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Paternal Long-term PM2.5 Exposure Causes Hypertension Via Increased Renal AT1R Expression and Function in Male Offspring

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Journal Clin Sci (Lond)
Date 2021 Nov 15
PMID 34779863
Citations 3
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Abstract

Maternal exposure to fine particulate matter (PM2.5) causes hypertension in offspring. However, paternal contribution of PM2.5 exposure to hypertension in offspring remains unknown. In the present study, male Sprague-Dawley rats were treated with PM2.5 suspension (10 mg/ml) for 12 weeks and/or fed with tap water containing an antioxidant tempol (1 mM/L) for 16 weeks. The blood pressure, 24 h-urine volume and sodium excretion were determined in male offspring. The offspring were also administrated with losartan (20 mg/kg/d) for 4 weeks. The expressions of angiotensin II type 1 receptor (AT1R) and G-protein-coupled receptor kinase type 4 (GRK4) were determined by qRT-PCR and immunoblotting. We found that long-term PM2.5 exposure to paternal rats caused hypertension and impaired urine volume and sodium excretion in male offspring. Both the mRNA and protein expression of GRK4 and its downstream target AT1R were increased in offspring of PM2.5-exposed paternal rats, which was reflected in its function because treatment with losartan, an AT1R antagonist, decreased the blood pressure and increased urine volume and sodium excretion. In addition, the oxidative stress level was increased in PM2.5-treated paternal rats. Administration with tempol in paternal rats restored the increased blood pressure and decreased urine volume and sodium excretion in the offspring of PM2.5-exposed paternal rats. Treatment with tempol in paternal rats also reversed the increased expressions of AT1R and GRK4 in the kidney of their offspring. We suggest that paternal PM2.5 exposure causes hypertension in offspring. The mechanism may be involved that paternal PM2.5 exposure-associated oxidative stress induces the elevated renal GRK4 level, leading to the enhanced AT1R expression and its-mediated sodium retention, consequently causes hypertension in male offspring.

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References
1.
Luo H, Chen C, Guo L, Xu Z, Peng X, Wang X . Exposure to Maternal Diabetes Mellitus Causes Renal Dopamine D Receptor Dysfunction and Hypertension in Adult Rat Offspring. Hypertension. 2018; 72(4):962-970. PMC: 6207228. DOI: 10.1161/HYPERTENSIONAHA.118.10908. View

2.
Weldy C, Liu Y, Liggitt H, Chin M . In utero exposure to diesel exhaust air pollution promotes adverse intrauterine conditions, resulting in weight gain, altered blood pressure, and increased susceptibility to heart failure in adult mice. PLoS One. 2014; 9(2):e88582. PMC: 3922927. DOI: 10.1371/journal.pone.0088582. View

3.
Ng S, Lin R, Laybutt D, Barres R, Owens J, Morris M . Chronic high-fat diet in fathers programs β-cell dysfunction in female rat offspring. Nature. 2010; 467(7318):963-6. DOI: 10.1038/nature09491. View

4.
Lu X, Ye Z, Zheng S, Ren H, Zeng J, Wang X . Long-Term Exposure of Fine Particulate Matter Causes Hypertension by Impaired Renal D Receptor-Mediated Sodium Excretion via Upregulation of G-Protein-Coupled Receptor Kinase Type 4 Expression in Sprague-Dawley Rats. J Am Heart Assoc. 2018; 7(1). PMC: 5778966. DOI: 10.1161/JAHA.117.007185. View

5.
Kawarazaki W, Fujita T . Kidney and epigenetic mechanisms of salt-sensitive hypertension. Nat Rev Nephrol. 2021; 17(5):350-363. DOI: 10.1038/s41581-021-00399-2. View