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生物工程复合支架上脂肪来源干细胞分化为上皮样细胞的接种细胞密度优化

Optimization of seeding cell density for differentiation of adipose-derived stem cells into epithelial-like cells on bioengineered composite scaffolds.

作者信息

Tchoukalova Yourka D, Shah Manisha K, Myers Cheryl E, Zhang Nan, Lott David G

机构信息

Mayo Clinic Arizona, Head and Neck Regenerative Medicine Laboratory, Scottsdale, AZ, USA.

Mayo Clinic Arizona, Department of Quantitative Health Science Research, Scottsdale, AZ, USA.

出版信息

Differentiation. 2025 May-Jun;143:100870. doi: 10.1016/j.diff.2025.100870. Epub 2025 May 20.

Abstract

This study investigates the biological factors influencing the epithelial differentiation of adipose-derived stem cells (ASC) to develop an engineered upper airway construct. One fraction of ASC was seeded onto a fibrin sealant (Tisseel) matrix encompassing an additional equal fraction of ASC that has been integrated into a porous polyethylene scaffold (Medpor®). Constructs with ASC seeded at total densities of 5 × 10, 1 × 10, 2.5 × 10, and 5 × 10 cells cm-2 were cultured under submerged conditions for 11 days to achieve partial epithelial differentiation (PD). To simulate post-transplantation exposure to air and interaction with host epithelial cells, PD constructs with ASC at 5 × 10 cells cm-2 were transitioned to air-liquid interface (ALI) conditions for additional 10 days (PD/ALI-21d) or 21 days (PD/ALI-32d). The latter cultures were either maintained alone or co-cultured with bronchial epithelial cells (PD/ALI-32d + BEAS). Gene expressions of mesenchymal and epithelial basal, secretory, and ciliated cell markers were assessed and validated via immunohistochemistry. ASC seeded at 5 × 10 cells cm-2 achieved the highest partial epithelial differentiation, supporting the use of this density for further experiments. In PD/ALI-21d, basal and secretory epithelial marker gene expression significantly increased, while ciliated cell markers remained unchanged. In PD/ALI-32d, expression of basal and goblet cell markers and several mesenchymal stem cell markers decreased, but co-culturing with BEAS maintained the levels of their expression. These results indicate that long-term ALI cultures cannot sustain terminal differentiation of ASC into secretory phenotypes without co-culture with primary epithelial cells. In conclusion, partially differentiated ASC on constructs maintain a stem cell phenotype and may promote differentiation into basal/secretory phenotypes, but not ciliated cells. Enhancing ciliogenesis and ensuring ASC commitment to the epithelial lineage, require modifications to the study design.

摘要

本研究调查了影响脂肪来源干细胞(ASC)上皮分化的生物学因素,以构建工程化上呼吸道结构。将一部分ASC接种到纤维蛋白密封剂(Tisseel)基质上,该基质包含另外等量的已整合到多孔聚乙烯支架(Medpor®)中的ASC。将ASC以5×10、1×10、2.5×10和5×10个细胞/cm²的总密度接种到构建体上,在浸没条件下培养11天以实现部分上皮分化(PD)。为了模拟移植后暴露于空气以及与宿主上皮细胞的相互作用,将5×10个细胞/cm²的ASC的PD构建体转移到气液界面(ALI)条件下再培养10天(PD/ALI - 21天)或21天(PD/ALI - 32天)。后一种培养物要么单独维持,要么与支气管上皮细胞共培养(PD/ALI - 32天 + BEAS)。通过免疫组织化学评估并验证间充质和上皮基底、分泌及纤毛细胞标志物的基因表达。以5×10个细胞/cm²接种的ASC实现了最高程度的部分上皮分化,支持将该密度用于进一步实验。在PD/ALI - 21天,基底和分泌上皮标志物基因表达显著增加,而纤毛细胞标志物保持不变。在PD/ALI - 32天,基底和杯状细胞标志物以及几种间充质干细胞标志物的表达下降,但与BEAS共培养维持了它们的表达水平。这些结果表明,长期ALI培养在不与原代上皮细胞共培养的情况下无法维持ASC向分泌表型的终末分化。总之,构建体上部分分化的ASC维持干细胞表型,并可能促进向基底/分泌表型分化,但不能分化为纤毛细胞。增强纤毛生成并确保ASC向上皮谱系定向分化,需要对研究设计进行改进。

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