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Updated: Jan 28, 2026

Transdermal Measurement of Glomerular Filtration Rate in Mice
Published on: October 21, 2018
Glomerular filtrate proteins in acute cardiorenal syndrome
Rumie Wakasaki1, Katsuyuki Matsushita1, Kirsti Golgotiu1
1Anesthesiology & Perioperative Medicine, Oregon Health & Science University, Portland, Oregon, USA.
Insights
Researchers identified cardiac-specific proteins in kidney filtrate after cardiac arrest and resuscitation, suggesting a new signaling pathway for cardiorenal syndrome (CRS-1). This discovery advances understanding of heart-kidney interactions in critical illness.
Area of Science:
- Biomedical Science
- Cardiology
- Nephrology
Background:
- Acute cardiorenal syndrome (CRS-1) is a severe complication of cardiovascular disease.
- Previous research into CRS-1 has been hindered by technical limitations and a lack of suitable models.
Purpose of the Study:
- To develop a translational model for studying CRS-1.
- To investigate protein filtration in glomerular filtrate following cardiac arrest and cardiopulmonary resuscitation (CA/CPR).
Main Methods:
- Development of a translational CA/CPR model.
- Nanoscale mass spectrometry proteomic analysis of glomerular filtrate 2 hours post-CA/CPR or sham procedure.
- Confirmation of filtrate acquisition and protein identification using various techniques, including mass spectrometry on urine from mice with deficient tubular endocytosis.
Main Results:
- Proteins specific to the heart were detected in the glomerular filtrate after CA/CPR.
- Cardiac LIM protein was identified as a CA/CPR-specific filtrate component.
- Cardiac arrest led to plasma release of cardiac LIM protein in mice and human survivors; administration of this protein affected renal function in mice.
Conclusions:
- Glomerular filtrate is accessible to nanoscale proteomics, revealing filtered proteins after CA/CPR.
- The presence of cardiac-specific proteins in renal filtrate suggests a novel signaling mechanism in CRS-1.
- These findings provide new insights into the pathophysiology of CRS-1 and heart-kidney crosstalk.
Abstract:
Acute cardiorenal syndrome (CRS-1) is a morbid complication of acute cardiovascular disease. Heart-to-kidney signals transmitted by "cardiorenal connectors" have been postulated, but investigation into CRS-1 has been limited by technical limitations and a paucity of models. To address these limitations, we developed a translational model of CRS-1, cardiac arrest and cardiopulmonary resuscitation (CA/CPR), and now report findings from nanoscale mass spectrometry proteomic exploration of glomerular filtrate 2 hours after CA/CPR or sham procedure. Filtrate acquisition was confirmed by imaging, molecular weight and charge distribution, and exclusion of protein specific to surrounding cells. Filtration of proteins specific to the heart was detected following CA/CPR and confirmed with mass spectrometry performed using urine collections from mice with deficient tubular endocytosis. Cardiac LIM protein was a CA/CPR-specific filtrate component. Cardiac arrest induced plasma release of cardiac LIM protein in mice and critically ill human cardiac arrest survivors, and administration of recombinant cardiac LIM protein to mice altered renal function. These findings demonstrate that glomerular filtrate is accessible to nanoscale proteomics and elucidate the population of proteins filtered 2 hours after CA/CPR. The identification of cardiac-specific proteins in renal filtrate suggests a novel signaling mechanism in CRS-1. We expect these findings to advance understanding of CRS-1.
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