Human adipose stromal cells differentiate towards a tendon phenotype with adapted visco-elastic properties in a 3D-culture system.

IF 1.8 4区 生物学 Q3 BIOLOGY
Biology Open Pub Date : 2025-05-15 Epub Date: 2025-05-12 DOI:10.1242/bio.061911
Maxime Hordé, Jonathan Fouchard, Luna Gomez Palacios, Xavier Laffray, Cédrine Blavet, Véronique Béréziat, Claire Lagathu, Ludovic Gaut, Delphine Duprez, Emmanuelle Havis
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引用次数: 0

Abstract

Tendon cell differentiation relies on molecular and mechanical parameters that control the expression of tendon-associated transcription factors and extracellular matrix proteins. However, the minimal cues able to initiate tendon differentiation from progenitor cells remains unknown. We analysed the tendon differentiation program in human adipose stromal cells (hASCs) cultured in a minimal 3D system. We generated 3D-hASC constructs by embedding hASCs in a type-I collagen gel under a static uniaxial geometrical constraint with no additional molecular and mechanical cues, and assessed tendon-associated gene expression and mechanical properties for up to 3 weeks in culture. Analysis of tendon-associated genes revealed a molecular progression consistent with the acquisition of a tendon phenotype. The analysis of viscoelastic properties of 3D-hASC constructs by nano-indentation indicated a progressive increase in tissue stiffness up to 10 kPa, concomitant with a reduced stress relaxation indicative of solid-like mechanical properties. These changes in mechanical properties parallel the molecular change of matrix genes during the time of cultures. In summary, we have established that hASCs cultured in a minimal 3D-system progress into the tendon differentiation program associated with variations of mechanical properties.

在3d培养系统中,人类脂肪基质细胞分化为具有适应性粘弹性特性的肌腱表型。
肌腱细胞分化依赖于控制肌腱相关转录因子和细胞外基质蛋白表达的分子和力学参数。然而,能够从祖细胞开始肌腱分化的最小提示仍然未知。我们分析了在最小3D系统中培养的人脂肪基质细胞(hASCs)的肌腱分化程序。我们将hasc嵌入i型胶原凝胶中,在静态单轴几何约束下生成3D-hASC构建物,没有额外的分子和机械提示,并在培养中评估肌腱相关基因表达和机械特性长达3周。肌腱相关基因的分析揭示了与肌腱表型获得一致的分子进展。通过纳米压痕分析3D-hASC结构的粘弹性性能表明,组织刚度逐渐增加至10 kPa,同时应力松弛减少,表明类似固体的力学性能。在培养过程中,这些力学性质的变化与基质基因的分子变化相似。总之,我们已经确定,在最小3d系统中培养的hASCs进展为肌腱分化程序,与力学性能的变化有关。
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来源期刊
Biology Open
Biology Open BIOLOGY-
CiteScore
3.90
自引率
0.00%
发文量
162
审稿时长
8 weeks
期刊介绍: Biology Open (BiO) is an online Open Access journal that publishes peer-reviewed original research across all aspects of the biological sciences. BiO aims to provide rapid publication for scientifically sound observations and valid conclusions, without a requirement for perceived impact.
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