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超越包封:探索植入物诱导纤维化中巨噬细胞与成纤维细胞的相互作用

Beyond Encapsulation: Exploring Macrophage-Fibroblast Cross Talk in Implant-Induced Fibrosis.

作者信息

Sudarsanam Phani Krishna, Alsema Els C, Beijer Nick R M, Kooten Theo van, Boer Jan de

机构信息

Department of Biomedical Engineering, Institute of Complex Molecular Systems, Eindhoven University of Technology, Eindhoven, The Netherlands.

Centre for Health Protection, National Institute for Public Health and the Environment, Bilthoven, The Netherlands.

出版信息

Tissue Eng Part B Rev. 2024 Dec;30(6):596-606. doi: 10.1089/ten.TEB.2023.0300. Epub 2024 Mar 27.

Abstract

The foreign body response (FBR) and organ fibrosis are complex biological processes involving the interaction between macrophages and fibroblasts. Understanding the molecular mechanisms underlying macrophage-fibroblast cross talk is crucial for developing strategies to mitigate implant encapsulation, a major cause of implant failure. This article reviews the current knowledge on the role of macrophages and fibroblasts in the FBR and organ fibrosis, highlighting the similarities between these processes. The FBR is characterized by the formation of a fibrotic tissue capsule around the implant, leading to functional impairment. Various factors, including material properties such as surface chemistry, stiffness, and topography, influence the degree of encapsulation. Cross talk between macrophages and fibroblasts plays a critical role in both the FBR and organ fibrosis. However, the precise molecular mechanisms remain poorly understood. Macrophages secrete a wide range of cytokines that modulate fibroblast behavior such as abundant collagen deposition and myofibroblast differentiation. However, the heterogeneity of macrophages and fibroblasts and their dynamic behavior in different tissue environments add complexity to this cross talk. Experimental evidence from studies demonstrates the impact of material properties on macrophage cytokine secretion and fibroblast physiology. However, the correlation between response and encapsulation outcomes is not robust. Adverse outcome pathways (AOPs) offer a potential framework to understand and predict process complexity. AOPs describe causal relationships between measurable events leading to adverse outcomes, providing mechanistic insights for testing and predictive modeling. However, the development of an AOP for the FBR does require a comprehensive understanding of the molecular initiating events and key event relationships to identify which events are essential. In this article, we describe the current knowledge on macrophage-fibroblast cross talk in the FBR and discuss how targeted research can help build an AOP for implant-related fibrosis. Impact statement Biomaterials are widely used to manufacture medical devices, but implantation is associated with a foreign body response (FBR), which may lead to failure of the implants. Surface properties are related to FBR severity. In this review, we zoom in on the cross talk between the two key players, macrophages and fibroblasts, and propose the use of Adverse Outcome Pathways to decipher the causal link between material properties and the severity of the FBR. This approach will help increase a mechanistic understanding of the FBR and, thus, aid in the design of immunomodulatory implant surfaces.

摘要

异物反应(FBR)和器官纤维化是复杂的生物学过程,涉及巨噬细胞和成纤维细胞之间的相互作用。了解巨噬细胞 - 成纤维细胞相互作用的分子机制对于制定减轻植入物包膜形成的策略至关重要,植入物包膜形成是植入失败的主要原因。本文综述了目前关于巨噬细胞和成纤维细胞在FBR和器官纤维化中作用的知识,强调了这些过程之间的相似性。FBR的特征是在植入物周围形成纤维化组织包膜,导致功能受损。各种因素,包括材料特性,如表面化学、硬度和形貌,都会影响包膜的程度。巨噬细胞和成纤维细胞之间的相互作用在FBR和器官纤维化中都起着关键作用。然而,确切的分子机制仍知之甚少。巨噬细胞分泌多种细胞因子,调节成纤维细胞的行为,如大量胶原蛋白沉积和肌成纤维细胞分化。然而,巨噬细胞和成纤维细胞的异质性及其在不同组织环境中的动态行为增加了这种相互作用的复杂性。来自研究的实验证据表明了材料特性对巨噬细胞细胞因子分泌和成纤维细胞生理学的影响。然而,FBR反应与植入物包膜形成结果之间的相关性并不强。不良结局途径(AOPs)为理解和预测过程复杂性提供了一个潜在的框架。AOPs描述了导致不良结局的可测量事件之间的因果关系,为测试和预测建模提供了机制性见解。然而,开发FBR的AOP确实需要全面了解分子起始事件和关键事件关系,以确定哪些事件是必不可少的。在本文中,我们描述了目前关于FBR中巨噬细胞 - 成纤维细胞相互作用的知识,并讨论了有针对性的研究如何有助于构建与植入物相关纤维化的AOP。影响声明生物材料被广泛用于制造医疗设备,但植入会引发异物反应(FBR),这可能导致植入物失败。表面特性与FBR严重程度相关。在本综述中,我们聚焦于两个关键参与者巨噬细胞和成纤维细胞之间的相互作用,并提出使用不良结局途径来解读材料特性与FBR严重程度之间的因果联系。这种方法将有助于增加对FBR的机制理解,从而有助于设计免疫调节性植入物表面。

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