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Published on: May 31, 2016
Interstitial calcinosis in renal papillae of genetically engineered mouse models: relation to Randall's plaques
1Departments of Urology and Pathology, New York University School of Medicine, 550 First Avenue, New York, NY, 10016, USA, xue-ru.wu@med.nyu.edu.
Abstract:
Genetically engineered mouse models (GEMMs) have been highly instrumental in elucidating gene functions and molecular pathogenesis of human diseases, although their use in studying kidney stone formation or nephrolithiasis remains relatively limited. This review intends to provide an overview of several knockout mouse models that develop interstitial calcinosis in the renal papillae. Included herein are mice deficient for Tamm-Horsfall protein (THP; also named uromodulin), osteopontin (OPN), both THP and OPN, Na(+)-phosphate cotransporter Type II (Npt2a) and Na(+)/H(+) exchanger regulatory factor (NHERF-1). The baseline information of each protein is summarized, along with key morphological features of the interstitial calcium deposits in mice lacking these proteins. Attempts are made to correlate the papillary interstitial deposits found in GEMMs with Randall's plaques, the latter considered precursors of idiopathic calcium stones in patients. The pathophysiology that underlies the renal calcinosis in the knockout mice is also discussed wherever information is available. Not all the knockout models are allocated equal space because some are more extensively characterized than others. Despite the inroads already made, the exact physiological underpinning, origin, evolution and fate of the papillary interstitial calcinosis in the GEMMs remain incompletely defined. Greater investigative efforts are warranted to pin down the precise role of the papillary interstitial calcinosis in nephrolithiasis using the existing models. Additionally, more sophisticated, second-generation GEMMs that allow gene inactivation in a time-controlled manner and "compound mice" that bear several genetic alterations are urgently needed, in light of mounting evidence that nephrolithiasis is a multifactorial, multi-stage and polygenic disease.
Insights
Genetically engineered mouse models reveal insights into kidney stone formation by studying interstitial calcinosis. These models, focusing on proteins like Tamm-Horsfall protein and osteopontin, aid in understanding nephrolithiasis pathogenesis.
Area of Science:
- Nephrology
- Genetics
- Molecular Biology
Background:
- Genetically engineered mouse models (GEMMs) are valuable for disease research but underutilized for nephrolithiasis.
- Interstitial calcinosis in renal papillae is a key feature studied in GEMMs.
Purpose of the Study:
- To review GEMMs exhibiting interstitial calcinosis in renal papillae.
- To correlate these findings with Randall's plaques, precursors to idiopathic calcium stones.
Main Methods:
- Overview of knockout mouse models deficient in Tamm-Horsfall protein (THP), osteopontin (OPN), or both.
- Inclusion of models lacking Na(+)-phosphate cotransporter Type II (Npt2a) and Na(+)/H(+) exchanger regulatory factor (NHERF-1).
- Summary of protein functions and morphological features of calcium deposits.
Main Results:
- Specific GEMMs develop interstitial calcinosis, offering insights into kidney stone precursors.
- Pathophysiology of renal calcinosis in knockout mice is discussed.
- Varied characterization levels exist across different GEMMs.
Conclusions:
- GEMMs provide a platform for studying nephrolithiasis, particularly papillary interstitial calcinosis.
- Further research is needed to fully define the role of calcinosis in stone formation.
- Advanced GEMMs, including time-controlled and compound models, are essential for understanding multifactorial kidney stone disease.

