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基于静电纺丝纤维的策略控制早期固有免疫细胞反应:构建促进组织修复的免疫调节型网孔设计。

Electrospun fiber-based strategies for controlling early innate immune cell responses: Towards immunomodulatory mesh designs that facilitate robust tissue repair.

机构信息

Department of Chemical Engineering, Indian Institute of Technology Hyderabad, NH 65, Sangareddy, Telangana 502285, India.

Prof Brien Holden Eye Research Centre, LV Prasad Eye Institute, Hyderabad, India; Manipal Academy of Higher Education, Manipal, Karnataka, India.

出版信息

Acta Biomater. 2023 Jun;163:228-247. doi: 10.1016/j.actbio.2022.06.004. Epub 2022 Jun 5.

Abstract

Electrospun fibrous meshes are widely used for tissue repair due to their ability to guide a host of cell responses including phenotypic differentiation and tissue maturation. A critical factor determining the eventual biological outcomes of mesh-based regeneration strategies is the early innate immune response following implantation. The natural healing process involves a sequence of tightly regulated, temporally varying and delicately balanced pro-/anti-inflammatory events which together promote mesh integration with host tissue. Matrix designs that do not account for the immune milieu can result in dysregulation, chronic inflammation and fibrous capsule formation, thus obliterating potential therapeutic outcomes. In this review, we provide systematic insights into the effects of specific fiber/mesh properties and mechanical stimulation on the responses of early innate immune modulators viz., neutrophils, monocytes and macrophages. We identify matrix characteristics that promote anti-inflammatory immune phenotypes, and we correlate such responses with pro-regenerative in vivo outcomes. We also discuss recent advances in 3D fabrication technologies, bioactive functionalization approaches and biomimetic/bioinspired immunomodulatory mesh design strategies for tissue repair and wound healing. The mechanobiological insights and immunoregulatory strategies discussed herein can help improve the translational outcomes of fiber-based regeneration. STATEMENT OF SIGNIFICANCE: The crucial role played by immune cells in promoting biomaterial-based tissue regeneration is being increasingly recognized. In this review focusing on the interactions of innate immune cells with electrospun fibrous meshes, we systematically elucidate the effects of the fiber microenvironment and mechanical stimulation on biological responses, and build upon these insights to inform the rational design of immunomodulatory meshes for effective tissue repair. We discuss state-of-the-art fabrication methods and mechanobiological advances that permit the orchestration of temporally controlled phenotypic switches in immune cells during different phases of healing. The design strategies discussed herein can also be leveraged to target several complex autoimmune and inflammatory diseases.

摘要

电纺纤维网因其能够引导多种细胞反应,包括表型分化和组织成熟,而被广泛用于组织修复。决定基于网片的再生策略最终生物学结果的一个关键因素是植入后早期固有免疫反应。自然愈合过程涉及一系列严格调控、时间变化和微妙平衡的促炎/抗炎事件,这些事件共同促进网片与宿主组织的整合。如果不考虑免疫环境,基质设计可能会导致失调、慢性炎症和纤维囊形成,从而消除潜在的治疗效果。在这篇综述中,我们系统地研究了特定纤维/网片特性和机械刺激对早期固有免疫调节剂(如中性粒细胞、单核细胞和巨噬细胞)反应的影响。我们确定了促进抗炎免疫表型的基质特性,并将这些反应与体内的促再生结果相关联。我们还讨论了 3D 制造技术、生物活性功能化方法以及仿生/免疫调节网片设计策略的最新进展,这些方法可用于组织修复和伤口愈合。本文讨论的力学生物学见解和免疫调节策略有助于提高纤维再生的转化结果。

意义

免疫细胞在促进基于生物材料的组织再生中的关键作用正日益受到重视。在这篇综述中,我们重点关注固有免疫细胞与电纺纤维网的相互作用,系统阐明纤维微环境和机械刺激对生物学反应的影响,并在此基础上为设计具有免疫调节功能的网片以实现有效的组织修复提供信息。我们讨论了最先进的制造方法和力学生物学进展,这些进展允许在不同的愈合阶段对免疫细胞进行时间控制的表型转换。本文讨论的设计策略还可以用于靶向几种复杂的自身免疫和炎症性疾病。

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