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Jihwan Park

Bio: Jihwan Park is an academic researcher from University of Pennsylvania. The author has contributed to research in topics: Kidney disease & Kidney. The author has an hindex of 23, co-authored 45 publications receiving 2125 citations. Previous affiliations of Jihwan Park include Gwangju Institute of Science and Technology & Pohang University of Science and Technology.

Papers published on a yearly basis

Papers
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Journal ArticleDOI
18 May 2018-Science
TL;DR: It is inferred that inherited kidney diseases that arise from distinct genetic mutations but share the same phenotypic manifestation originate from the same differentiated cell type, and that the collecting duct in kidneys of adult mice generates a spectrum of cell types through a newly identified transitional cell.
Abstract: Our understanding of kidney disease pathogenesis is limited by an incomplete molecular characterization of the cell types responsible for the organ’s multiple homeostatic functions. To help fill this knowledge gap, we characterized 57,979 cells from healthy mouse kidneys by using unbiased single-cell RNA sequencing. On the basis of gene expression patterns, we infer that inherited kidney diseases that arise from distinct genetic mutations but share the same phenotypic manifestation originate from the same differentiated cell type. We also found that the collecting duct in kidneys of adult mice generates a spectrum of cell types through a newly identified transitional cell. Computational cell trajectory analysis and in vivo lineage tracing revealed that intercalated cells and principal cells undergo transitions mediated by the Notch signaling pathway. In mouse and human kidney disease, these transitions were shifted toward a principal cell fate and were associated with metabolic acidosis.

751 citations

Journal ArticleDOI
Xuran Wang1, Jihwan Park1, Katalin Susztak1, Nan Zhang1, Mingyao Li1 
TL;DR: A new method for estimating cell type proportions from bulk tissue RNA-seq data guided by multi-subject single-cell expression reference, which enables the characterization of cellular heterogeneity of complex tissues for understanding of disease mechanisms.
Abstract: Knowledge of cell type composition in disease relevant tissues is an important step towards the identification of cellular targets of disease. We present MuSiC, a method that utilizes cell-type specific gene expression from single-cell RNA sequencing (RNA-seq) data to characterize cell type compositions from bulk RNA-seq data in complex tissues. By appropriate weighting of genes showing cross-subject and cross-cell consistency, MuSiC enables the transfer of cell type-specific gene expression information from one dataset to another. When applied to pancreatic islet and whole kidney expression data in human, mouse, and rats, MuSiC outperformed existing methods, especially for tissues with closely related cell types. MuSiC enables the characterization of cellular heterogeneity of complex tissues for understanding of disease mechanisms. As bulk tissue data are more easily accessible than single-cell RNA-seq, MuSiC allows the utilization of the vast amounts of disease relevant bulk tissue RNA-seq data for elucidating cell type contributions in disease. Bulk tissue RNA-seq data reveals transcriptomic profiles but masks the contributions of different cell types. Here, the authors develop a new method for estimating cell type proportions from bulk tissue RNA-seq data guided by multi-subject single-cell expression reference.

