Null mutations at the p66 and bradykinin 2 receptor loci induce divergent phenotypes in the diabetic kidney

Author:

Vashistha Himanshu12,Singhal Pravin C.3,Malhotra Ashwani3,Husain Mohammad3,Mathieson Peter4,Saleem Moin A.4,Kuriakose Cyril5,Seshan Surya6,Wilk Anna2,DelValle Luis2,Peruzzi Francesca2,Giorgio Marco7,Pelicci Pier Giuseppe7,Smithies Oliver8,Kim Hyung-Suk8,Kakoki Masao8,Reiss Krzysztof2,Meggs Leonard G.12

Affiliation:

1. Institute for Translational Research, Nephrology Research Laboratory, Ochsner Clinic Foundation, New Orleans, Louisiana;

2. Neurological Cancer Research, Stanley S. Scott Cancer Center, Louisiana State University Health Sciences Center, New Orleans, Louisiana;

3. Feinstein Institute for Medical Research, North Shore Long Island Jewish Health System, New York, New York;

4. Academic Renal Unit, Southmead Hospital, Bristol and Children's Renal Unit, Bristol Children's Hospital, Bristol, United Kingdom;

5. Boston Medical Center, Boston University School of Medicine, Renal Section, Boston, Massachusetts;

6. Department of Pathology, Department of Medicine, Weill Cornell Medical College, New York, New York;

7. Department of Experimental Oncology, European Institute of Oncology, Milan, Italy; and

8. Department of Pathology and Laboratory Medicine, University of North Carolina, Chapel Hill, North Carolina

Abstract

Candidate genes have been identified that confer increased risk for diabetic glomerulosclerosis (DG). Mice heterozygous for the Akita (Ins2+/C96Y) diabetogenic mutation with a second mutation introduced at the bradykinin 2 receptor (B2R−/−) locus express a disease phenotype that approximates human DG. Src homology 2 domain transforming protein 1 (p66) controls mitochondrial metabolism and cellular responses to oxidative stress, aging, and apoptosis. We generated p66-null Akita mice to test whether inactivating mutations at the p66 locus will rescue kidneys of Akita mice from disease-causing mutations at the Ins2 and B2R loci. Here we show null mutations at the p66 and B2R loci interact with the Akita (Ins2+/C96Y) mutation, independently and in combination, inducing divergent phenotypes in the kidney. The B2R−/−mutation induces detrimental phenotypes, as judged by increased systemic and renal levels of oxidative stress, histology, and urine albumin excretion, whereas the p66-null mutation confers a powerful protection phenotype. To elucidate the mechanism(s) of the protection phenotype, we turned to our in vitro system. Experiments with cultured podocytes revealed previously unrecognized cross talk between p66 and the redox-sensitive transcription factor p53 that controls hyperglycemia-induced ROS metabolism, transcription of p53 target genes (angiotensinogen, angiotensin II type-1 receptor, and bax), angiotensin II generation, and apoptosis. RNA-interference targeting p66 inhibits all of the above. Finally, protein levels of p53 target genes were upregulated in kidneys of Akita mice but unchanged in p66-null Akita mice. Taken together, p66 is a potential molecular target for therapeutic intervention in DG.

Publisher

American Physiological Society

Subject

Physiology

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