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New Ultrasound Technique Links Kidney Impairment in Dogs to Venous Congestion

September 20, 2026
in Biology
William Thompson
By William Thompson Scienmag Editorial Profile - Livestock Health and Welfare
Reading Time: 5 mins read
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New Ultrasound Technique Links Kidney Impairment in Dogs to Venous Congestion

New Ultrasound Technique Links Kidney Impairment in Dogs to Venous Congestion

New Ultrasound Technique Links Kidney Impairment in Dogs to Venous Congestion

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Dogs with heart disease often develop kidney problems, and veterinarians have long debated why. The traditional explanation blames a weak heart failing to pump enough blood to the kidneys, but a growing body of evidence points to a different culprit: congestion, the back-pressure of blood that builds up when the heart cannot efficiently receive venous return. A new study from Hokkaido University now provides some of the clearest evidence yet that in dogs with cardiac disease, the tiny blood vessels of the kidney lose perfusion largely because of venous congestion rather than reduced cardiac output, and it does so using a remarkable, contrast-free ultrasound technology called Superb Microvascular Imaging.

The research, published in the Journal of Veterinary Internal Medicine, was conducted by Risa Yasuda, Kensuke Nakamura, Noboru Sasaki, and colleagues at the Hokkaido University Veterinary Teaching Hospital. The team enrolled forty-three client-owned dogs: fifteen healthy controls, twenty-one dogs with cardiac disease but without signs of right-sided heart failure, and seven dogs with right-sided heart failure evidenced by fluid accumulation in the abdomen. All of the affected dogs carried diagnoses of myxomatous mitral valve disease or tricuspid regurgitation, the most common acquired cardiac conditions in dogs, and many also had pulmonary hypertension. The work was designed as a prospective cross-sectional observational study, meaning every animal was examined under the same protocol at a single point in time.

Superb Microvascular Imaging, or SMI, is a novel ultrasonographic technique that can visualize blood flowing through very small vessels without the injection of contrast agents. Conventional Doppler ultrasound struggles with slow, low-velocity flow in tiny vessels because background tissue motion and low-frequency artifacts obscure the signal. SMI overcomes this by applying advanced clutter-suppression algorithms that strip away tissue noise while maintaining a high frame rate, allowing it to depict microvascular flow that Doppler methods miss. In this study, the researchers used monochrome SMI to image the arcuate arteries along the ventral surface of the left kidney in awake, unsedated dogs, capturing cine loops with a linear transducer at a frame rate of at least forty frames per second and a velocity range of plus or minus 2.3 centimeters per second.

To turn those images into numbers, the team took a quantitative approach borrowed from earlier contrast-enhanced ultrasound work. For each dog, three cine loops were recorded, and the frame with maximal blood flow signal was selected from each. A polygonal region of interest was drawn over the ventral renal cortex, covering at least a quarter of the ventral interlobular vessel region. The images were converted to 8-bit grayscale values ranging from zero to 255, and the mean grayscale intensity of all pixels within the region was calculated. Averaging three measurements produced the key variable, SMI signal intensity, which served as an index of renal microvascular perfusion: brighter images meant more blood flowing through the cortical microvasculature.

The results were striking. Healthy control dogs had a median SMI signal intensity of 41.3, with a 95 percent confidence interval of 39.1 to 43.8. Dogs with cardiac disease but no signs of right-sided heart failure showed a median of 21.6, and dogs with right-sided heart failure showed 18.6. Both cardiac groups were significantly lower than controls, with P values below .001, and notably, the signal was already diminished in dogs that had not yet developed overt heart failure. Representative images showed a clear, progressive thinning of microvascular signals across the cortex from control to non-RHF to RHF animals, the kind of visual demonstration that makes the physiological story instantly legible.

To understand what was driving the perfusion loss, the researchers measured two hemodynamic indices. The first, the left ventricular outflow tract velocity-time integral obtained by pulsed-wave Doppler echocardiography, served as a surrogate for cardiac output, essentially how much blood the heart ejects with each beat. The second, the short-to-long axis ratio of the caudal vena cava measured at its minimal inspiratory diameter, served as an indicator of venous congestion: a rounder, distended vena cava implies elevated venous pressure backing up from the right side of the heart. The vena cava ratios rose from 0.28 in controls to 0.48 in non-RHF dogs and 0.79 in RHF dogs, while the velocity-time integral fell from 13.0 centimeters in controls to roughly 9 in the cardiac groups.

Correlation analysis revealed that SMI signal intensity was negatively correlated with the vena cava ratio, with a Spearman coefficient of minus 0.59 and a P value below .001, and positively correlated with the velocity-time integral at a coefficient of 0.43 and P equal to .007. But the decisive result came from a full multivariable regression model that adjusted for cardiac output, body weight, age, and serum creatinine concentration. In that model, only the vena cava ratio remained independently associated with renal microvascular perfusion, with a regression coefficient of minus 21.82 and P equal to .001. The model explained a moderate share of the variance, with an adjusted R-squared of 0.38, and diagnostics confirmed no serious multicollinearity or assumption violations. In plain terms, congestion, not the pumping strength of the heart, was the variable that best explained the loss of renal microvascular signal.