500 citations

Journal ArticleDOI
Ayush Giri1, Jacklyn N. Hellwege2, Jacob M. Keaton1, Jacob M. Keaton2, Jihwan Park3, Chengxiang Qiu3, Helen R. Warren4, Helen R. Warren5, Eric S. Torstenson1, Eric S. Torstenson2, Csaba P. Kovesdy6, Yan V. Sun7, Otis D. Wilson1, Otis D. Wilson2, Cassianne Robinson-Cohen1, Christianne L. Roumie1, Cecilia P. Chung1, K A Birdwell6, K A Birdwell1, Scott M. Damrauer6, Scott L. DuVall, Derek Klarin, Kelly Cho8, Yu Wang1, Evangelos Evangelou9, Evangelos Evangelou10, Claudia P. Cabrera5, Claudia P. Cabrera4, Louise V. Wain11, Louise V. Wain5, Rojesh Shrestha3, Brian S. Mautz1, Elvis A. Akwo1, Muralidharan Sargurupremraj12, Stéphanie Debette12, Michael Boehnke13, Laura J. Scott13, Jian'an Luan14, Zhao J-H.14, Sara M. Willems14, Sébastien Thériault15, Nabi Shah16, Nabi Shah17, Christopher Oldmeadow18, Peter Almgren19, Ruifang Li-Gao20, Niek Verweij21, Thibaud Boutin22, Massimo Mangino23, Massimo Mangino24, Ioanna Ntalla4, Elena V. Feofanova25, Praveen Surendran14, James P. Cook26, Savita Karthikeyan14, Najim Lahrouchi27, Ching-Ti Liu28, Nuno Sepúlveda29, Tom G. Richardson30, Aldi T. Kraja31, Philippe Amouyel32, Martin Farrall33, Neil Poulter10, Markku Laakso34, Eleftheria Zeggini35, Peter S. Sever36, Robert A. Scott14, Claudia Langenberg14, Nicholas J. Wareham14, David Conen37, Palmer Cna.16, John Attia18, Daniel I. Chasman38, Paul M. Ridker38, Olle Melander19, Dennis O. Mook-Kanamori20, Harst Pvd.21, Francesco Cucca39, David Schlessinger36, Caroline Hayward22, Tim D. Spector23, Jarvelin M-R.1, Branwen J. Hennig29, Branwen J. Hennig40, Nicholas J. Timpson30, Wei W-Q.1, J C Smith1, Yaomin Xu1, Michael E. Matheny, E E Siew1, C M Lindgren27, C M Lindgren33, C M Lindgren41, Herzig K-H., George Dedoussis42, Josh C. Denny1, Bruce M. Psaty43, Howson Jmm.14, Patricia B. Munroe5, Patricia B. Munroe4, Christopher Newton-Cheh44, Mark J. Caulfield4, Mark J. Caulfield5, Paul Elliott5, Paul Elliott10, J M Gaziano45, J M Gaziano46, John Concato, Wilson Pwf.6, Philip S. Tsao46, D.R. Velez Edwards2, D.R. Velez Edwards1, Katalin Susztak3, Christopher J. O'Donnell38, Adriana M. Hung1, Adriana M. Hung2, Todd L. Edwards2, Todd L. Edwards1 
TL;DR: Analysis of blood pressure data from the Million Veteran Program trans-ethnic cohort identifies common and rare variants, and genetically predicted gene expression across multiple tissues associated with systolic, diastolic and pulse pressure in over 775,000 individuals.
Abstract: In this trans-ethnic multi-omic study, we reinterpret the genetic architecture of blood pressure to identify genes, tissues, phenomes and medication contexts of blood pressure homeostasis. We discovered 208 novel common blood pressure SNPs and 53 rare variants in genome-wide association studies of systolic, diastolic and pulse pressure in up to 776,078 participants from the Million Veteran Program (MVP) and collaborating studies, with analysis of the blood pressure clinical phenome in MVP. Our transcriptome-wide association study detected 4,043 blood pressure associations with genetically predicted gene expression of 840 genes in 45 tissues, and mouse renal single-cell RNA sequencing identified upregulated blood pressure genes in kidney tubule cells.

310 citations

Journal ArticleDOI
TL;DR: Ablation of STING ameliorated kidney fibrosis in mouse models of chronic kidney disease, demonstrating how TFAM sequesters mtDNA to limit the inflammation leading to fibrosis.

261 citations

Journal ArticleDOI
TL;DR: These findings provide strong evidence that KRIS proteins contribute to the inflammatory process underlying end-stage renal disease development in both types of diabetes, and point to new therapeutic targets and new prognostic tests to identify subjects at risk of end-Stage renal disease.
Abstract: Chronic inflammation is postulated to be involved in the development of end-stage renal disease in diabetes, but which specific circulating inflammatory proteins contribute to this risk remain unknown. To study this, we examined 194 circulating inflammatory proteins in subjects from three independent cohorts with type 1 and type 2 diabetes. In each cohort, we identified an extremely robust kidney risk inflammatory signature (KRIS), consisting of 17 proteins enriched in tumor necrosis factor-receptor superfamily members, that was associated with a 10-year risk of end-stage renal disease. All these proteins had a systemic, non-kidney source. Our prospective study findings provide strong evidence that KRIS proteins contribute to the inflammatory process underlying end-stage renal disease development in both types of diabetes. These proteins point to new therapeutic targets and new prognostic tests to identify subjects at risk of end-stage renal disease, as well as biomarkers to measure responses to treatment of diabetic kidney disease.

