首页> 外文会议>World biomaterials congress >Amphiphilic coil-tags for the direct and oriented adsorption of growth factors on biomaterials
【24h】

Amphiphilic coil-tags for the direct and oriented adsorption of growth factors on biomaterials

机译:两亲性卷标,用于直接和定向吸附生物材料上的生长因子

获取原文

摘要

Introduction: Growth factor (GF) immobilization is a crucial step towards the engineering of bioactive materials, as these molecules act as prime cues that direct cellular fate. Numerous strategies have been developed in that endeavour. They however often fail to consider technological limitations, which hinders their potential for translation to clinical use. Tag-fused GF chimeras have recently emerged as an alternative that would circumvent such limitations by allowing for a simple, readily scalable and translatable grafting method. We have successfully used two complementary E and K peptides for the oriented attachment of E-tagged GFs on K-decorated materials via E/K coiled-coil interactions (Fig. 1 A-B). We here report a novel strategy using the same GF chimeras, which however benefits from the strong amphiphilic nature of the coil peptides to direct a single-step tag-mediated adsorption onto materials of interest. Materials and Methods: Coil-tagged epidermal growth factor (EGF) and vascular endothelial growth factor (VEGF) were produced by transient transfection of human embryonic kidney 293-cells as previously described. Adsorbed protein after incubation was quantitated by a direct Enzyme-Linked Immunosorbent Assay. A primary human umbilical vein endothelial cell (HUVEC) line cultivated in EGM-2 medium was used for VEGF bioactivity assays. Results and Discussion: 5 proteins - EGF, VEGF, E-EGF, E-VEGF and K-EGF - were incubated over 6 different polystyrene (PS)-based substrates with varying surface chemistries and ELISAs were performed to determine the amount of bound GF. This protein/surface-spanning experiment highlighted several protein/surface combinations of interest, among which the specific tag-mediated adsorption of VEGF fused to the anionic E peptide on positively-charged poly(allylamine) (PAAm)-functionalized PS (Fig. 1C-left). We further observed that E tag-adsorbed VEGF could specifically recruit a secondary layer of K-tagged EGF, demonstrating that coiled-coil interactions were not prevented following adsorption (Fig. 1C-right). The stability of the adsorbed layer of E-VEGF was assayed in cell culture conditions with varying amounts of competing sera proteins (FBS), and the results indicated that a large amount of the GF remained attached to the surface for several days (Fig. 2A). This simple tethering strategy was successfully transferred to more relevant substrates, that is, aminated poly(ethylene terephthalate) (PET-PAAm) films (data not shown). HUVEC proliferation assays further demonstrated that E-VEGF adsorbed on PET-PAAm films retained a high mitogenic potency (Fig. 2B). Conclusion: Engineering of GFs fused to amphiphilic peptides is of prime interest for the surface decoration of biomaterials. We here showed in particular that VEGF could be simply, though efficiently, adsorbed on aminated substrates, in an oriented and stable manner without any loss in biological activity, via a specific E coil-tag/surface interaction.
机译:简介:固定化生长因子(GF)是生物活性材料工程化的关键步骤,因为这些分子充当着指导细胞命运的主要线索。为此,已经制定了许多策略。但是,他们经常没有考虑技术限制,这限制了其将其翻译为临床用途的潜力。标签融合的GF嵌合体最近出现,作为一种替代方案,通过允许简单,易于扩展和翻译的移植方法来规避此类限制。我们已经成功地使用了两个互补的E和K肽,通过E / K盘绕线圈相互作用将E标签的GFs定向附着在K装饰材料上(图1 A-B)。我们在这里报告了一种使用相同GF嵌合体的新颖策略,但是该方法得益于线圈肽的两亲性强,可将单步标签介导的吸附引导到目标材料上。材料和方法:如前所述,通过瞬时转染人胚胎肾293细胞来生产带卷标签的表皮生长因子(EGF)和血管内皮生长因子(VEGF)。孵育后通过直接酶联免疫吸附法对吸附的蛋白质进行定量。在EGM-2培养基中培养的原代人脐静脉内皮细胞(HUVEC)系用于VEGF生物活性测定。结果与讨论:将5种蛋白质-EGF,VEGF,E-EGF,E-VEGF和K-EGF-在具有不同表面化学的6种不同的基于聚苯乙烯(PS)的底物上孵育,并进行ELISA法测定结合的GF的量。这项跨蛋白质/表面的实验重点介绍了几种感兴趣的蛋白质/表面组合,其中特定标签介导的与阴离子E肽融合的VEGF的特异性标签介导吸附在带正电的聚烯丙胺(PAAm)功能化的PS上(图1C)。 -剩下)。我们进一步观察到,E标签吸附的VEGF可以特异性地募集K标签的EGF的第二层,这表明吸附后不能阻止卷曲螺旋相互作用(图1C-右)。在细胞培养条件下使用不同量的竞争血清蛋白(FBS)测定了E-VEGF吸附层的稳定性,结果表明大量的GF可以保持附着在表面数天(图2A)。 )。这种简单的束缚策略已成功转移到更相关的基材上,即胺化聚对苯二甲酸乙二酯(PET-PAAm)薄膜(数据未显示)。 HUVEC增殖试验进一步证明,吸附在PET-PAAm膜上的E-VEGF保留了高促有丝分裂能力(图2B)。结论:与两亲性肽融合的GFs的工程设计对于生物材料的表面装饰至关重要。我们在这里特别表明,通过特定的E卷-标签/表面相互作用,VEGF可以简单,高效地定向且稳定地吸附在胺化基质上,而没有任何生物活性损失。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号