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长期培养增强 hiPSC 间质祖细胞衍生条件培养基的刺激活性。

Prolonged cultivation enhances the stimulatory activity of hiPSC mesenchymal progenitor-derived conditioned medium.

机构信息

Ludwig Boltzmann Institute for Traumatology, The Research Centre in Cooperation with AUVA, Donaueschingenstrasse 13, Vienna, A-1200, Austria.

Austrian Cluster for Tissue Regeneration, Donaueschingenstrasse 13, Vienna, 1200, Austria.

出版信息

Stem Cell Res Ther. 2024 Nov 17;15(1):434. doi: 10.1186/s13287-024-03960-5.

Abstract

BACKGROUND

Human induced pluripotent stem cells represent a scalable source of youthful tissue progenitors and secretomes for regenerative therapies. The aim of our study was to investigate the potential of conditioned medium (CM) from hiPSC-mesenchymal progenitors (hiPSC-MPs) to stimulate osteogenic differentiation of human bone marrow-derived mesenchymal stromal cells (MSCs). We also investigated whether prolonged cultivation or osteogenic pre-differentiation of hiPSC-MPs could enhance the stimulatory activity of CM.

METHODS

MSCs were isolated from 13 donors (age 20-90 years). CM derived from hiPSC-MPs was added to the MSC cultures and the effects on proliferation and osteogenic differentiation were examined after 14 days and 6 weeks. The stimulatory activity of hiPSC-MP-CM was compared with the activity of MSC-derived CM and with the activity of CM prepared from hiPSC-MPs pre-cultured in growth or osteogenic medium for 14 days. Comparative proteomic analysis of CM was performed to gain insight into the molecular components responsible for the stimulatory activity.

RESULTS

Primary bone marrow-derived MSC exhibited variability, with a tendency towards lower proliferation and tri-lineage differentiation in older donors. hiPSC-MP-CM increased the proliferation and alkaline phosphatase activity of MSC from several adult/aged donors after 14 days of continuous supplementation under osteogenic conditions. However, CM supplementation failed to improve the mineralization of MSC pellets after 6 weeks under osteogenic conditions. hiPSC-MP-CM showed greater enhancement of proliferation and ALP activity than CM derived from bone marrow-derived MSCs. Moreover, 14-day cultivation but not osteogenic pre-differentiation of hiPSC-MPs strongly enhanced CM stimulatory activity. Quantitative proteomic analysis of d14-CM revealed a distinct profile of components that formed a highly interconnected associations network with two clusters, one functionally associated with binding and organization of actin/cytoskeletal components and the other with structural constituents of the extracellular matrix, collagen, and growth factor binding. Several hub proteins were identified that were reported to have functions in cell-extracellular matrix interaction, osteogenic differentiation and development.

CONCLUSIONS

Our data show that hiPSC-MP-CM enhances early osteogenic differentiation of human bone marrow-derived MSCs and that prolonged cultivation of hiPSC-MPs enhances CM-stimulatory activity. Proteomic analysis of the upregulated protein components provides the basis for further optimization of hiPSC-MP-CM for bone regenerative therapies.

摘要

背景

人类诱导多能干细胞代表了一种可扩展的年轻组织祖细胞和分泌组来源,可用于再生疗法。我们的研究目的是研究条件培养基(CM)是否能从 hiPSC 间充质祖细胞(hiPSC-MPs)中刺激人骨髓间充质基质细胞(MSCs)的成骨分化。我们还研究了 hiPSC-MPs 的长期培养或成骨前分化是否可以增强 CM 的刺激活性。

方法

从 13 名供体(年龄 20-90 岁)中分离 MSCs。将 hiPSC-MPs 衍生的 CM 添加到 MSC 培养物中,在 14 天和 6 周后检查对增殖和成骨分化的影响。将 hiPSC-MP-CM 的刺激活性与 MSC 衍生 CM 的活性以及在生长或成骨培养基中培养 14 天的 hiPSC-MPs 制备的 CM 的活性进行比较。对 CM 进行比较蛋白质组学分析,以深入了解负责刺激活性的分子成分。

结果

原代骨髓源性 MSC 表现出变异性,老年供体的增殖和三系分化倾向较低。在成骨条件下连续补充 14 天后,hiPSC-MP-CM 增加了来自几个成年/老年供体的 MSC 的增殖和碱性磷酸酶活性。然而,在成骨条件下 6 周后,CM 补充未能改善 MSC 球状体的矿化。hiPSC-MP-CM 比源自骨髓源性 MSC 的 CM 更能增强增殖和 ALP 活性。此外,hiPSC-MPs 的 14 天培养而非成骨前分化强烈增强了 CM 的刺激活性。d14-CM 的定量蛋白质组学分析显示出成分的独特图谱,这些成分形成了一个高度相互关联的关联网络,其中两个簇与肌动蛋白/细胞骨架成分的结合和组织以及细胞外基质的结构成分、胶原蛋白和生长因子结合有关。鉴定出几个枢纽蛋白,据报道这些蛋白在细胞-细胞外基质相互作用、成骨分化和发育中具有功能。

结论

我们的数据表明,hiPSC-MP-CM 增强了人骨髓源性 MSC 的早期成骨分化,而 hiPSC-MPs 的长期培养增强了 CM 的刺激活性。上调蛋白成分的蛋白质组学分析为进一步优化 hiPSC-MP-CM 用于骨再生疗法提供了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0253/11572509/5bd916d8de32/13287_2024_3960_Fig1_HTML.jpg

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