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Ultrasound Localization Microscopy in Patient With Congenital Anomalies of the Kidney and Urinary Tract (CAKUT)

Non-invasive Evaluation of Kidneys in Patient With Congenital Anomalies of the Kidney and Urinary Tract (CAKUT) Using Ultrasound Localization Microscopy

Status
Recruiting
Phases
Unknown
Study type
Observational
Source
ClinicalTrials.gov
Registry ID
NCT06921733
Acronym
Search_CAKUT
Enrollment
20
Registered
2025-04-10
Start date
2025-05-13
Completion date
2027-12-01
Last updated
2025-09-17

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Congenital Anomalies of Kidney and Urinary Tract, Hydronephrosis Congenital, Lower Urinary Tract Obstruction, Congenital, Ureteropelvic Junction Obstruction

Brief summary

This clinical study aims to non-invasively visualize perfusion and microvascularization, as well as individual glomeruli, using Ultrasound Localization Microscopy (ULM) and CEUS in patients with congenital anomalies of the kidney and urinary tract (CAKUT).

Detailed description

Congenital anomalies of the kidney and urinary tract (CAKUT) affect 0.5% of newborns and account for 20% of all congenital malformations. These conditions are associated with chronic kidney failure, a need for dialysis, and significantly increased mortality (30 times higher than healthy peers) and morbidity. Patients with CAKUT face substantial health and socioeconomic burdens due to lifelong therapy requirements. In Europe, CAKUT is the leading cause of dialysis-dependent chronic kidney failure. All CAKUT disorders arise in utero, interfering with kidney development and leading to reduced nephron formation. Many congenital kidney anomalies are diagnosed via prenatal ultrasound. These anomalies include ureteropelvic junction obstruction, often presenting as unilateral hydronephrosis, and posterior urethral valves, which can be associated with megacystis and bilateral hydronephrosis. The resulting urinary obstruction can cause pressure damage to kidney tissue during fetal development, further reducing functional nephron mass. Postnatally, ongoing pressure damage can lead to renal remodeling. The decreased nephron mass and remodeling increase the long-term risk of kidney insufficiency, which is currently assessed only by serum creatinine levels-these are delayed and less sensitive in infants and young children. Reliable biomarkers for reduced nephron mass or renal remodeling to predict chronic kidney injury risk in CAKUT patients are currently lacking. Currently, the actual pressure impact of sonographically detectable urinary obstruction can only be assessed through urine flow patterns using MAG-3 scintigraphy. However, this method is dependent on kidney function, which can affect the uptake and excretion of the radiopharmaceutical and subsequently influence the evaluation of results. The intravenous use of ultrasound contrast enhancers as an aid opens up the possibility of recording the tissue perfusion of the kidneys, including the smallest vessels, independent of the kidney function. This could provide significantly more information compared to conventional methods and expand our knowledge of the pathophysiology and individual status of tissue perfusion in patients. In this clinical study, the new CEUS measurement and imaging technique will be used after the kidney scintigraphy. A contrast agent (SonoVue®) will be administered during the routine ultrasound examination and improved tissue visualization will be achieved. The aim is to gain new insights into kidney perfusion as part of the treatment and to better assess the extent of organ damage in the individual patient through more specific vascular imaging. Finally, the aim is to compare diagnostic and prognostic methods with the currently recommended measures. The CEUS is to be examined as a possible diagnostic imaging tool and possibly a supplement to existing diagnostic methods.

Interventions

CEUS is a contrast based ultrasound technique and ULM (Ultrasound Localization Microscopy) is a post-processing bioinformatical method to quantify microvascular architecture and perfusion dynamics.

Sponsors

University of Erlangen-Nürnberg Medical School
Lead SponsorOTHER

Study design

Observational model
COHORT
Time perspective
PROSPECTIVE

Eligibility

Sex/Gender
ALL
Age
0 Months to 6 Years
Healthy volunteers
No

Inclusion criteria

Minimum Age 1 Month Maximum Age 6 Years Indication for MAG3 Scintigraphy of the Kidney Congenital Anomalies of the Kidney and Urinary Tract Obstruction Diagnosis Availability of the qualified examiner Consent of the parents/legal guardians

