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Small Extracellular Vesicles From Human Amniotic Membrane Mesenchymal Stem Cells Rejuvenate Senescent β Cells and
Lei Xiao1, Zicheng Zhang1, Tong Li1
1Department of Endocrinology, Geriatric Hospital of Nanjing Medical University, Nanjing, Jiangsu, China.
Abstract:
Targeting senescent pancreatic β-cells represents a promising therapeutic avenue for age-related diabetes; however, current anti-senescence strategies often compromise β-cell mass. In this study, human amniotic mesenchymal stem cell-derived small extracellular vesicles (hAMSC-sEVs) were identified as a novel intervention that can be used to effectively counteract cellular senescence and preserve β-cell integrity. We aimed to systemically delineate the molecular mechanisms underlying hAMSC-sEV-mediated reversal of β-cell senescence in age-related diabetes. In oxidative stress-induced and naturally aged β-cell models, hAMSC-sEVs mitigated senescence-associated phenotypes, restored mitochondrial homeostasis, and enhanced insulin secretion capacity. In aged diabetic mice, administering these vesicles significantly ameliorated hyperglycemia, improved glucose tolerance, and reversed β-cell functional decline by reducing senescent β-cell populations, reinstating β-cell identity markers, and suppressing senescence-associated secretory phenotype (SASP) component production. Mechanistic investigations revealed that the miR-21-5p-enriched hAMSC-sEVs directly target the interleukin (IL)-6 receptor α subunit (IL-6RA), thereby inhibiting signal transducer and activator of transcription 3 (STAT3) phosphorylation at tyrosine 705 and its subsequent nuclear translocation. This epigenetic modulation alleviated STAT3-mediated transcriptional repression of the mitochondrial calcium uniporter (MCU), rectifying age-related mitochondrial calcium mishandling and insulin secretion defects. Genetic ablation of MCU clearly established the central role of the miR-21-5p/IL-6RA/STAT3/MCU axis in this regulatory cascade. Our findings reveal hAMSC-sEVs as a novel senotherapeutic strategy for age-related diabetes, elucidating the pivotal role of miR-21-5p-driven epigenetic-mitochondrial calcium homeostasis in reversing β-cell dysfunction, establishing a framework for targeting cellular senescence in metabolic disorders.
Insights
Human amniotic mesenchymal stem cell-derived small extracellular vesicles (hAMSC-sEVs) reverse cellular senescence in pancreatic beta-cells, offering a new therapy for age-related diabetes by restoring mitochondrial function and insulin secretion.
Area of Science:
- Endocrinology
- Gerontology
- Cell Biology
Background:
- Cellular senescence in pancreatic beta-cells contributes to age-related diabetes.
- Existing anti-senescence therapies can negatively impact beta-cell mass.
- Novel strategies are needed to target beta-cell senescence without compromising beta-cell integrity.
Purpose of the Study:
- To investigate human amniotic mesenchymal stem cell-derived small extracellular vesicles (hAMSC-sEVs) as a therapeutic for age-related diabetes.
- To elucidate the molecular mechanisms behind hAMSC-sEV-mediated reversal of beta-cell senescence.
- To assess the efficacy of hAMSC-sEVs in preserving beta-cell function and mass.
Main Methods:
- Utilized oxidative stress-induced and naturally aged beta-cell models.
- Administered hAMSC-sEVs to aged diabetic mice.
- Performed mechanistic investigations involving microRNA (miR-21-5p), interleukin-6 receptor alpha (IL-6RA), signal transducer and activator of transcription 3 (STAT3), and mitochondrial calcium uniporter (MCU).
Main Results:
- hAMSC-sEVs mitigated senescence phenotypes, restored mitochondrial homeostasis, and enhanced insulin secretion in vitro.
- In vivo, hAMSC-sEVs improved hyperglycemia, glucose tolerance, and beta-cell function in aged diabetic mice.
- The miR-21-5p/IL-6RA/STAT3/MCU axis was identified as crucial for reversing beta-cell senescence and dysfunction.
Conclusions:
- hAMSC-sEVs represent a promising senotherapeutic approach for age-related diabetes.
- The study highlights the role of miR-21-5p in regulating mitochondrial calcium homeostasis via the identified axis.
- This research provides a framework for targeting cellular senescence in metabolic disorders.
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