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Donghee Kang

Ewha Womans University · 医学

研究室紹介

Professor Donghee Kang's research lab focuses on the pathophysiological roles of uric acid in renal and cardiovascular diseases, particularly its contribution to endothelial dysfunction, vascular injury, and progressive renal fibrosis. The lab investigates mechanisms linking hyperuricemia to oxidative stress, inflammation, and impaired angiogenesis, with a strong emphasis on the renin-angiotensin system and vascular endothelial growth factor (VEGF) regulation. Key research directions include the impact of uric acid on microvascular rarefaction in the kidney and the potential therapeutic benefits of targeting uric acid or angiogenic pathways in chronic kidney disease and hypertension.

uric acidrenal fibrosisangiogenesisendothelial dysfunctionVEGF

Research Overview

Papers
261
Total Citations
24,466
Papers (5y)
44
Primary Field
医学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
44total
2021
2022
2023
2024
2025
Citations per year (5y)
179total
20212022202320242025

Selected Papers

15
1
Article|1,300 citations·2002
A Role for Uric Acid in the Progression of Renal Disease
Duk‐Hee Kang, Takahiko Nakagawa, Lili Feng, Susumu Watanabe, Lin Han, Marilda Mazzali, Luan D. Truong, Raymond C. Harris, Richard J. Johnson
SJR Q1Journal of the American Society of Nephrology

Hyperuricemia is associated with renal disease, but it is usually considered a marker of renal dysfunction rather than a risk factor for progression. Recent studies have reported that mild hyperuricemia in normal rats induced by the uricase inhibitor, oxonic acid (OA), results in hypertension, intrarenal vascular disease, and renal injury. This led to the hypothesis that uric acid may contribute to progressive renal disease. To examine the effect of hyperuricemia on renal disease progression, ra

NephrologyMedicine
2
Article|889 citations·2005
Uric Acid–Induced C-Reactive Protein Expression
Duk‐Hee Kang, Sung-Kwang Park, In‐Kyu Lee, Richard J. Johnson
SJR Q1Journal of the American Society of Nephrology

Recent experimental and human studies have shown that hyperuricemia is associated with hypertension, systemic inflammation, and cardiovascular disease mediated by endothelial dysfunction and pathologic vascular remodeling. Elevated levels of C-reactive protein (CRP) have emerged as one of the most powerful independent predictors of cardiovascular disease. In addition to being a marker of inflammation, recent evidence suggests that CRP may participate directly in the development of atheroscleroti

NephrologyMedicine
3
Article|627 citations·2010
Oxidative stress with an activation of the renin–angiotensin system in human vascular endothelial cells as a novel mechanism of uric acid-induced endothelial dysfunction
Min-A Yu, Laura Gabriela Sánchez‐Lozada, Richard J. Johnson, Duk‐Hee Kang
SJR Q1Journal of Hypertension

Uric acid-induced aging and death of human endothelial cells are medicated by local activation of oxidative stress and the renin-angiotensin system, which provides a novel mechanism of uric acid-induced endothelial dysfunction. Therapies targeting uric acid maybe beneficial in cardiovascular disease.

NephrologyMedicine
4
Review|466 citations·2002
Role of the Microvascular Endothelium in Progressive Renal Disease
Duk‐Hee Kang, John Kanellis, Christian Hugo, Luan D. Truong, Sharon Anderson, Dontscho Kerjaschki, George F. Schreiner, Richard J. Johnson
SJR Q1Journal of the American Society of Nephrology

The role of the vascular endothelium in progressive renal disease is not well understood. This review presents evidence that progressive renal disease is characterized by a progressive loss of the microvasculature. The loss of the microvasculature correlates directly with the development of glomerular and tubulointerstitial scarring. The mechanism is mediated in part by a reduction in the endothelial proliferative response, and this impairment in capillary repair is mediated by alteration in the

Molecular BiologyBiochemistry, Genetics and Molecular Biology
5
Article|412 citations·2001
Impaired Angiogenesis in the Remnant Kidney Model
Duk‐Hee Kang, A. Joly, Se‐Woong Oh, Christian Hugo, Dontscho Kerjaschki, Katherine Gordon, Marilda Mazzali, J. Ashley Jefferson, Jeremy Hughes, KIRSTEN M. MADSEN, George F. Schreiner, Richard J. Johnson
SJR Q1Journal of the American Society of Nephrology

