Expression Levels of the Tnni3k Gene in the Heart Are Highly Associated with Cardiac and Glucose Metabolism-Related Phenotypes and Functional Pathways
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J. Towbin | D. Ashbrook | A. Bajpai | D. Lebeche | A. Starlard-Davenport | Yufeng Chen | E. Purevjav | Hongzhuan Sheng | Qingqing Gu | B. Orgil | Lu Lu | Athena Starlard-Davenport | Buyan-Ochir Orgil
[1] J. Towbin,et al. The TMEM43 S358L mutation affects cardiac, small intestine, and metabolic homeostasis in a knock-in mouse model. , 2023, American Journal of Physiology. Heart and Circulatory Physiology.
[2] J. Towbin,et al. Echocardiography phenotyping in murine genetic reference population of BXD strains reveals significant eQTLs associated with cardiac function and morphology. , 2022, Physiological Genomics.
[3] S. Ware,et al. Cardiac Troponin I–Interacting Kinase Affects Cardiomyocyte S-Phase Activity but Not Cardiomyocyte Proliferation , 2022, Circulation.
[4] R. Liu,et al. Whole-Exome Sequencing Identifies a Novel Variant (c.1538T > C) of TNNI3K in Arrhythmogenic Right Ventricular Cardiomyopathy , 2022, Frontiers in Cardiovascular Medicine.
[5] J. Towbin,et al. Systems genetics analysis defines importance of TMEM43/LUMA for cardiac- and metabolic-related pathways , 2021, Physiological genomics.
[6] E. Lodder,et al. The Diverse Roles of TNNI3K in Cardiac Disease and Potential for Treatment , 2021, International journal of molecular sciences.
[7] Nadezhda T. Doncheva,et al. The STRING database in 2021: customizable protein–protein networks, and functional characterization of user-uploaded gene/measurement sets , 2020, Nucleic Acids Res..
[8] N. Frangogiannis,et al. The role of Smad signaling cascades in cardiac fibrosis. , 2020, Cellular Signalling.
[9] Akhilesh Kumar Bajpai,et al. Systematic comparison of the protein-protein interaction databases from a user's perspective , 2020, J. Biomed. Informatics.
[10] Steven J. M. Jones,et al. Mutations in ILK, encoding integrin-linked kinase, are associated with arrhythmogenic cardiomyopathy. , 2019, Translational research : the journal of laboratory and clinical medicine.
[11] L. Groop,et al. The functional impact of G protein-coupled receptor 142 (Gpr142) on pancreatic β-cell in rodent , 2019, Pflügers Archiv - European Journal of Physiology.
[12] Ryan L. Collins,et al. The mutational constraint spectrum quantified from variation in 141,456 humans , 2020, Nature.
[13] A. Wilde,et al. Supraventricular tachycardias, conduction disease, and cardiomyopathy in 3 families with the same rare variant in TNNI3K (p.Glu768Lys). , 2019, Heart rhythm.
[14] Hyojin Kim,et al. TRRUST v2: an expanded reference database of human and mouse transcriptional regulatory interactions , 2017, Nucleic Acids Res..
[15] C. Lien,et al. Frequency of mononuclear diploid cardiomyocytes underlies natural variation in heart regeneration , 2017, Nature Genetics.
[16] J. Svendsen,et al. Polymorphisms in the GNAS Gene as Predictors of Ventricular Tachyarrhythmias and Sudden Cardiac Death: Results From the DISCOVERY Trial and Oregon Sudden Unexpected Death Study , 2016, Journal of the American Heart Association.
[17] Robert W. Williams,et al. Joint mouse–human phenome-wide association to test gene function and disease risk , 2016, Nature Communications.
[18] Robert W. Williams,et al. A Murine Hypertrophic Cardiomyopathy Model: The DBA/2J Strain , 2015, PloS one.
[19] L. Aravind,et al. Whole exome sequencing identifies the TNNI3K gene as a cause of familial conduction system disease and congenital junctional ectopic tachycardia. , 2015, International journal of cardiology.
