» Articles » PMID: 36816428

Super-Resolution Microscopy: A Technique to Revolutionize Research and Diagnosis of Glomerulopathies

Overview
Journal Glomerular Dis
Specialty Nephrology
Date 2023 Feb 23
PMID 36816428
Authors
Affiliations
Soon will be listed here.
Abstract

Background: For decades, knowledge about glomerular (patho)physiology has been tightly linked with advances in microscopic imaging technology. For example, the invention of electron microscopy was required to hypothesize about the mode of glomerular filtration barrier function.

Summary: Super-resolution techniques, defined as fluorescence microscopy approaches that surpass the optical resolution limit of around 200 nm, have been made available to the scientific community. Several of these different techniques are currently in use in glomerular research. Using three-dimensional structured illumination microscopy, the exact morphology of the podocyte filtration slit can be morphometrically analyzed and quantitatively compared across samples originating from animal models or human biopsies.

Key Messages: Several quantitative image analysis approaches and their potential influence on glomerular research and diagnostics are discussed. By improving not only optical resolution but also information content and turnaround time, super-resolution microscopy has the potential to expand the diagnosis of glomerular disease. Soon, these approaches could be introduced into glomerular disease diagnosis.

Citing Articles

Super-resolved highly multiplexed immunofluorescence imaging for precise protein localization and podocyte ultrastructure.

Siegerist F, Kitzel S, Telli N, Dikou J, Drenic V, Chadjichristos C J Cell Mol Med. 2024; 28(18):e70066.

PMID: 39334561 PMC: 11436374. DOI: 10.1111/jcmm.70066.


Ultrastructure expansion microscopy (U-ExM) of mouse and human kidneys for analysis of subcellular structures.

Langner E, Puapatanakul P, Pudlowski R, Yaseen Alsabbagh D, Miner J, Horani A Cytoskeleton (Hoboken). 2024; 81(11):618-638.

PMID: 38715433 PMC: 11540979. DOI: 10.1002/cm.21870.


Development of an automated estimation of foot process width using deep learning in kidney biopsies from patients with Fabry, minimal change, and diabetic kidney diseases.

Smerkous D, Mauer M, Tondel C, Svarstad E, Gubler M, Nelson R Kidney Int. 2023; 105(1):165-176.

PMID: 37774924 PMC: 10842003. DOI: 10.1016/j.kint.2023.09.011.

References
1.
Lin M, Miller J, Kikkawa Y, Suleiman H, Tryggvason K, Hodges B . Laminin-521 Protein Therapy for Glomerular Basement Membrane and Podocyte Abnormalities in a Model of Pierson Syndrome. J Am Soc Nephrol. 2018; 29(5):1426-1436. PMC: 5967757. DOI: 10.1681/ASN.2017060690. View

2.
Ruotsalainen V, Ljungberg P, WARTIOVAARA J, Lenkkeri U, Kestila M, Jalanko H . Nephrin is specifically located at the slit diaphragm of glomerular podocytes. Proc Natl Acad Sci U S A. 1999; 96(14):7962-7. PMC: 22170. DOI: 10.1073/pnas.96.14.7962. View

3.
Govind D, Becker J, Miecznikowski J, Rosenberg A, Dang J, Tharaux P . PodoSighter: A Cloud-Based Tool for Label-Free Podocyte Detection in Kidney Whole-Slide Images. J Am Soc Nephrol. 2021; 32(11):2795-2813. PMC: 8806084. DOI: 10.1681/ASN.2021050630. View

4.
Nehme E, Freedman D, Gordon R, Ferdman B, Weiss L, Alalouf O . DeepSTORM3D: dense 3D localization microscopy and PSF design by deep learning. Nat Methods. 2020; 17(7):734-740. PMC: 7610486. DOI: 10.1038/s41592-020-0853-5. View

5.
Schneeberger E, Levey R, McCluskey R, Karnovsky M . The isoporous substructure of the human glomerular slit diaphragm. Kidney Int. 1975; 8(1):48-52. DOI: 10.1038/ki.1975.75. View