α-Gal Nanoparticles in CNS Trauma: I. In Vitro Activation of Microglia Towards a Pro-Healing State

IF 4.4 4区 医学 Q2 CELL & TISSUE ENGINEERING Tissue engineering and regenerative medicine Pub Date : 2023-12-15 DOI:10.1007/s13770-023-00613-1
Bhavani Gopalakrishnan, Uri Galili, August Dunbar, Luis Solorio, Riyi Shi, Jianming Li
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Abstract

Background:

Macrophages and microglia play critical roles after spinal cord injury (SCI), with the pro-healing, anti-inflammatory (M2) subtype being implicated in tissue repair. We hypothesize that promoting this phenotype within the post-injured cord microenvironment may provide beneficial effects for mitigating tissue damage. As a proof of concept, we propose the use of nanoparticles incorporating the carbohydrate antigen, galactose-α-1,3-galactose (α-gal epitope) as an immunomodulator to transition human microglia (HMC3) cells toward a pro-healing state.

Methods:

Quiescent HMC3 cells were acutely exposed to α-gal nanoparticles in the presence of human serum and subsequently characterized for changes in cell shape, expression of anti or pro-inflammatory markers, and secretion of phenotype-specific cytokines.

Results:

HMC3 cells treated with serum activated α-gal nanoparticles exhibited rapid enlargement and shape change in addition to expressing CD68. Moreover, these activated cells showed increased expression of anti-inflammatory markers like Arginase-1 and CD206 without increasing production of pro-inflammatory cytokines TNF-α or IL-6.

Conclusion:

This study is the first to show that resting human microglia exposed to a complex of α-gal nanoparticles and anti-Gal (from human serum) can be activated and polarized toward a putative M2 state. The data suggests that α-gal nanoparticles may have therapeutic relevance to the CNS microenvironment, in both recruiting and polarizing macrophages/microglia at the application site. The immunomodulatory activity of these α-gal nanoparticles post-SCI is further described in the companion work (Part II).

Graphical abstract

Resting microglia subjected to α-gal nanoparticle treatment in the presence of anti-Gal (found in serum) become activated and exhibit pro-healing phenotypic markers (Arginase-1, CD206) and secrete VEGF. Expression of pro-inflammatory markers (IL-6, TNF-α) was concomitantly reduced.

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中枢神经系统创伤中的α-Gal 纳米粒子:I. 体外激活小胶质细胞,使其进入促进愈合状态
背景:脊髓损伤(SCI)后,巨噬细胞和小胶质细胞发挥着关键作用,其中促进愈合、抗炎(M2)亚型与组织修复有关。我们假设,在损伤后的脊髓微环境中促进这种表型可能会对减轻组织损伤产生有益的影响。作为概念验证,我们建议使用含有碳水化合物抗原半乳糖-α-1,3-半乳糖(α-半乳糖表位)的纳米颗粒作为免疫调节剂,使人类小胶质细胞(HMC3)向促进愈合状态转化。方法:静止的HMC3细胞在人血清存在下急性暴露于α-gal纳米颗粒,随后观察细胞形状的变化、抗炎或促炎标记物的表达以及表型特异性细胞因子的分泌。结论:本研究首次表明,静息的人类小胶质细胞暴露于α-gal 纳米颗粒和抗-Gal(来自人类血清)的复合物后可被激活并极化为假定的 M2 状态。这些数据表明,α-gal 纳米粒子可能对中枢神经系统微环境具有治疗作用,能在应用部位招募巨噬细胞/小胶质细胞并使其极化。这些α-gal纳米颗粒在SCI后的免疫调节活性将在相关论文(第二部分)中进一步阐述。图解摘要在抗-gal(存在于血清中)存在下,经过α-gal纳米颗粒处理的筑巢小胶质细胞会被激活,表现出促进愈合的表型标记(精氨酸酶-1、CD206)并分泌血管内皮生长因子。促炎标记物(IL-6、TNF-α)的表达也同时减少。
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来源期刊
Tissue engineering and regenerative medicine
Tissue engineering and regenerative medicine CELL & TISSUE ENGINEERING-ENGINEERING, BIOMEDICAL
CiteScore
6.80
自引率
5.60%
发文量
83
审稿时长
6-12 weeks
期刊介绍: Tissue Engineering and Regenerative Medicine (Tissue Eng Regen Med, TERM), the official journal of the Korean Tissue Engineering and Regenerative Medicine Society, is a publication dedicated to providing research- based solutions to issues related to human diseases. This journal publishes articles that report substantial information and original findings on tissue engineering, medical biomaterials, cells therapy, stem cell biology and regenerative medicine.
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