Blood Retention and Kidney Clearance of Renal‐Clearable Gold Nanoparticles Strongly Correlate with Renal Injury Biomarkers

S Samira Ahrari (Department of Chemistry and Biochemistry The University of Texas at Dallas Richardson Texas 75080 USA) Y Yi Luo (State Key Laboratory of Green Chemical Engineering and Industrial Catalysis) X Xuhui Ning (Department of Chemistry and Biochemistry The University of Texas at Dallas Richardson Texas 75080 USA) Q Qi Cai N Nilum Rajora (Department of Internal Medicine, Division of Nephrology University of Texas Southwestern Medical Center Dallas Texas 75390 USA) R Ramesh Saxena (Department of Internal Medicine, Division of Nephrology University of Texas Southwestern Medical Center Dallas Texas 75390 USA) M Mengxiao Yu (Department of Chemistry and Biochemistry, The University of Texas at Dallas, 800 W. Campbell Rd., Richardson, Texas 75080, United States) J Jie Zheng (Key Laboratory of Radiation Physics and Technology, Ministry of Education, Institute of Nuclear Science and Technology)

Abstract

Abstract Renal‐clearable engineered nanoparticles are typically filtered through the glomeruli and transported along the renal tubules before entering the bladder. However, the effects of glomerular leakage and tubular injury, two common features of kidney diseases, on nanoparticle transport remain poorly understood. Herein, we investigated the blood retention, kidney accumulation, and renal clearance of Au₂₅(SG)₁₈ in a doxorubicin‐induced acute kidney injury (AKI) mouse model. By correlating its transport with proteinuria and urinary kidney injury molecule‐1 (KIM‐1), endogenous biomarkers of glomerular leakage and proximal tubular injury, respectively, we found that glomerular leakage, as indicated by a >50‐fold increase in proteinuria, did not enhance its blood clearance. Instead, tubular injury significantly reduced glomerular filtration, resulting in elevated blood retention, increased kidney accumulation, and reduced renal clearance of Au₂₅(SG)₁₈. Moreover, Au₂₅(SG)₁₈ blood retention exhibited a very strong positive correlation with urinary KIM‐1 (Pearson's coefficient r  = 0.90), much stronger than KIM‐1 correlations with conventional glomerular filtration blood markers such as serum creatinine. This suggests that Au₂₅(SG)₁₈ could serve as a sensitive exogenous blood marker of tubular injury, expanding the diagnostic potential of renal‐clearable nanoparticles in kidney diseases.

Article Details

Volume / Issue Vol. 64, Issue 34
Published August 18, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

S

Samira Ahrari

Department of Chemistry and Biochemistry The University of Texas at Dallas Richardson Texas 75080 USA

Y

Yi Luo

State Key Laboratory of Green Chemical Engineering and Industrial Catalysis

X

Xuhui Ning

Department of Chemistry and Biochemistry The University of Texas at Dallas Richardson Texas 75080 USA

Q

Qi Cai

N

Nilum Rajora

Department of Internal Medicine, Division of Nephrology University of Texas Southwestern Medical Center Dallas Texas 75390 USA

R

Ramesh Saxena

Department of Internal Medicine, Division of Nephrology University of Texas Southwestern Medical Center Dallas Texas 75390 USA

M

Mengxiao Yu

Department of Chemistry and Biochemistry, The University of Texas at Dallas, 800 W. Campbell Rd., Richardson, Texas 75080, United States

J

Jie Zheng

Key Laboratory of Radiation Physics and Technology, Ministry of Education, Institute of Nuclear Science and Technology