Human Muscle-Derived Vascular Stem Cells Can Support Hematopoietic Stem/Progenitor Cells In Vitro.

IF 3.8 3区 医学 Q2 CELL & TISSUE ENGINEERING
Stem Cells International Pub Date : 2025-06-17 eCollection Date: 2025-01-01 DOI:10.1155/sci/4451561
Tingting Yang, Jie Ma, Siqi Zhang, Rui Zhou, Xiaoping Yang, Bo Zheng
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Abstract

Background: The normal hematopoiesis of the body depends on the interaction between hematopoietic stem/progenitor cells (HSPCs) and mesenchymal stem cells (MSCs) that support the growth and development of hematopoietic cells. However, the separation of MSCs from bone marrow is somewhat limited, and the researchers have turned their attention to stromal cells outside the bone marrow. As the largest organ of human body, skeletal muscle tissue stores a variety of muscle-derived vascular stem/progenitor cells, including muscle-derived pericytes/perivascular cells (MD-PCs) and skeletal muscle derived myoendothelial cells (MECs). Studies have shown that MD-PCs and MECs are similar to bone morrow-derived MSCs (BM-MSCs), which express the surface markers of MSCs and have the potential of multidirectional differentiation. However, very few researches have been done on whether MD-PCs and MECs, like MSCs, can support HSPCs expansion/proliferation, differentiation and possible hematopoietic regulation mechanisms, so the hematopoietic support of these cells remains to be studied. Objective: To identify the biological characteristics of CD146+ PCs and MECs isolated from human skeletal muscle and to study their supporting effect on umbilical cord blood (UCB) CD34+ cells in vitro. Methods: Human skeletal muscle-derived CD146+ PCs and MECs were isolated and purified by multiparameter flow cytometry and their biological characteristics were identified. The coculture system for CD34+ cells with CD146+ PCs and MECs as trophoblastic layer, and BM-MSCs as positive control, was established in vitro, respectively. The main outcome measures, including the number and immunophenotype of the cells, the colony formation ability, the expression levels of cytokines were analyzed and compared at 1, 2, and 4 weeks after coculture. Results: CD146+ PCs and MECs were isolated by multiparameter flow cytometry and their purity of was 92.55% ± 0.55% and 96.60% ± 1.14% (n = 18), respectively. Both of the cells could be differentiated into osteoblasts, chondrocytes, adipocytes, and myocytes. Compared with the positive control group of BM-MSCs, the experimental group of CD146+ PCs and MECs showed no significant differences in cell number, colony formation ability and immunophenotype (CD45+, CD34+ CD33-, CD14+, and CD10+/CD19+; p  > 0.05, n = 5), separately. The expression levels of cytokines in the culture supernatants of CD146+ PCs group, MECs group, and BM-MSCs group were measured by ELISA. The expression levels of TPO, IFN-γ, HGF, MCSF, and SCF cytokines were different among CD146+ PCs, MECs, and human BM-MSCs (p < 0.05, n = 3). Due to the no nourishing feeder layer in culture system, the number of CD34+ cells decreased significantly in the 1st week and no cells survived in the 2nd week. Therefore, the cell immunophenotype and colony analysis and the expression levels of cytokines could not be performed. Conclusion: In summary, CD146+ PCs and MECs from human skeletal muscle, like human BM-MSCs, have hematopoietic support capacity in vitro.

人肌源性血管干细胞在体外支持造血干细胞/祖细胞
背景:机体的正常造血依赖于造血干细胞/祖细胞(HSPCs)和间充质干细胞(MSCs)之间的相互作用,它们支持造血细胞的生长和发育。然而,骨髓间充质干细胞的分离在一定程度上是有限的,研究人员已经将注意力转向骨髓外的基质细胞。骨骼肌组织作为人体最大的器官,储存着多种肌源性血管干/祖细胞,包括肌源性周细胞/血管周围细胞(MD-PCs)和骨骼肌源性肌内皮细胞(MECs)。研究表明,MD-PCs和MECs类似于骨髓间充质干细胞(bone marrow MSCs, BM-MSCs),表达MSCs的表面标记物,具有多向分化的潜力。然而,关于MD-PCs和MECs是否能像MSCs一样支持HSPCs的扩增/增殖、分化和可能的造血调节机制的研究很少,因此这些细胞的造血支持作用仍有待研究。目的:鉴定从人骨骼肌分离的CD146+ PCs和MECs的生物学特性,并研究其对体外脐带血CD34+细胞的支持作用。方法:采用多参数流式细胞术分离纯化人骨骼肌来源的CD146+ PCs和MECs,鉴定其生物学特性。以CD146+ PCs和MECs为滋养层,BM-MSCs为阳性对照,分别建立CD34+细胞体外共培养体系。在共培养后1、2和4周,分析和比较主要的结局指标,包括细胞数量和免疫表型、集落形成能力、细胞因子的表达水平。结果:经多参数流式细胞术分离得到CD146+ PCs和MECs,其纯度分别为92.55%±0.55%和96.60%±1.14% (n = 18)。两种细胞均可分化为成骨细胞、软骨细胞、脂肪细胞和肌细胞。与BM-MSCs阳性对照组相比,CD146+ PCs和MECs实验组的细胞数量、集落形成能力和免疫表型(CD45+、CD34+、CD33-、CD14+和CD10+/CD19+)均无显著差异;P < 0.05, n = 5)。采用ELISA法检测CD146+ PCs组、mec组和BM-MSCs组培养上清中细胞因子的表达水平。TPO、IFN-γ、HGF、MCSF和SCF细胞因子在CD146+ pc、mec和人BM-MSCs中的表达水平存在差异(p < 0.05, n = 3)。由于培养体系中无滋养饲喂层,第1周CD34+细胞数量明显减少,第2周无细胞存活。因此,无法进行细胞免疫表型和集落分析以及细胞因子的表达水平。结论:综上所述,来自人骨骼肌的CD146+ PCs和mec与人BM-MSCs一样具有体外造血支持能力。
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来源期刊
Stem Cells International
Stem Cells International CELL & TISSUE ENGINEERING-
CiteScore
8.10
自引率
2.30%
发文量
188
审稿时长
18 weeks
期刊介绍: Stem Cells International is a peer-reviewed, Open Access journal that publishes original research articles, review articles, and clinical studies in all areas of stem cell biology and applications. The journal will consider basic, translational, and clinical research, including animal models and clinical trials. Topics covered include, but are not limited to: embryonic stem cells; induced pluripotent stem cells; tissue-specific stem cells; stem cell differentiation; genetics and epigenetics; cancer stem cells; stem cell technologies; ethical, legal, and social issues.
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