Site-specific nanobody-oligonucleotide conjugation for super-resolution imaging

L. Teodori, Marjan Omer, Anders Märcher, M. K. Skaanning, V. L. Andersen, J. Nielsen, E. Oldenburg, Yuchen Lin, K. Gothelf, J. Kjems
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引用次数: 3

Abstract

Camelid single-domain antibody fragments, also called nanobodies, constitute a class of binders that are small in size (~15 kDa) and possess antigen-binding properties similar to their antibody counterparts. Facile production of recombinant nanobodies in several microorganisms has made this class of binders attractive within the field of molecular imaging. Particularly, their use in super-resolution microscopy has improved the spatial resolution of molecular targets due to a smaller linkage error. In single-molecule localization microscopy techniques, the effective spatial resolution can be further enhanced by site-specific fluorescent labeling of nanobodies owing to a more homogeneous protein-to-fluorophore stoichiometry, reduced background staining and a known distance between dye and epitope. Here, we present a protocol for site-specific bioconjugation of DNA oligonucleotides to three distinct nanobodies expressed with an N- or C-terminal unnatural amino acid, 4-azido-L-phenylalanine (pAzF). Using copper-free click chemistry, the nanobody-oligonucleotide conjugation reactions were efficient and yielded highly pure bioconjugates. Target binding was retained in the bioconjugates, as demonstrated by bio-layer interferometry binding assays and the super-resolution microscopy technique, DNA points accumulation for imaging in nanoscale topography (PAINT). This method for site-specific protein-oligonucleotide conjugation can be further extended for applications within drug delivery and molecular targeting where site-specificity and stoichiometric control are required.
位点特异性纳米体寡核苷酸偶联超分辨率成像
骆驼状单结构域抗体片段,也称为纳米体,构成了一类尺寸较小(约15kDa)的结合物,并具有与抗体对应物相似的抗原结合特性。在几种微生物中方便地生产重组纳米体使这类粘合剂在分子成像领域具有吸引力。特别是,由于较小的连接误差,它们在超分辨率显微镜中的使用提高了分子靶标的空间分辨率。在单分子定位显微镜技术中,由于蛋白质与荧光团的化学计量更均匀、背景染色减少以及染料和表位之间的已知距离,可以通过纳米体的位点特异性荧光标记进一步提高有效的空间分辨率。在这里,我们提出了一种将DNA寡核苷酸位点特异性生物偶联到用N-或C-末端非天然氨基酸4-叠氮基-L-苯丙氨酸(pAzF)表达的三种不同的纳米体的方案。使用无铜点击化学,纳米体寡核苷酸偶联反应是有效的,并产生高纯度的生物偶联物。生物层干涉结合分析和超分辨率显微镜技术证明,目标结合保留在生物偶联物中,用于在纳米形貌(PAINT)中成像的DNA点积累。这种位点特异性蛋白质-寡核苷酸偶联的方法可以进一步扩展到需要位点特异性和化学计量控制的药物递送和分子靶向中的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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