226 citations


Cited by
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28 Jul 2005
TL;DR: PfPMP1)与感染红细胞、树突状组胞以及胎盘的单个或多个受体作用,在黏附及免疫逃避中起关键的作�ly.
Abstract: 抗原变异可使得多种致病微生物易于逃避宿主免疫应答。表达在感染红细胞表面的恶性疟原虫红细胞表面蛋白1(PfPMP1)与感染红细胞、内皮细胞、树突状细胞以及胎盘的单个或多个受体作用,在黏附及免疫逃避中起关键的作用。每个单倍体基因组var基因家族编码约60种成员,通过启动转录不同的var基因变异体为抗原变异提供了分子基础。

18,940 citations

01 Feb 2015
TL;DR: In this article, the authors describe the integrative analysis of 111 reference human epigenomes generated as part of the NIH Roadmap Epigenomics Consortium, profiled for histone modification patterns, DNA accessibility, DNA methylation and RNA expression.
Abstract: The reference human genome sequence set the stage for studies of genetic variation and its association with human disease, but epigenomic studies lack a similar reference. To address this need, the NIH Roadmap Epigenomics Consortium generated the largest collection so far of human epigenomes for primary cells and tissues. Here we describe the integrative analysis of 111 reference human epigenomes generated as part of the programme, profiled for histone modification patterns, DNA accessibility, DNA methylation and RNA expression. We establish global maps of regulatory elements, define regulatory modules of coordinated activity, and their likely activators and repressors. We show that disease- and trait-associated genetic variants are enriched in tissue-specific epigenomic marks, revealing biologically relevant cell types for diverse human traits, and providing a resource for interpreting the molecular basis of human disease. Our results demonstrate the central role of epigenomic information for understanding gene regulation, cellular differentiation and human disease.

4,409 citations

Journal ArticleDOI
TL;DR: The American Heart Association, in conjunction with the National Institutes of Health, annually reports the most up-to-date statistics related to heart disease, stroke, and cardiovascul...
Abstract: Background: The American Heart Association, in conjunction with the National Institutes of Health, annually reports the most up-to-date statistics related to heart disease, stroke, and cardiovascul...

3,034 citations

01 Mar 2017
TL;DR: Recent advances in understanding of mTOR function, regulation, and importance in mammalian physiology are reviewed and how the mTOR-signaling network contributes to human disease is highlighted.
Abstract: The mechanistic target of rapamycin (mTOR) coordinates eukaryotic cell growth and metabolism with environmental inputs, including nutrients and growth factors. Extensive research over the past two decades has established a central role for mTOR in regulating many fundamental cell processes, from protein synthesis to autophagy, and deregulated mTOR signaling is implicated in the progression of cancer and diabetes, as well as the aging process. Here, we review recent advances in our understanding of mTOR function, regulation, and importance in mammalian physiology. We also highlight how the mTOR signaling network contributes to human disease and discuss the current and future prospects for therapeutically targeting mTOR in the clinic.

2,014 citations

Journal ArticleDOI
TL;DR: The American Heart Association, through its Statistics Committee, continuously monitors and evaluates sources of data on heart disease and stroke in the United States to provide the most current information available in the annual Statistical Update as discussed by the authors .
Abstract: The American Heart Association, in conjunction with the National Institutes of Health, annually reports the most up-to-date statistics related to heart disease, stroke, and cardiovascular risk factors, including core health behaviors (smoking, physical activity, diet, and weight) and health factors (cholesterol, blood pressure, and glucose control) that contribute to cardiovascular health. The Statistical Update presents the latest data on a range of major clinical heart and circulatory disease conditions (including stroke, congenital heart disease, rhythm disorders, subclinical atherosclerosis, coronary heart disease, heart failure, valvular disease, venous disease, and peripheral artery disease) and the associated outcomes (including quality of care, procedures, and economic costs).The American Heart Association, through its Statistics Committee, continuously monitors and evaluates sources of data on heart disease and stroke in the United States to provide the most current information available in the annual Statistical Update. The 2022 Statistical Update is the product of a full year's worth of effort by dedicated volunteer clinicians and scientists, committed government professionals, and American Heart Association staff members. This year's edition includes data on the monitoring and benefits of cardiovascular health in the population and an enhanced focus on social determinants of health, adverse pregnancy outcomes, vascular contributions to brain health, and the global burden of cardiovascular disease and healthy life expectancy.Each of the chapters in the Statistical Update focuses on a different topic related to heart disease and stroke statistics.The Statistical Update represents a critical resource for the lay public, policymakers, media professionals, clinicians, health care administrators, researchers, health advocates, and others seeking the best available data on these factors and conditions.

1,483 citations