Key result
PKR1 gene disruption in mice triggers severe cardiorenal dysfunction driven by survival signaling deficits.
Why the study?
Cardiac and renal toxicity observed in cancer patients treated with antiangiogenic compounds motivated exploration of PKR1 signaling function in heart and kidney in vivo.
Does genetic inactivation of PKR1 lead to heart and kidney disorders in mice?
Does genetic inactivation of PKR1 lead to heart and kidney disorders in mice?
Genetic inactivation of PKR1 in mice causes significant cardiac and renal structural and functional deficits, highlighting its endogenous role in survival signaling and progenitor cell function.
Animal data link PKR1 loss to cardiac and renal pathology; leaves open whether modulating this pathway benefits patients.
OBJECTIVE: Prokineticins are potent angiogenic hormones that use 2 receptors, prokineticin receptor-1 (PKR1) and PKR2, with important therapeutic use in anticancer therapy. Observations of cardiac and renal toxicity in cancer patients treated with antiangiogenic compounds led us to explore how PKR1 signaling functioned in heart and kidney in vivo. METHODS AND RESULTS: We generated mice with a conditional disruption of the PKR1 gene. We observed that PKR1 loss led to cardiomegaly, severe interstitial fibrosis, and cardiac dysfunction under stress conditions, accompanied by renal tubular dilation, reduced glomerular capillaries, urinary phosphate excretion, and proteinuria at later ages. Abnormal mitochondria and increased apoptosis were evident in both organs. Perturbation of capillary angiogenesis in both organs was restored at the adult stage potentially via upregulation of hypoxia-inducible factor-1 and proangiogenic factors. Compensatory mechanism could not revoke the epicardial and glomerular capillary networks, because of increased apoptosis and reduced progenitor cell numbers, consistent with an endogenous role of PKR1 signaling in stimulating epicardin+ progenitor cell proliferation and differentiation. CONCLUSIONS: Here, we showed for the first time that the loss of PKR1 causes renal and cardiac structural and functional changes because of deficits in survival signaling, mitochondrial, and progenitor cell functions in found both organs.
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Boulberdaa et al. (2011) studied this question. Conditional disruption of the PKR1 gene was evaluated on Cardiac and renal structural and functional changes. Conditional disruption of the PKR1 gene in mice led to cardiomegaly, severe interstitial fibrosis, cardiac dysfunction, and renal abnormalities due to deficits in survival signaling.
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