Exclusion criteria

Lack of consent of at least one parent

Design outcomes

Primary

MeasureTime frameDescription
Visualization and quantification of glomeruli in the kidney with ULMBaseline and follow up (1-31 days after routine surgery if indicated)ULM imaging for glomeruli in the kidney
CEUS Measurement1Baseline and follow up (1-31 days after routine surgery if indicated)PE (Peak-Enhancement)
CEUS Time intensity curvesBaseline and follow up (1-31 days after routine surgery if indicated)All CEUS outcomes will be generated in order to achieve time intensity curves in contrast enhanced ultrasound analysis
CEUS Measurement2Baseline and follow up (1-31 days after routine surgery if indicated)WiAUC (Wash-in Area Under the Curve (AUC(TI: TTP)))
CEUS Measurement4Baseline and follow up (1-31 days after routine surgery if indicated)RT (Rise Time)
CEUS Measurement5Baseline and follow up (1-31 days after routine surgery if indicated)mTT (mean Transit Time local) (mTT-TI))
CEUS Measurement6Baseline and follow up (1-31 days after routine surgery if indicated)TTP (Time to Peak)
CEUS Measurement7Baseline and follow up (1-31 days after routine surgery if indicated)WiR (Wash-in-Rate )
CEUS Measurement8Baseline and follow up (1-31 days after routine surgery if indicated)WiPI (Wash-in Perfusion Index (WiAUC/RT))
CEUS Measurement9Baseline and follow up (1-31 days after routine surgery if indicated)WoAUC (Wash-out AUC (AUC(TTP:TO)))
CEUS Measurement10Baseline and follow up (1-31 days after routine surgery if indicated)WiWoAUC (Wash-in- und Wash-out-AUC (WiAUC+WoAUC))
CEUS Measurement11Baseline and follow up (1-31 days after routine surgery if indicated)FT (Fall Time - (TO-TTP))
CEUS Measurement12Baseline and follow up (1-31 days after routine surgery if indicated)WOR (Wash-out-Rate) QOF (Quality Of Fit between the echo-power signal and f(t)
CEUS Measurement13Baseline and follow up (1-31 days after routine surgery if indicated)QOF (Quality Of Fit between the echo-power signal and f(t)
Visualization and quantification of kidney perfusion with CEUSBaseline and follow up (1-31 days after routine surgery if indicated)CEUS imaging for kidney perfusion in CAKUT
Visualization and quantification of kidney mikrovaskularisation with ULMBaseline and follow up (1-31 days after routine surgery if indicated)ULM imaging for kidney perfusion and mikrovaskularisation in CAKUT

Secondary

MeasureTime frameDescription
ULM and CEUSBaseline and follow up (1-31 days after routine surgery if indicated)Correlation of the vascular architecture visualized by ULM and parameters of quantified microvascular perfusion dynamics of the kidney (e.g., number of segmented glomeruli) with parameters of contrast-enhanced ultrasound (CEUS).
ULM and BiopsyBaseline and follow up (1-31 days after routine surgery if indicated)Correlation of the vascular architecture visualized by ULM and parameters of quantified microvascular perfusion dynamics of the kidney (including the number of segmented glomeruli) with histological parameters.
ULM on affected and unaffected kidneyBaseline and follow up (1-31 days after routine surgery if indicated)Comparison of the vascular architecture visualized by ULM and parameters of quantified microvascular perfusion dynamics of the kidney (e.g., number of segmented glomeruli) between the affected and unaffected kidney in the same patient.
ULM and ScintigraphyBaseline and follow up (1-31 days after routine surgery if indicated)Correlation of the vascular architecture visualized by ULM and parameters of quantified microvascular perfusion dynamics of the kidney (e.g., number of segmented glomeruli) with parameters from renal scintigraphy (e.g., perfusion parameters).
Pressure changes with CEUSBaseline and follow up (1-31 days after routine surgery if indicated)Visualization of pressure changes in the kidney using the vascular architecture visualized by CEUS and parameters of quantified microvascular perfusion dynamics.
Pressure changes with ULMBaseline and follow up (1-31 days after routine surgery if indicated)Visualization of pressure changes in the kidney using the vascular architecture visualized by ULM and parameters of quantified microvascular perfusion dynamics.
Comparison of the kidney before and after intervention with ULMBaseline and follow up (1-31 days after routine surgery if indicated)Comparison of the vascular architecture visualized by ULM and parameters of quantified microvascular perfusion dynamics of the kidney (e.g., number of segmented glomeruli) before and after intervention
ULM on different diagnosesBaseline and follow up (1-31 days after routine surgery if indicated)Comparison of the vascular architecture visualized by ULM and parameters of quantified microvascular perfusion dynamics of the kidney (e.g., number of segmented glomeruli) between different diagnoses.
ULM on clinical outcomesBaseline and follow up (1-31 days after routine surgery if indicated)Correlation and comparison of the vascular architecture visualized by ULM and parameters of quantified microvascular perfusion dynamics of the kidney (e.g., number of segmented glomeruli) with clinical criteria and clinical outcomes (surgical success).
Correlation between ULM and laboratory parametersBaseline and follow up (1-31 days after routine surgery if indicated)Correlation of the vascular architecture visualized by ULM and parameters of quantified microvascular perfusion dynamics of the kidney (e.g., number of segmented glomeruli) with laboratory parameters (including kidney function parameters, inflammatory markers, and immunological parameters).
Assessment of renal function GFRBaseline and follow up (1-31 days after routine surgery if indicated)GFR (ml/min/1,73 m2)
Assessment of renal function ureaBaseline and follow up (1-31 days after routine surgery if indicated)urea (mg/dl)
Assessment of renal function urinary statusBaseline and follow up (1-31 days after routine surgery if indicated)standardized urinary status
Assesment of renal function kreatininekinaseBaseline and follow up (1-31 days after routine surgery if indicated)kreatininekinase (U/l)
ULM and UltrasoundBaseline and follow up (1-31 days after routine surgery if indicated)Correlation of the vascular architecture visualized by ULM and parameters of quantified microvascular perfusion dynamics of the kidney (e.g., number of segmented glomeruli) with sonographic parameters (including Resistance Index (RI), flow velocity).

Countries

Germany

Contacts

Primary ContactRegensburger Regensburger, PD Dr. med. Dr. rer. biol. Hum
adrian.regensburger@uk-erlangen.de091318541732
Backup ContactDr. med. Alina Hilger
alina.hilger@uk-erlangen.de

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026