[20] Michael T. Zimmermann,et al. TNNI3K mutation in familial syndrome of conduction system disease, atrial tachyarrhythmia and dilated cardiomyopathy. , 2014, Human molecular genetics.
[21] Shane J. Neph,et al. A comparative encyclopedia of DNA elements in the mouse genome , 2014, Nature.
[22] J. Nielsen,et al. Analysis of the Human Tissue-specific Expression by Genome-wide Integration of Transcriptomics and Antibody-based Proteomics* , 2013, Molecular & Cellular Proteomics.
[23] A. P. Graves,et al. Inhibition of the Cardiomyocyte-Specific Kinase TNNI3K Limits Oxidative Stress, Injury, and Adverse Remodeling in the Ischemic Heart , 2013, Science Translational Medicine.
[24] R. Hui,et al. TNNI3K, a Cardiac-Specific Kinase, Promotes Physiological Cardiac Hypertrophy in Transgenic Mice , 2013, PloS one.
[25] D. Marchuk,et al. Dissection of a Quantitative Trait Locus for PR Interval Duration Identifies Tnni3k as a Novel Modulator of Cardiac Conduction , 2012, PLoS genetics.
[26] M. White,et al. Regulation of insulin sensitivity by serine/threonine phosphorylation of insulin receptor substrate proteins IRS1 and IRS2 , 2012, Diabetologia.
[27] M. Stephens,et al. Genome-wide Efficient Mixed Model Analysis for Association Studies , 2012, Nature Genetics.
[28] Guangchuang Yu,et al. clusterProfiler: an R package for comparing biological themes among gene clusters. , 2012, Omics : a journal of integrative biology.
[29] L. Kirshenbaum,et al. Multiple facets of NF-κB in the heart: to be or not to NF-κB. , 2011, Circulation Research.
[30] Michael W. Berry,et al. Functional Cohesion of Gene Sets Determined by Latent Semantic Indexing of PubMed Abstracts , 2011, PloS one.
[31] T. Hadnott,et al. Tnni3k Modifies Disease Progression in Murine Models of Cardiomyopathy , 2009, PLoS genetics.
[32] I. Komuro,et al. Overexpression of TNNI3K, a cardiac-specific MAP kinase, promotes P19CL6-derived cardiac myogenesis and prevents myocardial infarction-induced injury. , 2008, American journal of physiology. Heart and circulatory physiology.
[33] Y. Zhen,et al. Mef2c is an essential regulatory element required for unique expression of the cardiac-specific CARK gene , 2007, Journal of cellular and molecular medicine.
[34] J. Ding,et al. Identification of the dual specificity and the functional domains of the cardiac-specific protein kinase TNNI3K. , 2007, General physiology and biophysics.
[35] I. Poornima,et al. Diabetic cardiomyopathy: the search for a unifying hypothesis. , 2006, Circulation research.
[36] Jie Liu,et al. Printed in U.S.A. Copyright © 2004 by The Endocrine Society doi: 10.1210/en.2004-0865 Minireview: GNAS: Normal and Abnormal Functions , 2022 .
[37] P. Shannon,et al. Cytoscape: A Software Environment for Integrated Models of Biomolecular Interaction Networks , 2003 .
[38] Ying-jie Wei,et al. Cloning and characterization of a novel cardiac-specific kinase that interacts specifically with cardiac troponin I , 2003, Journal of Molecular Medicine.
[39] Thomas D. Schmittgen,et al. Analysis of relative gene expression data using real-time quantitative PCR and the 2(-Delta Delta C(T)) Method. , 2001, Methods.
[40] Y. Benjamini,et al. Controlling the false discovery rate in behavior genetics research , 2001, Behavioural Brain Research.
[41] D. Marchuk,et al. Overexpression of TNNI3K, a cardiac-specific MAPKKK, promotes cardiac dysfunction. , 2013, Journal of molecular and cellular cardiology.
[42] Michael W. Berry,et al. Gene clustering by Latent Semantic Indexing of MEDLINE abstracts , 2005, Bioinform..