Physiological activation of Akt by PHLPP1 deletion protects against pathological hypertrophy
Courtney Moc1, Amy E Taylor1, Gino P Chesini1
1Department of Pharmacology, University of California San Diego, 9500 Gilman Drive, La Jolla, CA 92093-0636, USA.
Insights
Deleting PHLPP1 enhances physiological cardiac hypertrophy and Akt signalling. This inhibition of PH domain leucine-rich repeat protein phosphatase (PHLPP1) may protect against pathological cardiac hypertrophy.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Cell Signalling
Background:
- Akt signalling plays a crucial role in cardiac growth and function.
- PH domain leucine-rich repeat protein phosphatase (PHLPP1) dephosphorylates and inhibits Akt.
- Understanding PHLPP1's role is key to modulating Akt activity in cardiac disease.
Purpose of the Study:
- To investigate the role of physiological Akt signalling in pathological cardiac hypertrophy.
- To analyze the effects of PHLPP1 deletion on cardiac growth and response to stimuli.
Main Methods:
- Utilized PHLPP1 knock-out (KO) mouse models.
- Examined cardiac hypertrophy induced by swimming exercise and pressure overload.
- Assessed Akt phosphorylation, myocyte size, fibrosis, cell death, and angiogenesis (VEGF).
Main Results:
- PHLPP1 KO mice showed increased basal Akt phosphorylation and accentuated physiological hypertrophy.
- Pathological hypertrophy induced by pressure overload was attenuated in KO mice.
- KO mice exhibited reduced fibrosis, cell death, and enhanced capillary density and VEGF expression.
Conclusions:
- Inhibiting PHLPP1-mediated dephosphorylation enhances Akt activity.
- This enhancement promotes physiological hypertrophy and may offer protection against pathological cardiac hypertrophy.
- Targeting PHLPP1 could be a therapeutic strategy for cardiac conditions.
Aims:
To examine the role of physiological Akt signalling in pathological hypertrophy through analysis of PHLPP1 (PH domain leucine-rich repeat protein phosphatase) knock-out (KO) mice.
Methods And Results:
To investigate the in vivo requirement for 'physiological' control of Akt activation in cardiac growth, we examined the effect of deleting the Akt phosphatase, PHLPP, on the induction of cardiac hypertrophy. Basal Akt phosphorylation increased nearly two-fold in the cardiomyocytes from PHLPP1 KO mice and physiological hypertrophy induced by swimming exercise was accentuated as assessed by increased heart size and myocyte cell area. In contrast, the development of pathophysiological hypertrophy induced by pressure overload and assessed by increases in heart size, myocyte cell area, and hypertrophic gene expression was attenuated. This attenuation coincided with decreased fibrosis and cell death in the KO mice. Cast moulding revealed increased capillary density basally in the KO hearts, which was further elevated relative to wild-type mouse hearts in response to pressure overload. In vitro studies with isolated myocytes in co-culture also demonstrated that PHLPP1 deletion in cardiomyocytes can enhance endothelial tube formation. Expression of the pro-angiogenic factor VEGF was also elevated basally and accentuated in response to transverse aortic constriction in hearts from KO mice.
Conclusion:
Our data suggest that enhancing Akt activity by inhibiting its PHLPP1-mediated dephosphorylation promotes processes associated with physiological hypertrophy that may be beneficial in attenuating the development of pathological hypertrophy.
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