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MicroRNA-183-5p Increases with Age in Bone-Derived Extracellular Vesicles, Suppresses Bone Marrow Stromal (Stem) Cell
Colleen Davis1, Amy Dukes1, Michelle Drewry1
1Department of Cellular Biology & Anatomy, Medical College of Georgia, Augusta University , Augusta, Georgia .
Abstract:
Microvesicle- and exosome-mediated transport of microRNAs (miRNAs) represents a novel cellular and molecular pathway for cell-cell communication. In this study, we tested the hypothesis that these extracellular vesicles (EVs) and their miRNAs might change with age, contributing to age-related stem cell dysfunction. EVs were isolated from the bone marrow interstitial fluid (supernatant) of young (3-4 months) and aged (24-28 months) mice to determine whether the size, concentration, and miRNA profile of EVs were altered with age in vivo. Results show that EVs isolated from bone marrow are CD63 and CD9 positive, and the concentration and size distribution of bone marrow EVs are similar between the young and aged mice. Bioanalyzer data indicate that EVs from both young and aged mice are highly enriched in miRNAs, and the miRNA profile of bone marrow EVs differs significantly between the young and aged mice. Specifically, the miR-183 cluster (miR-96/-182/-183) is highly expressed in aged EVs. In vitro assays demonstrate that aged EVs are endocytosed by primary bone marrow stromal cells (BMSCs), and these aged EVs inhibit the osteogenic differentiation of young BMSCs. Transfection of BMSCs with miR-183-5p mimic reduces cell proliferation and osteogenic differentiation, increases senescence, and decreases protein levels of the miR-183-5p target heme oxygenase-1 (Hmox1). In vitro assays utilizing H2O2-induced oxidative stress show that H2O2 treatment of BMSCs increases the abundance of miR-183-5p in BMSC-derived EVs, and Amplex Red assays demonstrate that H2O2 is elevated in the bone marrow microenvironment with age. Together, these data indicate that aging and oxidative stress can significantly alter the miRNA cargo of EVs in the bone marrow microenvironment, which may in turn play a role in stem cell senescence and osteogenic differentiation by reducing Hmox1 activity.
Insights
Aging alters microRNA (miRNA) profiles in extracellular vesicles (EVs) from mouse bone marrow. Aged EVs inhibit stem cell function, potentially via increased miR-183-5p, impacting bone health.
Area of Science:
- Cellular and Molecular Biology
- Aging Research
- Stem Cell Biology
Background:
- MicroRNAs (miRNAs) are transported via extracellular vesicles (EVs), mediating cell-cell communication.
- Age-related changes in EVs and their miRNA cargo may contribute to stem cell dysfunction.
Purpose of the Study:
- To investigate age-dependent alterations in bone marrow extracellular vesicles (EVs) and their miRNA content.
- To determine the functional impact of aged EVs on bone marrow stromal cells (BMSCs) and osteogenic differentiation.
Main Methods:
- Isolation of EVs from young and aged mouse bone marrow interstitial fluid.
- Characterization of EV size, concentration, and miRNA profiles using Bioanalyzer.
- In vitro assays assessing BMSC endocytosis of aged EVs, osteogenic differentiation, proliferation, and senescence.
- Analysis of miR-183-5p and heme oxygenase-1 (Hmox1) levels under oxidative stress conditions.
Main Results:
- EV concentration and size were similar between young and aged mice.
- miRNA profiles of bone marrow EVs differed significantly with age, with elevated miR-183 cluster expression in aged EVs.
- Aged EVs inhibited osteogenic differentiation and proliferation of young BMSCs, increasing senescence.
- miR-183-5p mimic transfection reduced BMSC osteogenic differentiation and Hmox1 levels.
- Oxidative stress increased miR-183-5p in BMSC-derived EVs, and H2O2 levels were elevated in aged bone marrow.
Conclusions:
- Aging and oxidative stress significantly alter the miRNA cargo of bone marrow EVs.
- Age-associated changes in EV miRNAs, particularly miR-183-5p, contribute to stem cell senescence and impaired osteogenic differentiation.
- Reduced Hmox1 activity due to altered miRNA profiles may underlie age-related bone marrow dysfunction.