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Aprt/Opn double knockout mice: osteopontin is a modifier of kidney stone disease severity
Hilary J Vernon1, Christine Osborne, Eleni G Tzortzaki
1Department of Genetics, Rutgers University, Piscataway, New Jersey 08854-8082, USA.
Background:
Osteopontin (OPN) is reported to have two distinct functions in kidney disease: Promotion of inflammation at sites of tissue injury, and inhibition of calcium oxalate monohydrate stone formation. However, many of the studies supporting these functions were carried out in animal models of acute renal injury or in cultured cells; thus, the role of OPN in chronic renal disease is not well defined. We examined the role of OPN in adenine phosphoribosyltransferase (Aprt) knockout mice, in which inflammation and formation of 2,8-dihydroxyadenine (DHA) kidney stones are prominent features, by generating Aprt/Opn double knockout mice.
Methods:
We characterized the phenotypes of six- and 12-week-old Aprt-/- Opn-/-, Aprt-/- Opn+/+, Aprt+/+ Opn-/-, and Aprt+/+ Opn+/+ male and female mice using biochemical, histologic, immunohistochemical, and in situ hybridization techniques.
Results:
At 6 weeks of age, there was no difference in phenotype between double knockout and Aprt knockout mice. At 12 weeks, there was increased adenine and DHA excretion, renal crystal deposition, and inflammation in double knockout versus Aprt knockout male mice. Double knockout and Aprt knockout female mice at 12 weeks had less pathology than their male counterparts, but kidneys from double knockout females showed more inflammation compared with Aprt knockout females; both genotypes had similar levels of DHA crystal deposition.
Conclusion:
We conclude that (1) OPN is a major inhibitor of DHA crystal deposition and inflammation in male mice; and (2) OPN is a major modifier of the inflammatory response but not of crystal deposition in female mice. Thus, separate mechanisms appear responsible for the tissue changes seen in DKO males versus females.
Insights
Osteopontin (OPN) significantly inhibits 2,8-dihydroxyadenine (DHA) crystal deposition and inflammation in male mice with chronic kidney disease. In females, OPN modifies inflammation but not crystal deposition.
Area of Science:
- Nephrology
- Immunology
- Biochemistry
Background:
- Osteopontin (OPN) has dual roles in kidney disease: promoting inflammation and inhibiting stone formation.
- Previous studies on OPN functions were limited to acute injury models or cell cultures.
- The role of OPN in chronic kidney disease (CKD) requires further elucidation.
Purpose of the Study:
- To investigate the role of Osteopontin (OPN) in chronic kidney disease (CKD) using adenine phosphoribosyltransferase (Aprt) knockout mice.
- To determine the impact of OPN deficiency on inflammation and 2,8-dihydroxyadenine (DHA) kidney stone formation in a chronic kidney disease model.
Main Methods:
- Generation of Aprt/Opn double knockout mice.
- Phenotypic characterization of mice at 6 and 12 weeks using biochemical, histologic, and molecular techniques.
- Comparison of Aprt-/- Opn-/-, Aprt-/- Opn+/+, Aprt+/+ Opn-/-, and Aprt+/+ Opn+/+ mice.
Main Results:
- No phenotypic differences were observed between double knockout and Aprt knockout mice at 6 weeks.
- At 12 weeks, male double knockout mice exhibited increased adenine and DHA excretion, renal crystal deposition, and inflammation compared to Aprt knockout males.
- Female double knockout mice showed more inflammation than Aprt knockout females, with similar DHA crystal deposition levels.
Conclusions:
- Osteopontin (OPN) acts as a key inhibitor of 2,8-dihydroxyadenine (DHA) crystal deposition and inflammation in male mice with chronic kidney disease.
- OPN modulates the inflammatory response in female mice but does not significantly affect DHA crystal deposition.
- Distinct mechanisms underlie the observed tissue changes in male and female double knockout mice.
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