Few studies have examined the role of the microvasculature in progressive renal disease. It was hypothesized that impaired angiogenesis might occur in the diseased kidney and could contribute to renal scarring. Progressive renal disease was induced in rats by 5/6 renal ablation and those rats were compared with sham-operated control animals at multiple time points, for examination of changes in the microvasculature and the expression of angiogenic factors. An early angiogenic response was docume

Molecular BiologyBiochemistry, Genetics and Molecular Biology
6
Article|388 citations·2001
Impaired Angiogenesis in the Remnant Kidney Model
Duk‐Hee Kang, Jeremy Hughes, Marilda Mazzali, George F. Schreiner, Richard J. Johnson
SJR Q1Journal of the American Society of Nephrology

Impaired angiogenesis and decreased vascular endothelial growth factor (VEGF) expression were recently documented in the remnant kidney (RK) model of progressive renal failure. VEGF (50 microg/kg, twice daily) was administered to RK rats between weeks 4 and 8 after surgery, and rats were euthanized at week 8 for histologic study. During the administration of VEGF (n = 7) or vehicle (n = 6), systemic BP was comparable in the two groups. VEGF treatment resulted in improved renal function and lower

Molecular BiologyBiochemistry, Genetics and Molecular Biology
7
Article|297 citations·2010
Indoxyl Sulfate–Induced Endothelial Dysfunction in Patients with Chronic Kidney Disease via an Induction of Oxidative Stress
Mina Yu, Young Jin Kim, Duk‐Hee Kang
SJR Q1Clinical Journal of the American Society of Nephrology

BACKGROUND AND OBJECTIVES: Recent data suggest indoxyl sulfate (IS), one of the uremic toxins that accelerate the progression of chronic kidney disease (CKD), may also be responsible for vascular disease via an induction of oxidative stress. The role of IS in endothelial dysfunction in CKD and potential mechanisms of IS-induced endothelial dysfunction were investigated. DESIGN, SETTING, PARTICIPANTS, & MEASUREMENTS: A prospective observational study in 40 CKD patients was performed. Flow-mediate

NephrologyMedicine
8
Article|289 citations·2014
Uric acid induces fat accumulation via generation of endoplasmic reticulum stress and SREBP-1c activation in hepatocytes
Yea-Jin Choi, Hyun-Soo Shin, Hack Sun Choi, Joo-Won Park, Inho Jo, Eok‐Soo Oh, Kang-Yo Lee, Byung‐Hoon Lee, Richard J. Johnson, Duk‐Hee Kang
SJR Q1Laboratory InvestigationOA
EpidemiologyMedicine
9
Article|275 citations·2001
Impaired angiogenesis in the aging kidney: Vascular endothelial growth factor and Thrombospondin-1 in renal disease
Duk‐Hee Kang, Sharon Anderson, Yoon-Goo Kim, Marilda Mazzalli, Shin-ichi Suga, J. Ashley Jefferson, Katherine Gordon, T Oyama, Jeremy Hughes, Christian Hugo, D Kerjaschki, George F. Schreiner
SJR Q1American Journal of Kidney Diseases
Molecular BiologyBiochemistry, Genetics and Molecular Biology
10
Article|259 citations·2013
Uric acid-induced phenotypic transition of renal tubular cells as a novel mechanism of chronic kidney disease
Eun-Sun Ryu, Mi Jin Kim, Hyun-Soo Shin, Yang-Hee Jang, Hack Sun Choi, Inho Jo, Richard J. Johnson, Duk‐Hee Kang
American Journal of Physiology-Renal Physiology

Recent experimental and clinical studies suggest a causal role of uric acid in the development of chronic kidney disease. Most studies have focused on uric acid-induced endothelial dysfunction, oxidative stress, and inflammation in the kidney. The direct effects of uric acid on tubular cells have not been studied in detail, and whether uric acid can mediate phenotypic transition of renal tubular cells such as epithelial-to-mesenchymal transition (EMT) is not known. We therefore investigated whet

