Pharmaceutical Sciences Division and Wisconsin Center for NanoBioSystems (WisCNano), School of Pharmacy, University of Wisconsin-Madison, 777 Highland Ave, Madison, WI, 53705, USA.
Department of Biological Sciences and Bioengineering, Inha University, 100 Inha-ro, Michuhol-gu, Incheon, 22212, Republic of Korea.
Adv Sci (Weinh). 2022 Feb;9(4):e2103098. doi: 10.1002/advs.202103098. Epub 2021 Dec 11.
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.
多价结合效应一直是广泛研究的课题,旨在调节各种生物和工程系统的粘附行为。然而,精确控制基于强亲和力的结合仍然是一个重大挑战。在这里,开发并测试了一系列工程策略,以逐步系统地增强肽的多价结合。多聚(酰胺-胺)(PAMAM)树状大分子被用来增加基质上的局部肽密度,从而形成具有各种构型的多层次多价结构(HMAs),显示出多价树状大分子-肽缀合物(DPCs)。为了控制结合行为,研究了 HMAs 的三个主要组成部分的影响:i)作为缀合肽之间间隔物的聚(乙二醇)(PEG)接头;ii)DPCs 上的多个肽;以及 iii)HMAs 的各种表面排列(即,含有不同肽的 DPCs 的混合物与用多个肽共功能化的 DPCs)。与直接与肽缀合的对照表面相比,优化后的 HMA 构型使靶细胞结合显著增强,具有高选择性。本文提出的工程方法可以单独或组合使用,为使用基于 DPC 的 HMAs 有效利用生物分子多价相互作用提供了指导。