The authors place this finding in the context of what is already known about the cardiorenal syndrome, the bidirectional dysfunction of heart and kidney. Elevated right atrial pressure transmits back through the caudal vena cava into the renal veins, and experimental work has shown that raised renal venous pressure causes medullary edema and compression of the peritubular capillaries, choking off renal blood flow. Traditional clinical tools capture this poorly. Glomerular filtration rate requires serial blood sampling over hours; serum creatinine and symmetric dimethylarginine rise only after substantial function has already been lost; central venous catheterization is invasive and reflects systemic rather than organ-level hemodynamics. Intrarenal venous flow Doppler, a pulsed-wave technique, has been used to assess renal congestion, but more than half of human heart failure patients show no alterations in those waveforms, and similar limitations are reported in dogs. SMI appears to detect changes earlier because it samples the smaller interlobular vessels distributed throughout the renal parenchyma rather than the larger interlobar veins.

The study also suggests practical advantages over its closest rival, contrast-enhanced ultrasonography, which has previously demonstrated reduced renal enhancement in dogs with preclinical mitral valve disease. CEUS requires injection of a contrast agent and continuous imaging of the same region over a relatively long period, whereas an SMI image can be acquired in a few seconds of viewing the kidney in SMI mode, and operators competent in routine abdominal ultrasound can learn to obtain it without extensive additional training. Doppler techniques, meanwhile, are angle-dependent and demand careful probe positioning. In the present study, a subset of dogs showed markedly low SMI signal even while both the vena cava ratio and the velocity-time integral remained within normal ranges, hinting that local factors, possibly neurohumoral mechanisms such as activation of the renin-angiotensin-aldosterone system, also shape renal microvascular flow.

The authors are careful to acknowledge the limitations inherent in a clinical study. Dogs with elevated creatinine were excluded to minimize confounding by chronic kidney disease, but that criterion may have excluded animals with established cardiorenal syndrome. Actual glomerular filtration rate and renal blood flow were not measured, central venous pressure and cardiac output were estimated echocardiographically rather than invasively, and factors such as age, sex, hydration, and medication could not be fully standardized. The SMI operator was not blinded to clinical status. Even so, the study is the first to demonstrate reduced renal microvascular perfusion in clinical canine cardiac patients using a noninvasive, contrast-free technique, and to tie that reduction independently to venous congestion. The researchers propose that SMI could become a simple, minimally invasive tool for detecting early renal hemodynamic compromise in dogs with heart disease, and future work incorporating glomerular filtration rate measurements and neurohumoral markers should clarify how early and how reliably that detection can occur.

Subject of Research: Assessment of renal microvascular perfusion in dogs with cardiac disease using Superb Microvascular Imaging

Article Title: Evaluation of renal microvascular perfusion in dogs with cardiac disease using Superb Microvascular Imaging

Article References: Yasuda, R., Nakamura, K., Sasaki, N., Yokoyama, N., Sasaoka, K., Sugawara-Suda, M., Kawamoto, S., Shiohara, N., Kawakami, Y., Sato, K., & Takiguchi, M. (2026). Evaluation of renal microvascular perfusion in dogs with cardiac disease using Superb Microvascular Imaging. Journal of Veterinary Internal Medicine, 40(5), Article aalag198. https://doi.org/10.1093/jvimsj/aalag198

Image Credits: AI Generated

DOI: 10.1093/jvimsj/aalag198

Keywords: dogs, cardiac disease, renal perfusion, Superb Microvascular Imaging, venous congestion, cardiorenal syndrome, ultrasonography, echocardiography, myxomatous mitral valve disease, pulmonary hypertension, right-sided heart failure, caudal vena cava

Cite Scienmag News

William Thompson. (September 20, 2026). New Ultrasound Technique Links Kidney Impairment in Dogs to Venous Congestion. Scienmag. https://scienmag.com/new-ultrasound-technique-links-kidney-impairment-in-dogs-to-venous-congestion/

William Thompson. "New Ultrasound Technique Links Kidney Impairment in Dogs to Venous Congestion." Scienmag, 20 September 2026, https://scienmag.com/new-ultrasound-technique-links-kidney-impairment-in-dogs-to-venous-congestion/. Accessed 20 September 2026.

William Thompson. "New Ultrasound Technique Links Kidney Impairment in Dogs to Venous Congestion." Scienmag. September 20, 2026. https://scienmag.com/new-ultrasound-technique-links-kidney-impairment-in-dogs-to-venous-congestion/

Tags: canine venous congestioncardiac diseasecardiorenal syndromecaudal vena cavacontrast-free ultrasound techniques for petsdiagnosis of canine renal perfusion issuesdog kidney impairmentdogsechocardiographyheart disease and kidney failure in dogsimpact of right-sided heart failure in dogsmyxomatous mitral valve diseasemyxomatous mitral valve disease in dogspulmonary hypertensionrenal perfusionright-sided heart failuresuperb microvascular imagingSuperb Microvascular Imaging in dogstricuspid regurgitation and kidney healthultrasonographyultrasound imaging in veterinary medicinevenous congestionvenous congestion vs cardiac output in dogsveterinary study on kidney blood flow
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