Mechanical heterogeneity in a soft biomaterial niche controls BMP2 signaling

IF 12.8 1区 医学 Q1 ENGINEERING, BIOMEDICAL Biomaterials Pub Date : 2024-05-16 DOI:10.1016/j.biomaterials.2024.122614
Erik Brauer , Aaron Herrera , Raphaela Fritsche-Guenther , Sophie Görlitz , Hans Leemhuis , Petra Knaus , Jennifer A. Kirwan , Georg N. Duda , Ansgar Petersen
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Abstract

The extracellular matrix is known to impact cell function during regeneration by modulating growth factor signaling. However, how the mechanical properties and structure of biomaterials can be used to optimize the cellular response to growth factors is widely neglected. Here, we engineered a macroporous biomaterial to study cellular signaling in environments that mimic the mechanical stiffness but also the mechanical heterogeneity of native extracellular matrix. We found that the mechanical interaction of cells with the heterogeneous and non-linear deformation properties of soft matrices (E < 5 kPa) enhances BMP-2 growth factor signaling with high relevance for tissue regeneration. In contrast, this effect is absent in homogeneous hydrogels that are often used to study cell responses to mechanical cues. Live cell imaging and in silico finite element modeling further revealed that a subpopulation of highly active, fast migrating cells is responsible for most of the material deformation, while a second, less active population experiences this deformation as an extrinsic mechanical stimulation. At an overall low cell density, the active cell population dominates the process, suggesting that it plays a particularly important role in early tissue healing scenarios where cells invade tissue defects or implanted biomaterials. Taken together, our findings demonstrate that the mechanical heterogeneity of the natural extracellular matrix environment plays an important role in triggering regeneration by endogenously acting growth factors. This suggests the inclusion of such mechanical complexity as a design parameter in future biomaterials, in addition to established parameters such as mechanical stiffness and stress relaxation.

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软生物材料龛中的机械异质性控制着 BMP2 信号传导
众所周知,细胞外基质可通过调节生长因子信号来影响再生过程中的细胞功能。然而,如何利用生物材料的机械特性和结构来优化细胞对生长因子的反应却被广泛忽视。在这里,我们设计了一种大孔生物材料来研究细胞信号在模拟机械刚度以及原生细胞外基质机械异质性的环境中的传递。我们发现,细胞与软基质(E < 5 kPa)的异质性和非线性变形特性之间的机械相互作用增强了 BMP-2 生长因子信号转导,与组织再生密切相关。相比之下,通常用于研究细胞对机械线索反应的均质水凝胶却没有这种效应。活细胞成像和硅学有限元建模进一步揭示出,高活性、快速迁移的细胞亚群对材料的大部分变形负责,而第二个不太活跃的细胞群则将这种变形视为一种外在机械刺激。在整体细胞密度较低的情况下,活跃细胞群主导着整个过程,这表明它在细胞侵入组织缺损或植入生物材料的早期组织愈合过程中发挥着特别重要的作用。综上所述,我们的研究结果表明,天然细胞外基质环境的机械异质性在通过内源性生长因子触发再生方面发挥着重要作用。这表明,除了机械刚度和应力松弛等既定参数外,未来的生物材料还应将这种机械复杂性作为一个设计参数。
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来源期刊
Biomaterials
Biomaterials 工程技术-材料科学:生物材料
CiteScore
26.00
自引率
2.90%
发文量
565
审稿时长
46 days
期刊介绍: Biomaterials is an international journal covering the science and clinical application of biomaterials. A biomaterial is now defined as a substance that has been engineered to take a form which, alone or as part of a complex system, is used to direct, by control of interactions with components of living systems, the course of any therapeutic or diagnostic procedure. It is the aim of the journal to provide a peer-reviewed forum for the publication of original papers and authoritative review and opinion papers dealing with the most important issues facing the use of biomaterials in clinical practice. The scope of the journal covers the wide range of physical, biological and chemical sciences that underpin the design of biomaterials and the clinical disciplines in which they are used. These sciences include polymer synthesis and characterization, drug and gene vector design, the biology of the host response, immunology and toxicology and self assembly at the nanoscale. Clinical applications include the therapies of medical technology and regenerative medicine in all clinical disciplines, and diagnostic systems that reply on innovative contrast and sensing agents. The journal is relevant to areas such as cancer diagnosis and therapy, implantable devices, drug delivery systems, gene vectors, bionanotechnology and tissue engineering.
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