Autophagy modulates tenogenic differentiation of cartilage-derived stem cells in response to mechanical tension via FGF signaling.

IF 5.4 2区 医学 Q1 CELL & TISSUE ENGINEERING Stem Cells Translational Medicine Pub Date : 2024-11-29 DOI:10.1093/stcltm/szae085
Rui Zuo, Haoke Li, Chenhui Cai, Wen Xia, Jiabin Liu, Jie Li, Yuan Xu, Yi Zhang, Changqing Li, Yuzhang Wu, Chao Zhang
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Abstract

Background: In our previous study, we demonstrated that cartilage-derived stem cells (CDSCs) possess multi-differentiation potential, enabling direct bone-to-tendon structure regeneration after transplantation in a rat model. Therefore, the objective of this study is to investigate whether CDSCs are a suitable candidate for achieving biological regeneration of tendon injuries.

Methods: Tenogenic differentiation was evaluated through cell morphology observation, PCR, and Western blot (WB) analysis. Autophagic flux, transmission electron microscopy, and WB analysis were employed to elucidate the role of autophagy during CDSC tenogenic differentiation. Cell survival and tenogenesis of transplanted CDSCs were assessed using fluorescence detection of gross and frozen section images. Heterotopic ossification and quality of tendon healing were evaluated by immunofluorescence, hematoxylin-eosin (H&E), and Safrinin O/Fast Green stains.

Results: We found autophagy is activated in CDSCs when treated with cyclic tensile stress, which facilitates the preservation of their chondrogenic potential while impeding tenogenic differentiation. Inhibiting autophagy with chloroquine promoted tenogenic differentiation of CDSCs in response to cyclic tensile stress through activation of the Fgf2/Fgfr2 signaling pathway. This mechanism was further validated by 2 mouse transplantation models, revealed that autophagy inhibition could enhance the tendon regeneration efficacy of transplanted CDSCs at the patellar tendon resection site.

Conclusion: Our findings provide insights into CDSC transplantation for achieving biological regeneration of tendon injuries, and demonstrate how modulation of autophagy in CDSCs can promote tenogenic differentiation in response to tensile stress both in vivo and in vitro.

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自噬通过 FGF 信号调节软骨源性干细胞对机械张力的韧化分化。
背景:在我们之前的研究中,我们证明了软骨源性干细胞(CDSCs)具有多分化潜能,在大鼠模型中移植后能够直接实现骨-肌腱结构再生。因此,本研究的目的是探讨CDSCs是否是实现肌腱损伤生物再生的合适候选材料。方法:采用细胞形态学观察、PCR、Western blot等方法观察小鼠的成肌腱分化情况。采用自噬通量、透射电镜和WB分析来阐明自噬在CDSC成腱分化中的作用。采用肉眼和冷冻切片图像的荧光检测评估移植的CDSCs的细胞存活和肌腱形成。采用免疫荧光、苏木精-伊红(H&E)和Safrinin O/Fast Green染色评价异位骨化和肌腱愈合质量。结果:我们发现CDSCs在循环拉伸应力的作用下,自噬被激活,这有助于保存其成软骨潜能,同时阻碍成肌腱分化。用氯喹抑制自噬,通过激活Fgf2/Fgfr2信号通路,促进CDSCs对循环拉伸应力的肌腱分化。通过2个小鼠移植模型进一步验证了这一机制,发现自噬抑制可以增强移植的CDSCs在髌腱切除部位的肌腱再生效果。结论:我们的研究结果为CDSC移植实现肌腱损伤的生物再生提供了见解,并证明了CDSCs自噬的调节如何在体内和体外对拉伸应力的反应中促进肌腱分化。
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公司名称
产品信息
索莱宝
Antigen Retrieval Solution
索莱宝
Safranin O/Fast Green
索莱宝
hematoxylin and eosin (H&E)
索莱宝
chloroquine
索莱宝
rapamycin
索莱宝
Antigen Retrieval Solution
索莱宝
Safranin O/Fast Green
索莱宝
hematoxylin and eosin
索莱宝
chloroquine
索莱宝
rapamycin
来源期刊
Stem Cells Translational Medicine
Stem Cells Translational Medicine CELL & TISSUE ENGINEERING-
CiteScore
12.90
自引率
3.30%
发文量
140
审稿时长
6-12 weeks
期刊介绍: STEM CELLS Translational Medicine is a monthly, peer-reviewed, largely online, open access journal. STEM CELLS Translational Medicine works to advance the utilization of cells for clinical therapy. By bridging stem cell molecular and biological research and helping speed translations of emerging lab discoveries into clinical trials, STEM CELLS Translational Medicine will help move applications of these critical investigations closer to accepted best patient practices and ultimately improve outcomes. The journal encourages original research articles and concise reviews describing laboratory investigations of stem cells, including their characterization and manipulation, and the translation of their clinical aspects of from the bench to patient care. STEM CELLS Translational Medicine covers all aspects of translational cell studies, including bench research, first-in-human case studies, and relevant clinical trials.
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