MicroRNA engineered umbilical cord stem cell-derived exosomes direct tendon regeneration by mTOR signaling.

Journal of nanobiotechnology 2021 Vol.19(1) p. 169

Yao Z, Li J, Xiong H, Cui H, Ning J, Wang S, Ouyang X, Qian Y, Fan C

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Abstract

[BACKGROUND] Exosomes are extracellular vesicles of nano-structures and represent an emerging nano-scale acellular therapy in recent years. Tendon regeneration is a sophisticated process in the field of microsurgery due to its poor natural healing ability. To date, no successful long-term solution has been provided for the healing of tendon injuries. Functional recovery requires advanced treatment strategies. Human umbilical cord mesenchymal stem cell-derived exosomes (HUMSC-Exos) are considered as promising cell-free therapeutic agents. However, few studies reported their potential in the tendon repair previously. In this study, we explored the roles and underlying mechanisms of HUMSC-Exos in the tendon regeneration.

[RESULTS] Expression of tendon-specific markers in, and collagen deposition by, tendon-derived stem cells (TDSCs) treated with HUMSC-Exos increased in vitro. In a rat Achilles tendon injury model, treatment with HUMSC-Exos improved the histological structure, enhanced tendon-specific matrix components, and optimized biomechanical properties of the Achilles tendon. Findings in miRNA sequencing indicated a significant increase in miR-29a-3p in HUMSC-Exo-treated Achilles tendons. Next, luciferase assay in combination with western blot identified phosphatase and tensin homolog (PTEN) as the specific target of miR-29a-3p. Furthermore, we applied a miR-29a-3p-specific agonist to engineer HUMSC-Exos. These HUMSC-Exos overexpressing miR-29a-3p amplified the gain effects of HUMSC-Exos on tendon healing in vivo. To explore the underlying mechanisms, a transforming growth factor-β1 (TGF-β1) inhibitor (SB-431542), mTOR inhibitor (rapamycin), and engineered HUMSC-Exos were employed. The results showed that TGF-β1 and mTOR signaling were involved in the beneficial effects of HUMSC-Exos on tendon regeneration.

[CONCLUSION] The findings in our study suggest that PTEN/mTOR/TGF-β1 signaling cascades may be a potential pathway for HUMSC-Exos to deliver miR-29a-3p for tendon healing and implicate a novel therapeutic strategy for tendon regeneration via engineered stem cell-derived exosomes.

추출된 의학 개체 (NER)

유형영어 표현한국어 / 풀이UMLS CUI출처등장
시술 microsurgery 미세수술 dict 1
해부 tendon scispacy 1
해부 extracellular vesicles scispacy 1
해부 nano-structures scispacy 1
해부 acellular scispacy 1
해부 Human umbilical cord mesenchymal stem cell-derived exosomes scispacy 1
해부 tendon-derived stem cells scispacy 1
해부 TDSCs → tendon-derived stem cells scispacy 1
해부 stem cell-derived exosomes scispacy 1
합병증 Achilles tendon scispacy 1
합병증 Achilles tendons scispacy 1
합병증 tendon scispacy 1
약물 HUMSC-Exos scispacy 1
약물 SB-431542 C1137338
4-(5-benzo(1,3)dioxol-5-yl-4-pyridin-2-yl-1H-imidazol-2-yl)benzamide
scispacy 1
약물 rapamycin C0072980
sirolimus
scispacy 1
약물 [BACKGROUND] Exosomes scispacy 1
질환 Achilles tendon injury C0495953
Injury of Achilles tendon
scispacy 1
질환 TGF-β1 → transforming growth factor-β1 C0040691
Transforming Growth Factors
scispacy 1
기타 MicroRNA engineered umbilical cord stem cell-derived scispacy 1
기타 mTOR scispacy 1
기타 HUMSC-Exos scispacy 1
기타 tendon-specific scispacy 1
기타 collagen scispacy 1
기타 rat Achilles tendon scispacy 1
기타 tendon-specific matrix scispacy 1
기타 miR-29a-3p scispacy 1
기타 luciferase scispacy 1
기타 PTEN → phosphatase and tensin homolog scispacy 1

MeSH Terms

Animals; Exosomes; Humans; Male; Mesenchymal Stem Cells; MicroRNAs; Rats; Regeneration; Signal Transduction; Stem Cells; TOR Serine-Threonine Kinases; Tendons; Umbilical Cord

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