TOR Signaling Pathway in Cardiac Aging and Heart Failure
Abstract
:1. Introduction
2. Cardiac Aging in Human and Animal Models
3. TOR Signaling in Aging
Caloric Restriction as the Most Reproducible Intervention to Delay Aging via mTORC1 Inhibition and Activation of Autophagy
4. CR and mTORC1 Inhibition in Cardiac Aging
Rapamycin and Cardiac Aging
5. Rapamycin and the mTORC1 Signaling in Heart Failure
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Interventions | Signaling | Effects on Aging | Cardiac Aging | Heart Failure |
---|---|---|---|---|
Calorie/Dietary Restriction | inhibit mTORC1 | Extension of lifespan in yeast [3], worm [4], fruitfly [5] | Drosophila: Protects against functional cardiac aging, maintains normal heart rate and rhythm [6] | Drosophila: Promote cardiac stress resistance |
d4E-BP induction |
| Mice: protects against cardiomyopathy | N/A | |
Rapamycin | inhibit mTORC1 |
| Regresses pressure overload induced cardiac hypertrophy [19] and LV fibrosis | |
mTOR overexpression | Increased mTOR | NA | N/A | |
mTOR deletion | Marked suppression of mTORC1 | embryonic lethal | NA | Mice: Constitutive cardiac mTOR deletion cause dilated cardiomyopathy and early mortality [23] Mice: Constitutive cardiac mTOR gene deletion at early post-natal stage cause dilated cardiomyopathy and early mortality [24] |
Mice: Cardiac specific inducible deletion in adult led to fatal dilated cardiomyopathy [25] | ||||
Raptor deletion | Decreased mTORC1 | age related hearing loss [26] | N/A | |
S6K1 deletion | Extends murine lifespan, resistance to age related pathologies such as insulin resistance, immune and motor dysfunction [29] | N/A | Mice: No effect on cardiac hypertrophy [30] | |
Inhibition of S6K with PF-4708671 protected against MI similar to rapamycin [31] | ||||
4EBP1 overexpression | Increased 4EBP1 | Drosophila: life span extension, improved proteostasis [10] | Drosophila: Reverses Cardiac functional aging [6] | Aggravates heart failure induced by pressure overload or Gαq overexpression [28] |
Mild suppression of protein translation | Mice: Protects against aging-induced obesity and increase in energy expenditure [32] | N/A | N/A | |
4EBP1 mutant | Constitutively active 4EBP1 Strong suppression of protein translation | N/A | N/A | Aggravates heart failure, worse than 4EBP1 Tg, adverse remodeling of cardiac proteome, impaired adaptive cardiac hypertrophy due to suppression of protein translation [28] |
ULK1 inhibition | Decreased autophagy | Worsen aging-associated diseases | N/A | Mice: Cardiac specific deletion of ULK1 impaired autophagy and caused fissed dysfunctional mitochondria, leading to rapidly progressive cardiomyopathy and early death [33] Mice: Cardiac specific ULK1 knock out had impaired autophagy, increased lipotoxicity and cardiac dysfunction in response to high fat diet [34] |
Promote age-related diseases, including cancer, atherosclerosis, obesity, neurodegeneration and retinopathy [35] | ||||
Rapalogs (everolimus, temsirolimus and deforolimus) | prevents age-related diseases in mice and human, antineoplastic effect [36,37,38] | N/A | Everolimus increased autophagy, decreased remodeling after MI and improved heart function [39] |
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Daneshgar, N.; Rabinovitch, P.S.; Dai, D.-F. TOR Signaling Pathway in Cardiac Aging and Heart Failure. Biomolecules 2021, 11, 168. https://doi.org/10.3390/biom11020168
Daneshgar N, Rabinovitch PS, Dai D-F. TOR Signaling Pathway in Cardiac Aging and Heart Failure. Biomolecules. 2021; 11(2):168. https://doi.org/10.3390/biom11020168
Chicago/Turabian StyleDaneshgar, Nastaran, Peter S. Rabinovitch, and Dao-Fu Dai. 2021. "TOR Signaling Pathway in Cardiac Aging and Heart Failure" Biomolecules 11, no. 2: 168. https://doi.org/10.3390/biom11020168
APA StyleDaneshgar, N., Rabinovitch, P. S., & Dai, D. -F. (2021). TOR Signaling Pathway in Cardiac Aging and Heart Failure. Biomolecules, 11(2), 168. https://doi.org/10.3390/biom11020168