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褪黑素通过调节自噬过程诱导长期离体扩增牙周韧带干细胞的年轻化。

Melatonin induces the rejuvenation of long-term ex vivo expanded periodontal ligament stem cells by modulating the autophagic process.

机构信息

Department of Periodontology, School of Stomatology, State Key Laboratory of Military Stomatology, National Clinical Research Center for Oral Diseases and Shaanxi Engineering Research Center for Dental Materials and Advanced Manufacture, Fourth Military Medical University, 145th West Changle Road, Xi'an, 710032, Shaanxi, People's Republic of China.

Shaanxi Key Laboratory of Free Radical Biology and Medicine, The Ministry of Education Key Laboratory of Hazard Assessment and Control in Special Operational Environments, Fourth Military Medical University, Xi'an, People's Republic of China.

出版信息

Stem Cell Res Ther. 2021 Apr 29;12(1):254. doi: 10.1186/s13287-021-02322-9.

Abstract

BACKGROUND

Stem cells that have undergone long-term ex vivo expansion are most likely functionally compromised (namely cellular senescence) in terms of their stem cell properties and therapeutic potential. Due to its ability to attenuate cellular senescence, melatonin (MLT) has been proposed as an adjuvant in long-term cell expansion protocols, but the mechanism underlying MLT-induced cell rejuvenation remains largely unknown.

METHODS

Human periodontal ligament stem cells (PDLSCs) were isolated and cultured ex vivo for up to 15 passages, and cells from passages 2, 7, and 15 (P2, P7, and P15) were used to investigate cellular senescence and autophagy change in response to long-term expansion and indeed the following MLT treatment. Next, we examined whether MLT could induce cell rejuvenation by restoring the autophagic processes of damaged cells and explored the underlying signaling pathways. In this context, cellular senescence was indicated by senescence-associated β-galactosidase (SA-β-gal) activity and by the expression of senescence-related proteins, including p53, p21, p16, and γ-H2AX. In parallel, cell autophagic processes were evaluated by examining autophagic vesicles (by transmission electronic microscopy), autophagic flux (by assessing mRFP-GFP-LC3-transfected cells), and autophagy-associated proteins (by Western blot assay of Atg7, Beclin-1, LC3-II, and p62).

RESULTS

We found that long-term in vitro passaging led to cell senescence along with impaired autophagy. As expected, MLT supplementation not only restored cells to a younger state but also restored autophagy in senescent cells. Additionally, we demonstrated that autophagy inhibitors could block MLT-induced cell rejuvenation. When the underlying signaling pathways involved were investigated, we found that the MLT receptor (MT) mediated MLT-related autophagy restoration by regulating the PI3K/AKT/mTOR signaling pathway.

CONCLUSIONS

The present study suggests that MLT may attenuate long-term expansion-caused cellular senescence by restoring autophagy, most likely via the PI3K/AKT/mTOR signaling pathway in an MT-dependent manner. This is the first report identifying the involvement of MT-dependent PI3K/AKT/mTOR signaling in MLT-induced autophagy alteration, indicating a potential of autophagy-restoring agents such as MLT to be used in the development of optimized clinical-scale cell production protocols.

摘要

背景

经过长期体外扩增的干细胞在其干细胞特性和治疗潜力方面很可能功能受损(即细胞衰老)。由于其能够减轻细胞衰老,褪黑素(MLT)已被提议作为长期细胞扩增方案的辅助剂,但 MLT 诱导细胞年轻化的机制仍知之甚少。

方法

分离并体外培养人牙周膜干细胞(PDLSCs),最多扩增 15 代,使用第 2、7 和 15 代(P2、P7 和 P15)的细胞来研究长期扩增以及随后的 MLT 处理引起的细胞衰老和自噬变化。接下来,我们检查了 MLT 是否可以通过恢复受损细胞的自噬过程来诱导细胞年轻化,并探讨了潜在的信号通路。在这种情况下,细胞衰老通过衰老相关β-半乳糖苷酶(SA-β-半乳糖苷酶)活性和衰老相关蛋白的表达来指示,包括 p53、p21、p16 和γ-H2AX。同时,通过透射电子显微镜观察自噬小体(autophagic vesicles)、评估 mRFP-GFP-LC3 转染细胞的自噬流(autophagic flux)以及 Western blot 检测自噬相关蛋白(Atg7、Beclin-1、LC3-II 和 p62)来评估细胞自噬过程。

结果

我们发现,长期的体外传代导致细胞衰老,同时伴随着自噬受损。不出所料,MLT 补充不仅使细胞恢复到更年轻的状态,而且恢复了衰老细胞的自噬。此外,我们证明了自噬抑制剂可以阻断 MLT 诱导的细胞年轻化。当研究涉及的潜在信号通路时,我们发现 MLT 受体(MT)通过调节 PI3K/AKT/mTOR 信号通路介导 MLT 相关的自噬恢复。

结论

本研究表明,MLT 可能通过恢复自噬来减轻长期扩增引起的细胞衰老,这很可能是通过 MT 依赖性的 PI3K/AKT/mTOR 信号通路。这是首次报道 MT 依赖性 PI3K/AKT/mTOR 信号通路参与 MLT 诱导的自噬改变,表明像 MLT 这样的自噬恢复剂有潜力用于优化临床规模的细胞生产方案的开发。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5e00/8082824/3e14c7f90acb/13287_2021_2322_Fig1_HTML.jpg

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