α-半乳糖纳米颗粒对巨噬细胞的招募和激活加速了巨噬细胞的再生,提高了生物材料在组织工程中的功效

U. Galili
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引用次数: 7

摘要

本文介绍了一种加速组织再生的新方法。-gal纳米颗粒,并提出了!-gal纳米颗粒介导的生物材料在组织工程中的应用! - gal纳米粒子存在多个!-gal表位(Gal!1-3Gal”1-4GlcNAc-R),它结合了人体内最丰富的天然抗体——抗gal抗体,占免疫球蛋白的1%。Anti-Gal / !-gal纳米粒子相互作用产生趋化补体裂解肽,诱导巨噬细胞快速和广泛募集。后续相互作用的Fc部分的反gal涂层!-gal纳米颗粒和巨噬细胞上的Fc#受体激活这些细胞产生细胞因子/生长因子,促进组织再生和招募干细胞。皮内注射!-gal纳米颗粒诱导巨噬细胞局部广泛募集和活化。这些巨噬细胞在3周内消失而不改变正常的皮肤结构。的应用!-gal纳米颗粒在抗gal产生动物的伤口上可减少40-70%的愈合时间。! 将- gal纳米颗粒注射到缺血心肌中,可诱导巨噬细胞的广泛募集,巨噬细胞分泌细胞因子,保持缺血组织的结构。这些巨噬细胞可以招募祖细胞和/或干细胞,在心肌微环境和细胞外基质的引导下分化为心肌细胞。! -Gal纳米颗粒应用于神经损伤将招募巨噬细胞,巨噬细胞可以促进诱导轴突发芽所需的血管生成,从而可能使切断的神经再生。在组织工程中,结合!由于巨噬细胞和干细胞的加速募集,将-gal纳米颗粒注入脱细胞组织和器官植入物可以改善体内再生和恢复植入物的生物学功能。本文综述了一种在损伤组织中招募和激活巨噬细胞的新方法。加纳米颗粒。本文进一步提出将这些纳米颗粒应用于组织工程生物材料中,以加速和提高组织修复和再生过程的效率。该方法是基于利用天然抗gal抗体的免疫潜力,这是人类最丰富的天然抗体。Anti-Gal与碳水化合物抗原“the !”-gal表位”,结构为Gal!1- 3gal " 1- 4GlcNAc-R。纳米粒子呈现多重!-gal - epi- topes和呼叫!-gal纳米颗粒将这些表位引入损伤部位或生物材料中。反Gal与!的相互作用-gal表位!-gal纳米颗粒激活补体系统,使巨噬细胞快速趋化募集。这种相互作用进一步诱导招募的巨噬细胞的促愈合功能,从而可能招募干细胞。本文综述了抗gal /!-gal纳米粒子相互作用加速
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Macrophages Recruitment and Activation by α-gal NanoparticlesAccelerate Regeneration and Can Improve Biomaterials Efficacy in TissueEngineering
This review describes a novel method for accelerating tissue regeneration by ! -gal nanoparticles and proposes methods for ! -gal nanoparticles mediated increased efficacy of biomaterials used in tissue engineering. ! -Gal nanoparti- cles present multiple ! -gal epitopes (Gal! 1-3Gal" 1-4GlcNAc-R) that bind the most abundant natural antibody in all hu- mans- the anti-Gal antibody, constituting ~1% of immunoglobulins. Anti-Gal/! -gal nanoparticles interaction generates chemotactic complement cleavage peptides that induce rapid and extensive recruitment of macrophages. The subsequent interaction between the Fc portion of anti-Gal coating ! -gal nanoparticles and Fc# receptors on macrophages activates these cells to produce cytokines/growth factors that promote tissue regeneration and recruit stem cells. Intradermal injec- tion of ! -gal nanoparticles induces localized extensive recruitment and activation of macrophages. These macrophages disappear within 3 weeks without altering normal skin architecture. Application of ! -gal nanoparticles onto wounds of anti-Gal producing animals reduces healing time by 40-70%. ! -Gal nanoparticles injected into ischemic myocardium in- duce extensive recruitment of macrophages that secrete cytokines preserving the structure of the ischemic tissue. These macrophages may recruit progenitor cells and/or stem cells that are guided by myocardial microenvironment and extracel- lular matrix to differentiate into cardiomyocytes. ! -Gal nanoparticles applied to nerve injures will recruit macrophages that can promote angiogenesis required for induction of axonal sprouting and thus may regenerate the severed nerve. In tissue engineering, incorporation of ! -gal nanoparticles into decellularized tissue and organ implants may improve in vivo regeneration and restore biological function of implants because of accelerated recruitment of macrophages and stem cells. This review describes a novel method for recruitment and activation of macrophages within injured tissues by ! -gal nanoparticles. The review further proposes the use of these nanoparticles in biomaterials for tissue engineering, in order to accelerate and increase the efficacy of tissue repair and regeneration processes. The method is based on harnessing the immunological potential of the natural anti-Gal antibody, which is the most abundant natural antibody in humans. Anti-Gal interacts specifically with a carbohydrate antigen called "the ! -gal epitope" with the structure Gal! 1-3Gal" 1- 4GlcNAc-R. Nanoparticles presenting multiple ! -gal epi- topes and called ! -gal nanoparticles introduce these epitopes into injury sites or into biomaterials. The interaction of anti- Gal with ! -gal epitopes on ! -gal nanoparticles activates the complement system for rapid chemotactic recruitment of macrophages. This interaction further induces pro-healing functions in the recruited macrophages which may recruit stem cells. The review describes studies on the efficacy of anti-Gal/! -gal nanoparticles interaction in acceleration of
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