Micro-fluidic covalent immobilization of multi-gradient RGD peptides on a gelatin surface for studying endothelial cell migration.

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-10-25 DOI:10.1039/d4ay01409j
Yunong Yang, Yanxia Wang, Yongjiang Li, Xuqu Hu, Changgui Tong, Chundong Xue, Kairong Qin
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Abstract

Collective endothelial migration is a hallmark of wound healing, which is regulated by spatial concentration gradients of extracellular biochemical factors. Arginine-glycine-aspartate (RGD) peptides play a vital role in regulating cell migration through specific binding to integrins. In this study, a micro-fluidic technology combined with a photopolymerization technique is developed to create gelatin methacryloyl (GelMA)-based substrates with various concentration gradients of RGD peptides. The capability of generating linear and nonlinear RGD concentration gradients was quantitatively verified through numerical simulation and immunohistochemical quantitative experiments. The results of the concentration gradients show a strong concurrence between the immunohistochemical quantification experiments and numerical simulations. Furthermore, endothelial migration experiments were conducted with various concentration gradients of RGD peptides. We have observed that endothelial cells on the surface of gels with a linear concentration gradient exhibit a larger cell area, a longer cell perimeter, and more stress fiber density. Furthermore, the cells demonstrate directional alignment and migration towards regions with a higher RGD concentration. High concentration gradients significantly enhance endothelial cell migration, consistent with observations on surfaces of gels with nonlinear concentration gradients. In brief, we proposed a simple and effective micro-fluidic photopolymerization technique capable of generating diverse concentration gradients of RGD and probing their effects on cell migration. The results suggest that regulating the RGD peptide concentration gradients can alter the migration of endothelial cells, showing potential for promoting wound healing.

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在明胶表面共价固定多梯度 RGD 肽的微流体技术,用于研究内皮细胞迁移。
内皮细胞的集体迁移是伤口愈合的标志,它受细胞外生化因子空间浓度梯度的调节。精氨酸-甘氨酸-天门冬氨酸(RGD)肽通过与整合素的特异性结合在调节细胞迁移方面发挥着重要作用。本研究开发了一种结合光聚合技术的微流体技术,用于制造以明胶甲基丙烯酰(GelMA)为基底、具有不同浓度梯度的 RGD 肽。通过数值模拟和免疫组化定量实验,定量验证了生成线性和非线性 RGD 浓度梯度的能力。浓度梯度的结果表明,免疫组化定量实验和数值模拟之间有很强的一致性。此外,我们还利用不同浓度梯度的 RGD 肽进行了内皮迁移实验。我们观察到,在具有线性浓度梯度的凝胶表面,内皮细胞表现出更大的细胞面积、更长的细胞周长和更高的应力纤维密度。此外,细胞还表现出定向排列,并向 RGD 浓度较高的区域迁移。高浓度梯度能明显促进内皮细胞迁移,这与在非线性浓度梯度凝胶表面观察到的结果一致。简而言之,我们提出了一种简单有效的微流体光聚合技术,该技术能够产生不同浓度梯度的 RGD 并探测其对细胞迁移的影响。结果表明,调节 RGD 肽浓度梯度可以改变内皮细胞的迁移,显示出促进伤口愈合的潜力。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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