Interstitial calcinosis in renal papillae of genetically engineered mouse models: relation to Randall's plaques

Xue-Ru Wu1

  • 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.

Urolithiasis
|August 7, 2014
PubMed

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.