树枝状大分子
肽
乙二醇
共轭体系
贪婪
聚氨基胺
化学
组合化学
生物物理学
纳米技术
PEG比率
粘附
纳米颗粒
细胞粘附
材料科学
细胞
氨基胺
生物化学
生物
抗原
聚合物
有机化学
财务
经济
遗传学
作者
Woo‐Jin Jeong,Jiyoon Bu,Roya Jafari,Pavel Řehák,Luke J. Kubiatowicz,Adam J. Drelich,Randall H. Owen,Ashita Nair,Piper A. Rawding,Michael J. Poellmann,Caroline M. Hopkins,Petr Král,Seungpyo Hong
标识
DOI:10.1002/advs.202103098
摘要
The multivalent binding effect has been the subject of extensive studies to modulate adhesion behaviors of various biological and engineered systems. However, precise control over the strong avidity-based binding remains a significant challenge. Here, a set of engineering strategies are developed and tested to systematically enhance the multivalent binding of peptides in a stepwise manner. Poly(amidoamine) (PAMAM) dendrimers are employed to increase local peptide densities on a substrate, resulting in hierarchically multivalent architectures (HMAs) that display multivalent dendrimer-peptide conjugates (DPCs) with various configurations. To control binding behaviors, effects of the three major components of the HMAs are investigated: i) poly(ethylene glycol) (PEG) linkers as spacers between conjugated peptides; ii) multiple peptides on the DPCs; and iii) various surface arrangements of HMAs (i.e., a mixture of DPCs each containing different peptides vs DPCs cofunctionalized with multiple peptides). The optimized HMA configuration enables significantly enhanced target cell binding with high selectivity compared to the control surfaces directly conjugated with peptides. The engineering approaches presented herein can be applied individually or in combination, providing guidelines for the effective utilization of biomolecular multivalent interactions using DPC-based HMAs.
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