Why the study?
CVD risk increases as renal function declines in CKD, and NOD1 has emerged as an innate immune receptor involved in both CVD and CKD that activates RIP2 to promote inflammation.
Does genetic deficiency of Nod1 or Rip2 prevent cardiac Ca2+ mishandling induced by experimental chronic kidney disease in mice?
Does genetic deficiency of Nod1 or Rip2 prevent cardiac Ca2+ mishandling induced by experimental chronic kidney disease in mice?
Genetic deletion of NOD1 or RIP2 prevents intracellular Ca2+ mishandling in cardiomyocytes induced by experimental CKD, suggesting potential innate immune targets for reducing cardiac complications in CKD.
NOD1-RIP2 signaling may drive cardiorenal inflammation; hypothesis-generating for targeted inhibition in CKD-associated CVD.
Risk of cardiovascular disease (CVD) increases considerably as renal function declines in chronic kidney disease (CKD). Nucleotide-binding oligomerization domain-containing protein 1 (NOD1) has emerged as a novel innate immune receptor involved in both CVD and CKD. Following activation, NOD1 undergoes a conformational change that allows the activation of the receptor-interacting serine/threonine protein kinase 2 (RIP2), promoting an inflammatory response. We evaluated whether the genetic deficiency of Nod1 or Rip2 in mice could prevent cardiac Ca2+ mishandling induced by sixth nephrectomy (Nx), a model of CKD. We examined intracellular Ca2+ dynamics in cardiomyocytes from Wild-type (Wt), Nod1−/− and Rip2−/− sham-operated or nephrectomized mice. Compared with Wt cardiomyocytes, Wt-Nx cells showed an impairment in the properties and kinetics of the intracellular Ca2+ transients, a reduction in both cell shortening and sarcoplasmic reticulum Ca2+ load, together with an increase in diastolic Ca2+ leak. Cardiomyocytes from Nod1−/−-Nx and Rip2−/−-Nx mice showed a significant amelioration in Ca2+ mishandling without modifying the kidney impairment induced by Nx. In conclusion, Nod1 and Rip2 deficiency prevents the intracellular Ca2+ mishandling induced by experimental CKD, unveiling new innate immune targets for the development of innovative therapeutic strategies to reduce cardiac complications in patients with CKD.
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Gil‐Fernández et al. (2020) studied this question.
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