers for Pulmonary Tuberculosis Diagnosis , 2013, PloS one.
[39] Martin Reczko,et al. DIANA-microT web server v5.0: service integration into miRNA functional analysis workflows , 2013, Nucleic Acids Res..
[40] M. Soria,et al. Transcriptional Response of Peripheral Blood Mononuclear Cells from Cattle Infected with Mycobacterium bovis , 2012, PloS one.
[41] Qian Gao,et al. Comparative miRNA Expression Profiles in Individuals with Latent and Active Tuberculosis , 2011, PloS one.
[42] N. Dendukuri,et al. Commercial Serological Tests for the Diagnosis of Active Pulmonary and Extrapulmonary Tuberculosis: An Updated Systematic Review and Meta-Analysis , 2011, PLoS medicine.
[43] Hsien-Da Huang,et al. miRTar: an integrated system for identifying miRNA-target interactions in human , 2011, BMC Bioinformatics.
[44] J. Ernst,et al. Ectopic Activation of Mycobacterium tuberculosis-Specific CD4+ T Cells in Lungs of CCR7−/− Mice , 2009, The Journal of Immunology.
[45] C. Laudanna,et al. Analyzing biological network parameters with CentiScaPe , 2009, Bioinform..
[46] Pornpimol Charoentong,et al. ClueGO: a Cytoscape plug-in to decipher functionally grouped gene ontology and pathway annotation networks , 2009, Bioinform..
[47] Doron Betel,et al. The microRNA.org resource: targets and expression , 2007, Nucleic Acids Res..
[48] M. Oppermann,et al. C3a activates reactive oxygen radical species production and intracellular calcium transients in human eosinophils , 1994, European journal of immunology.
[49] S. Babu,et al. Angiopoietins as biomarkers of disease severity and bacterial burden in pulmonary tuberculosis. , 2017, The international journal of tuberculosis and lung disease : the official journal of the International Union against Tuberculosis and Lung Disease.
[50] D. A. Magee,et al. MicroRNA profiling of the bovine alveolar macrophage response to Mycobacterium bovis infection suggests pathogen survival is enhanced by microRNA regulation of endocytosis and lysosome trafficking. , 2015, Tuberculosis.