流体剪切控制的亲/抗炎骨调节结构通过阳离子离子通道激活无药物免疫激活。

IF 9.6 2区 医学 Q1 ENGINEERING, BIOMEDICAL
Keya Ganguly, Aayushi Randhawa, Sayan Deb Dutta, Jieun Lee, Youjin Seol, Mehran Mohammad Hossein Pour, Tejal V Patil, Rumi Acharya, Ki-Taek Lim
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引用次数: 0

摘要

有效的骨再生需要免疫和机械信号的整合,而目前的生物材料往往无法实现这一点。为了解决这个问题,一种结合3D打印和静电纺丝的免疫调节支架被开发出来,旨在模拟骨骼和骨膜。该支架的外部是静电纺纳米纤维垫,内部是3d打印核心,创造了一个仿生结构,促进巨噬细胞在生理流体剪切应力(FSS)下进入促炎(M1)和抗炎(M2)状态的极化。RNA测序揭示了离子通道,特别是钾通道在巨噬细胞动态极化中的关键作用。该支架还支持间充质干细胞驱动的成骨,为骨修复建立协同环境。这种双功能支架有望通过在单一平台内整合机械转导和免疫调节来增强组织再生,特别是在免疫功能低下的情况下。我们的发现为克服现有生物材料的局限性和扩大其在再生医学中的应用提供了一种新的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fluid Shear-Controlled Pro/Anti-Inflammatory Osteomodulatory Construct for Drug-Free Immune Activation Through Cationic Ion Channel Activation.

Effective bone regeneration requires the integration of immune and mechanical signals, which current biomaterials often fail to achieve. To address this, an immunomodulatory scaffold is developed combining 3D printing and electrospinning, designed to mimic the bone and periosteum. The scaffold features an outer electrospun nanofiber mat and an inner 3D-printed core, creating a biomimetic structure that facilitates the polarization of macrophages into pro-inflammatory (M1) and anti-inflammatory (M2) states under physiological fluid shear stress (FSS). RNA sequencing revealed the pivotal role of ion channels, particularly potassium channels, in the dynamic polarization of macrophages. The scaffold also supports mesenchymal stem cell-driven osteogenesis, establishing a synergistic environment for bone repair. This dual-function scaffold holds promise for enhancing tissue regeneration, especially in immune-compromised conditions, by integrating mechanotransduction and immune modulation within a single platform. Our findings provide a novel approach to overcoming the limitations of existing biomaterials and expanding their applications in regenerative medicine.

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来源期刊
Advanced Healthcare Materials
Advanced Healthcare Materials 工程技术-生物材料
CiteScore
14.40
自引率
3.00%
发文量
600
审稿时长
1.8 months
期刊介绍: Advanced Healthcare Materials, a distinguished member of the esteemed Advanced portfolio, has been dedicated to disseminating cutting-edge research on materials, devices, and technologies for enhancing human well-being for over ten years. As a comprehensive journal, it encompasses a wide range of disciplines such as biomaterials, biointerfaces, nanomedicine and nanotechnology, tissue engineering, and regenerative medicine.
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