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Published on: May 21, 2018
Autophagy and Inflammasome Activation in Dilated Cardiomyopathy
Angela Caragnano1, Aneta Aleksova2, Michela Bulfoni3
1Department of Medicine, University of Udine, 33100 Udine, Italy. angelacaragnano@alice.it.
Insights
Dilated cardiomyopathy (DCM) involves failed protein clearance and mitochondrial dysfunction, leading to sterile inflammation. Targeting miR-22, PP2Cm, and branched-chain amino acids may offer new therapeutic avenues for DCM patients.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Cellular Pathology
Background:
- Dilated cardiomyopathy (DCM) presents a heterogeneous clinical course due to incompletely understood pathophysiology.
- Elevated Interleukin 1β levels are potential predictors of mortality and cardiac transplantation needs in DCM patients.
Purpose of the Study:
- To elucidate the mechanisms driving sterile inflammation in dilated cardiomyopathy (DCM).
Main Methods:
- Comparative analysis of hearts from 62 DCM patients and 30 controls.
- Utilized immunohistochemistry, cellular and molecular biology techniques, and metabolomics.
Main Results:
- DCM hearts exhibit misfolded protein accumulation and aggresome formation, failing to activate the autophagy lysosomal pathway (ALP).
- Accumulation of p62, dysfunctional mitochondria, lipoperoxidation products, and inflammasome activation characterize DCM.
- Increased mTOR signaling, reduced Transcription Factor EB (TFEB) nuclear localization, altered branched-chain amino acid (BCAA) metabolism, decreased PP2Cm, and elevated miR-22 were observed in DCM.
Conclusions:
- A complex interplay involving miR-22, PP2Cm, BCAAs, mTOR, and ALP links proteostasis loss to inflammasome activation in human DCM.
- These identified molecular players represent potential therapeutic targets for further investigation in DCM.
Background:
The clinical outcome of patients affected by dilated cardiomyopathy (DCM) is heterogeneous, since its pathophysiology is only partially understood. Interleukin 1β levels could predict the mortality and necessity of cardiac transplantation of DCM patients.
Objective:
To investigate mechanisms triggering sterile inflammation in dilated cardiomyopathy (DCM).
Methods:
Hearts explanted from 62 DCM patients were compared with 30 controls, employing immunohistochemistry, cellular and molecular biology, as well as metabolomics studies.
Results:
Although misfolded protein accumulation and aggresome formation characterize DCM hearts, aggresomes failed to trigger the autophagy lysosomal pathway (ALP), with consequent accumulation of both p62SQSTM1 and dysfunctional mitochondria. In line, DCM hearts are characterized by accumulation of lipoperoxidation products and activation of both redox responsive pathways and inflammasome. Consistently with the fact that mTOR signaling may impair ALP, we observed, an increase in DCM activation, together with a reduction in the nuclear localization of Transcription Factor EB -TFEB- (a master regulator of lysosomal biogenesis). These alterations were coupled with metabolomic alterations, including accumulation of branched chain amino acids (BCAAs), known mTOR activators. Consistently, reduced levels of PP2Cm, a phosphatase that regulates the key catabolic step of BCAAs, coupled with increased levels of miR-22, a regulator of PP2Cm levels that triggers senescence, characterize DCM hearts. The same molecular defects were present in clinically relevant cells isolated from DCM hearts, but they could be reverted by downregulating miR-22.
Conclusion:
We identified, in human DCM, a complex series of events whose key players are miR-22, PP2Cm, BCAA, mTOR, and ALP, linking loss of proteostasis with inflammasome activation. These potential therapeutic targets deserve to be further investigated.
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