Department of Chemistry, Emory University, 1515 Dickey Drive, Atlanta, Georgia 30322, United States.
J Am Chem Soc. 2020 May 27;142(21):9653-9660. doi: 10.1021/jacs.0c01568. Epub 2020 May 14.
Improving the affinity of nucleic acids to their complements is an important goal for many fields spanning from genomics to antisense therapy and diagnostics. One potential approach to achieving this goal is to use multivalent binding, which often boosts the affinity between ligands and receptors, as exemplified by virus-cell binding and antibody-antigen interactions. Herein, we investigate the binding of heteromultivalent DNA-nanoparticle conjugates, where multiple unique oligonucleotides displayed on a nanoparticle form a multivalent complex with a long DNA target containing the complementary sequences. By developing a strategy to spatially pattern oligonucleotides on a nanoparticle, we demonstrate that the molecular organization of heteromultivalent nanostructures is critical for effective binding; patterned particles have a ∼23 order-of-magnitude improvement in affinity compared to chemically identical particles patterned incorrectly. We envision that nanostructures presenting spatially patterned heteromultivalent DNA will offer important biomedical applications given the utility of DNA-functionalized nanostructures in diagnostics and therapeutics.
提高核酸与其互补物的亲和力是跨越基因组学、反义治疗和诊断等多个领域的重要目标。实现这一目标的一种潜在方法是使用多价结合,这通常会增强配体和受体之间的亲和力,例如病毒与细胞的结合以及抗体与抗原的相互作用。在此,我们研究了异多价 DNA-纳米颗粒缀合物的结合,其中纳米颗粒上展示的多个独特寡核苷酸与包含互补序列的长 DNA 靶标形成多价复合物。通过开发一种在纳米颗粒上对寡核苷酸进行空间图案化的策略,我们证明异多价纳米结构的分子组织对于有效结合至关重要;与化学上相同但图案不正确的颗粒相比,图案化颗粒的亲和力提高了约 23 个数量级。鉴于 DNA 功能化纳米结构在诊断和治疗中的实用性,我们设想呈现空间图案化异多价 DNA 的纳米结构将为生物医学应用提供重要价值。