Key result
PDE3A mutations drive peripheral vascular resistance, raising systolic blood pressure by ~23 mmHg.
Why the study?
The involvement of mutant PDE3A in autosomal dominant hypertension with brachydactyly was not demonstrated in vivo through genetic modeling.
Absolute Event Rate: 148% vs 125%
PDE3A mutations may drive hypertension via vascular resistance; leaves open whether targeted inhibition benefits mutation carriers.
Background: High blood pressure is the primary risk factor for cardiovascular death worldwide. Autosomal dominant hypertension with brachydactyly clinically resembles salt-resistant essential hypertension and causes death by stroke before 50 years of age. We recently implicated the gene encoding phosphodiesterase 3A ( PDE3A ); however, in vivo modeling of the genetic defect and thus showing an involvement of mutant PDE3A is lacking. Methods: We used genetic mapping, sequencing, transgenic technology, CRISPR-Cas9 gene editing, immunoblotting, and fluorescence resonance energy transfer. We identified new patients, performed extensive animal phenotyping, and explored new signaling pathways. Results: We describe a novel mutation within a 15 base pair (bp) region of the PDE3A gene and define this segment as a mutational hotspot in hypertension with brachydactyly. The mutations cause an increase in enzyme activity. A CRISPR/Cas9-generated rat model, with a 9-bp deletion within the hotspot analogous to a human deletion, recapitulates hypertension with brachydactyly. In mice, mutant transgenic PDE3A overexpression in smooth muscle cells confirmed that mutant PDE3A causes hypertension. The mutant PDE3A enzymes display consistent changes in their phosphorylation and an increased interaction with the 14-3-3θ adaptor protein. This aberrant signaling is associated with an increase in vascular smooth muscle cell proliferation and changes in vessel morphology and function. Conclusions: The mutated PDE3A gene drives mechanisms that increase peripheral vascular resistance causing hypertension. We present 2 new animal models that will serve to elucidate the underlying mechanisms further. Our findings could facilitate the search for new antihypertensive treatments.
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Ercu et al. (2020) studied Autosomal-dominant hypertension with brachydactyly (HTNB). Mutant PDE3A gene vs. Wild-type PDE3A was evaluated on Systolic blood pressure (in rat model). Mutations in the PDE3A gene lead to hyperactive enzyme signaling that increases peripheral vascular resistance, driving mean systolic blood pressure to 148 mmHg in mutant rats compared to 125 mmHg in wild-type controls.
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