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A flexible, multilayered protein scaffold maintains the slit in between glomerular podocytes
Florian Grahammer, Christoph Wigge, Christoph Schell, Oliver Kretz, Jaakko Patrakka, Simon Schneider, Martin Klose, Julia Kind, Sebastian J. Arnold, Anja Habermann, Ricarda Bräuniger, Markus M. Rinschen, Linus Völker, Andreas Bregenzer, Dennis Rubbenstroth, Melanie Boerries, Dontscho Kerjaschki, Jeffrey H. Miner, Gerd Walz, Thomas Benzing, Alessia Fornoni, Achilleas S. Frangakis, Tobias B. Huber
Florian Grahammer, Christoph Wigge, Christoph Schell, Oliver Kretz, Jaakko Patrakka, Simon Schneider, Martin Klose, Julia Kind, Sebastian J. Arnold, Anja Habermann, Ricarda Bräuniger, Markus M. Rinschen, Linus Völker, Andreas Bregenzer, Dennis Rubbenstroth, Melanie Boerries, Dontscho Kerjaschki, Jeffrey H. Miner, Gerd Walz, Thomas Benzing, Alessia Fornoni, Achilleas S. Frangakis, Tobias B. Huber
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Research Article Nephrology

A flexible, multilayered protein scaffold maintains the slit in between glomerular podocytes

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Abstract

Vertebrate life critically depends on renal filtration and excretion of low molecular weight waste products. This process is controlled by a specialized cell-cell contact between podocyte foot processes: the slit diaphragm (SD). Using a comprehensive set of targeted KO mice of key SD molecules, we provided genetic, functional, and high-resolution ultrastructural data highlighting a concept of a flexible, dynamic, and multilayered architecture of the SD. Our data indicate that the mammalian SD is composed of NEPHRIN and NEPH1 molecules, while NEPH2 and NEPH3 do not participate in podocyte intercellular junction formation. Unexpectedly, homo- and heteromeric NEPHRIN/NEPH1 complexes are rarely observed. Instead, single NEPH1 molecules appear to form the lower part of the junction close to the glomerular basement membrane with a width of 23 nm, while single NEPHRIN molecules form an adjacent junction more apically with a width of 45 nm. In both cases, the molecules are quasiperiodically spaced 7 nm apart. These structural findings, in combination with the flexibility inherent to the repetitive Ig folds of NEPHRIN and NEPH1, indicate that the SD likely represents a highly dynamic cell-cell contact that forms an adjustable, nonclogging barrier within the renal filtration apparatus.

Authors

Florian Grahammer, Christoph Wigge, Christoph Schell, Oliver Kretz, Jaakko Patrakka, Simon Schneider, Martin Klose, Julia Kind, Sebastian J. Arnold, Anja Habermann, Ricarda Bräuniger, Markus M. Rinschen, Linus Völker, Andreas Bregenzer, Dennis Rubbenstroth, Melanie Boerries, Dontscho Kerjaschki, Jeffrey H. Miner, Gerd Walz, Thomas Benzing, Alessia Fornoni, Achilleas S. Frangakis, Tobias B. Huber

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Figure 5

Evolutionary concept of a NEPH1-based SD formation in birds.

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Evolutionary concept of a NEPH1-based SD formation in birds.
(A) Phyloge...
(A) Phylogenetic analysis of Nphs1 and Neph1 throughout the animal kingdom. (B and C) Coelacanths contain both genes, whereas Nphs1 was lost only in birds. TEM reveals that foot processes are evenly spaced, and multiple layers of slit diaphragms can be detected in Gallus gallus. (D) Analysis of SD width illustrates that the chicken SD is similar to the one found in human CNS (hCNS), while mice have an SD containing both narrow and wide cell-cell junctions (chicken, n = 391; human, n = 77; mouse NEPH1, n = 360; NEPHRIN, n = 77; all n quantities refer to individual measurements in at least n = 3 different biological samples). ****P < 0.0001 by ANOVA. (E–G) Light microscopy images demonstrate that podocyte cell bodies in G. gallus are found more toward the edge of the glomerular field directly opposite Bowman’s capsule, whereas SEM reveals broadened primary and shortened secondary foot processes compared with mice. (H–L) Established SD molecules — including PODOCIN, NEPH1, ZO-1, CD2AP, and TRPC6 — can be detected at the chicken SD. Arrows indicate immunogold particles. (M and N) High-resolution SEM of mouse glomeruli reveals individual strands of molecules crossing the slit above an interwoven molecular mesh situated in the lower part of this intercellular junction. (O and P) Chicken glomeruli contain the mesh but lack the individual strands. Boxes in M and O indicate magnified area shown in N and P, respectively.

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