NephrologyMedicine
11
Review|239 citations·2014
Uric Acid Puzzle: Dual Role as Anti-oxidantand Pro-oxidant
Duk‐Hee Kang, Sung‐Kyu Ha
SJR Q2Electrolytes & Blood PressureOA

Hyperuricemia is known to be associated with the presence of cardiovascular and metabolic syndrome and with the development of incipient kidney disease and an accelerated renal progression. However, an elevated uric acid level was not generally regarded as a true etiology or mediator, but an indicator of these diseases. Uric acid has recently regained the clinical interest and popularity based on emerging data suggesting the causative role of hyperuricemia in cardiovascular and renal disease. Ex

NephrologyMedicine
12
Article|239 citations·2005
Uric Acid Causes Vascular Smooth Muscle Cell Proliferation by Entering Cells via a Functional Urate Transporter
Duk‐Hee Kang, Lin Han, Xiaosen Ouyang, Andrew M. Kahn, John Kanellis, Ping Li, Lili Feng, Takahiko Nakagawa, Susumu Watanabe, Makoto Hosoyamada, Hitoshi Endou, Michael S. Lipkowitz
SJR Q1American Journal of NephrologyOA

BACKGROUND: Soluble uric acid stimulates vascular smooth muscle cell (VSMC) proliferation by activating mitogen-activated protein kinases, and stimulating COX-2 and PDGF synthesis. The mechanism by which uric acid enters the VSMC is not known. We hypothesized that uric acid enters via transporters similar to that observed in the kidney. METHODS: We studied the uptake of uric acid into rat VSMC under polarized and depolarized conditions and in the presence of organic anion transport (OAT) inhibit

NephrologyMedicine
13
Review|160 citations·2005
Uric acid and chronic renal disease: Possible implication of hyperuricemia on progression of renal disease
Duk‐Hee Kang, Takahiko Nakagawa
SJR Q1Seminars in Nephrology
NephrologyMedicine
14
Article|131 citations·2009
HGF and BMP-7 Ameliorate High Glucose–Induced Epithelial-to-Mesenchymal Transition of Peritoneal Mesothelium
Min-A Yu, Kyung Sook Shin, Jung Hye Kim, Yong Il Kim, Soon Sup Chung, Sun-Hee Park, Yong-Lim Kim, Duk‐Hee Kang
SJR Q1Journal of the American Society of NephrologyOA

Over time, peritoneal dialysis results in functional and structural alterations of the peritoneal membrane, but the underlying mechanisms and whether these changes are reversible are not completely understood. Here, we studied the effects of high levels of glucose, which are found in the dialysate, on human peritoneal mesothelial cells (HPMCs). We found that high concentrations of glucose induced epithelial-to-mesenchymal transition (EMT) of HPMC, suggested by decreased expression of E-cadherin

NephrologyMedicine
15
Article|117 citations·1999
High Glucose Solution and Spent Dialysate Stimulate the Synthesis of Transforming Growth Factor-β 1 of Human Peritoneal Mesothelial Cells: Effect of Cytokine Costimulation
Duk‐Hee Kang, Young-Sook Hong, Hyun Joung Lim, Jin-Hee Choi, Dae-Suk Han, Kyun-Il Yoon
SJR Q1Peritoneal Dialysis International

OBJECTIVE: To investigate the effect of high glucose and spent peritoneal dialysate on the transforming growth factor-beta1 (TGFbeta1) synthesis of cultured human peritoneal mesothelial cells (HPMCs) and to examine the effect of costimulation with high glucose or spent dialysate, and cytokines, interleukin-1beta (IL-1beta), and tumor necrosis factor-alpha (TNFalpha) on TGFbeta1 synthesis of HPMCs. DESIGN: HPMCs were exposed to different concentrations of glucose (30, 60, and 90 mmol/L) or spent

NephrologyMedicine

Research Areas

NephrologyMolecular BiologyHealth, Toxicology and MutagenesisEndocrinology, Diabetes and MetabolismEconomics and EconometricsCardiology and Cardiovascular Medicine

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