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Updated: May 30, 2026

Single-channel Analysis and Calcium Imaging in the Podocytes of the Freshly Isolated Glomeruli
Published on: June 27, 2015
Calcium mediates glomerular filtration through calcineurin and mTORC2/Akt signaling
John Vassiliadis1, Christina Bracken, Douglas Matthews
1Endocrine and Renal Science, Genzyme Corporation, Framingham, MA 01701, USA. john.vassiliadis@genzyme.com
Abstract:
Alterations to the structure of the glomerular filtration barrier lead to effacement of podocyte foot processes, leakage of albumin, and the development of proteinuria. To better understand the signaling pathways involved in the response of the glomerular filtration barrier to injury, we studied freshly isolated rat glomeruli, which allows for the monitoring and pharmacologic manipulation of early signaling events. Administration of protamine sulfate rapidly damaged the isolated glomeruli, resulting in foot process effacement and albumin leakage. Inhibition of calcium channels and chelation of extracellular calcium reduced protamine sulfate-induced damage, suggesting that calcium signaling plays a critical role in the initial stages of glomerular injury. Calcineurin inhibitors (FK506 and cyclosporine A) and the cathepsin L inhibitor E64 all inhibited protamine sulfate-mediated barrier changes, which suggests that calcium signaling acts, in part, through calcineurin- and cathepsin L-dependent cleavage of synaptopodin, a regulator of actin dynamics. The mTOR inhibitor rapamycin also protected glomeruli, demonstrating that calcium signaling has additional calcineurin-independent components. Furthermore, activation of Akt through mTOR had a direct role on glomerular barrier integrity, and activation of calcium channels mediated this process, likely independent of phosphoinositide 3-kinase. Taken together, these results demonstrate the importance of calcium and related signaling pathways in the structure and function of the glomerular filtration barrier.
Insights
Calcium signaling is crucial for maintaining glomerular filtration barrier integrity. This study reveals its role in podocyte injury and identifies key pathways like calcineurin and mTOR involved in kidney protection.
Area of Science:
- Nephrology
- Cellular Biology
- Molecular Signaling
Background:
- Glomerular filtration barrier damage causes podocyte effacement, albuminuria, and proteinuria.
- Understanding early signaling in glomerular injury is vital for therapeutic development.
Purpose of the Study:
- To investigate the role of calcium signaling in early glomerular injury.
- To identify specific molecular pathways involved in protecting the glomerular filtration barrier.
Main Methods:
- Isolated rat glomeruli were used to study early signaling events.
- Protamine sulfate induced rapid glomerular damage, mimicking injury.
- Pharmacologic inhibitors targeted calcium channels, calcineurin, cathepsin L, and mTOR.
Main Results:
- Calcium channel inhibition and chelation reduced protamine sulfate-induced damage.
- Calcineurin inhibitors (FK506, cyclosporine A) and E64 blocked barrier changes, implicating synaptopodin cleavage.
- mTOR inhibition (rapamycin) and Akt activation also protected glomeruli, highlighting calcineurin-independent pathways.
Conclusions:
- Calcium signaling is critical in the initial stages of glomerular injury.
- Pathways involving calcineurin, cathepsin L, synaptopodin, mTOR, and Akt are key to maintaining glomerular barrier integrity.
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