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Published on: June 14, 2016
Comprehensive Multi-omics Mapping of Vesicle Cargo from Plasma or Novel Tissue Vesicles Reveals Pathological Changes
George Ronan1, Jun Yang1,2, Pinar Zorlutuna3
1Department of Aerospace and Mechanical Engineering, University of Notre Dame, Notre Dame, IN, 46556, USA.
Insights
Aging significantly alters extracellular vesicles (EVs) in heart tissue and plasma, revealing distinct mechanisms contributing to cardiovascular disease and inflammation. This research identifies potential therapeutic targets for age-related conditions.
Area of Science:
- Cardiovascular Science
- Aging Research
- Extracellular Vesicle Biology
Background:
- Aging is a primary risk factor for cardiovascular disease (CVD), the leading global cause of mortality.
- Mechanisms underlying aging's impact on health, particularly microenvironment and paracrine signaling, are not fully understood.
- Extracellular vesicles (EVs) are crucial mediators of intercellular communication, but their age-related alterations are understudied.
Purpose of the Study:
- To directly compare extracellular vesicles (EVs) from young and aged individuals.
- To differentiate EVs isolated from heart tissue (TEVs) versus plasma (PEVs).
- To identify age-associated molecular cargo in EVs as potential therapeutic agents or disease biomarkers for CVD.
Main Methods:
- Isolation and comparative analysis of EVs from heart tissue and plasma of young and aged patients.
- MicroRNA (miRNA) cargo profiling of isolated EVs.
- Proteomic analysis to identify protein targets associated with aging and CVD.
Main Results:
- Aged EVs exhibited substantial differences in miRNA cargo compared to young EVs, with distinct age-related changes in TEVs and PEVs.
- TEVs were enriched in cardioprotective miRNAs, implicating 45 potential therapeutic agents.
- PEVs correlated with systemic inflammation, while TEVs were linked to cardiac homeostasis and local inflammation.
- Seventeen protein targets unique to TEVs were identified as contributing to age-related CVD development.
Conclusions:
- Aging differentially impacts TEVs and PEVs, affecting their molecular cargo and functional roles.
- TEVs harbor potential cardioprotective miRNAs and protein targets relevant to aging and CVD.
- EV analysis offers insights into aging mechanisms and identifies novel targets for cardiovascular health interventions.
Abstract:
Aging is a major risk factor for cardiovascular disease, the leading cause of death worldwide, and numerous other diseases, but the mechanisms of these aging-related effects remain elusive. Recent evidence suggests that chronic changes in the microenvironment and local paracrine signaling are major drivers of these effects, but the precise effect of aging on these factors remains understudied. Here, for the first time, we directly compare extracellular vesicles obtained from young and aged patients to identify therapeutic or disease-associated agents, and directly compare vesicles isolated from heart tissue matrix (TEVs) or plasma (PEVs). While young TEVs and PEVs showed notable overlap of miRNA cargo, aged EVs differed substantially, indicating differential aging-related changes between TEVs and PEVs. TEVs overall were uniquely enriched in miRNAs which directly or indirectly demonstrate cardioprotective effects, with 45 potential therapeutic agents identified in our analysis. Both populations also showed increased predisposition to disease with aging, though through different mechanisms. Changes in PEV cargo were largely correlated with chronic systemic inflammation, while those in TEVs were more related to cardiac homeostasis and local inflammation. From this, 17 protein targets were identified which were unique to TEVs and highly correlated with aging and the onset of cardiovascular disease. Further analysis via machine learning techniques implicated several new miRNA and protein targets, independently suggesting several of the targets identified by non-machine learning analysis, which correlated with aging-related changes in TEVs. With further study, this biomarker set may serve as a powerful, potential indicator of cardiac health and age which can be measured from PEVs. Additionally, several proposed "young-enriched" therapeutic agents were validated and, when tested, could successfully prevent cell death and cardiac fibrosis in disease-like conditions.
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