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Updated: Mar 23, 2026

Early Detection of Drug-Induced Renal Hemodynamic Dysfunction Using Sonographic Technology in Rats
Published on: March 11, 2016
Early Detection of Drug-Induced Renal Hemodynamic Dysfunction Using Sonographic Technology in Rats
Sudeshna Fisch1, Ronglih Liao1, Li-Li Hsiao2
1Cardiac Muscle Research Laboratory, Cardiovascular Division, Brigham and Women's Hospital, Harvard Medical School.
Abstract:
The kidney normally functions to maintain hemodynamic homeostasis and is a major site of damage caused by drug toxicity. Drug-induced nephrotoxicity is estimated to contribute to 19- 25% of all clinical cases of acute kidney injury (AKI) in critically ill patients. AKI detection has historically relied on metrics such as serum creatinine (sCr) or blood urea nitrogen (BUN) which are demonstrably inadequate in full assessment of nephrotoxicity in the early phase of renal dysfunction. Currently, there is no robust diagnostic method to accurately detect hemodynamic alteration in the early phase of AKI while such alterations might actually precede the rise in serum biomarker levels. Such early detection can help clinicians make an accurate diagnosis and help in in decision making for therapeutic strategy. Rats were treated with Cisplatin to induce AKI. Nephrotoxicity was assessed for six days using high-frequency sonography, sCr measurement and upon histopathology of kidney. Hemodynamic evaluation using 2D and Color-Doppler images were used to serially study nephrotoxicity in rats, using the sonography. Our data showed successful drug-induced kidney injury in adult rats by histological examination. Color-Doppler based sonographic assessment of AKI indicated that resistive-index (RI) and pulsatile-index (PI) were increased in the treatment group; and peak-systolic velocity (mm/s), end-diastolic velocity (mm/s) and velocity-time integral (VTI, mm) were decreased in renal arteries in the same group. Importantly, these hemodynamic changes evaluated by sonography preceded the rise of sCr levels. Sonography-based indices such as RI or PI can thus be useful predictive markers of declining renal function in rodents. From our sonography-based observations in the kidneys of rats that underwent AKI, we showed that these noninvasive hemodynamic measurements may consider as an accurate, sensitive and robust method in detecting early stage kidney dysfunction. This study also underscores the importance of ethical issues associated with animal use in research.
Insights
Early detection of acute kidney injury (AKI) is crucial. Sonography revealed hemodynamic changes in rat kidneys before serum creatinine levels rose, offering a new diagnostic approach.
Area of Science:
- Nephrology
- Medical Imaging
- Pharmacology
Background:
- Drug-induced nephrotoxicity is a significant cause of acute kidney injury (AKI), contributing to 19-25% of cases in critically ill patients.
- Current AKI detection methods (serum creatinine, BUN) are inadequate for early diagnosis of renal dysfunction.
- Early detection of hemodynamic alterations is needed for timely diagnosis and therapeutic decisions.
Purpose of the Study:
- To evaluate the efficacy of high-frequency sonography with 2D and Color-Doppler imaging in detecting early-stage drug-induced kidney injury.
- To assess hemodynamic changes in renal arteries as potential early biomarkers of AKI.
- To compare sonographic findings with serum creatinine levels and histopathology in a rat model.
Main Methods:
- Acute kidney injury was induced in rats using Cisplatin.
- Nephrotoxicity was monitored for six days using high-frequency sonography, serum creatinine (sCr) measurements, and kidney histopathology.
- 2D and Color-Doppler sonography were employed to assess renal artery hemodynamics, including resistive index (RI), pulsatile index (PI), peak-systolic velocity, end-diastolic velocity, and velocity-time integral (VTI).
Main Results:
- Histological examination confirmed successful induction of kidney injury in the Cisplatin-treated rats.
- Sonographic assessment revealed increased RI and PI, and decreased peak-systolic velocity, end-diastolic velocity, and VTI in the renal arteries of the treatment group.
- These sonographically detected hemodynamic changes preceded the elevation of serum creatinine levels.
Conclusions:
- Sonography-based hemodynamic indices, such as RI and PI, are sensitive and robust noninvasive markers for detecting early-stage kidney dysfunction.
- This noninvasive sonographic approach offers a valuable tool for predicting declining renal function in AKI.
- The study highlights the importance of ethical considerations in animal research.
Related Concept Videos
Acute Kidney Injury IV: Diagnostic Studies and Prevention
Imaging Studies II: Ultrasonography

