Intrinsic proinflammatory signaling in podocytes contributes to podocyte damage and prolonged proteinuria

Author:

Brähler Sebastian1,Ising Christina1,Hagmann Henning1,Rasmus Melanie1,Hoehne Martin1,Kurschat Christine1,Kisner Tuelay1,Goebel Heike2,Shankland Stuart3,Addicks Klaus4,Thaiss Friedrich5,Schermer Bernhard16,Pasparakis Manolis76,Benzing Thomas16,Brinkkoetter Paul Thomas1

Affiliation:

1. Department II of Internal Medicine and Center for Molecular Medicine, University of Cologne, Cologne, Germany;

2. Institute of Pathology, University of Cologne, Cologne, Germany;

3. Division of Nephrology, University of Washington, Seattle, Washington;

4. Institute of Anatomy, University of Cologne, Cologne, Germany;

5. Department of Internal Medicine III, University Hospital, Hamburg-Eppendorf, Hamburg, Germany;

6. Cologne Excellence Cluster on Cellular Stress Responses in Aging-Associated Diseases, University of Cologne, Cologne, Germany

7. Institute for Genetics, University of Cologne, Cologne, Germany; and

Abstract

Inflammation conveys the development of glomerular injury and is a major cause of progressive kidney disease. NF-κB signaling is among the most important regulators of proinflammatory signaling. Its role in podocytes, the epithelial cells at the kidney filtration barrier, is poorly understood. Here, we inhibited NF-κB signaling in podocytes by specific ablation of the NF-κB essential modulator (NEMO, IKKγ). Podocyte-specific NEMO-deficient mice (NEMOpko) were viable and did not show proteinuria or overt changes in kidney morphology. After induction of glomerulonephritis, both NEMOpkoand control mice developed significant proteinuria. However, NEMOpkomice recovered much faster, showing rapid remission of proteinuria and restoration of podocyte morphology. Interestingly, quantification of infiltrating macrophages, T-lymphocytes, and granulocytes at day 7 revealed no significant difference between wild-type and NEMOpko. To further investigate the underlying mechanisms, we created a stable NEMO knockdown mouse podocyte cell line. Again, no overt changes in morphology were observed. Translocation of NF-κB to the nucleus after stimulation with TNFα or IL-1 was sufficiently inhibited. Moreover, secretion of proinflammatory chemokines from podocytes after stimulation with TNFα or IL-1 was significantly reduced in NEMO-deficient podocytes and in glomerular samples obtained at day 7 after induction of nephrotoxic nephritis. Collectively, these results show that proinflammatory activity of NF-κB in podocytes aggravates proteinuria in experimental glomerulonephritis in mice. Based on these data, it may be speculated that immunosuppressive drugs may not only target professional immune cells but also podocytes directly to convey their beneficial effects in various types of glomerulonephritis.

Publisher

American Physiological Society

Subject

Physiology

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