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用于与多糖高效位点特异性缀合的VHH抗体片段的基因工程

Genetic Engineering of VHH Antibody Fragments for Efficient Site-Specific Conjugation to Polysaccharides.

作者信息

Zhong Lin, Morshuis Lisanne C M, Koerselman Michelle, Memelink Angela, Kolecka Anna, Heukers Raimond, Verrips Theo, Karperien Marcel, Zoetebier Bram

机构信息

Department of Developmental BioEngineering, TechMed Institute, University of Twente, Enschede 7522 NB, The Netherlands.

Orthros Medical BV, Drosteweg 8, 8101NB Raalte, The Netherlands.

出版信息

Bioconjug Chem. 2025 Jun 18;36(6):1319-1328. doi: 10.1021/acs.bioconjchem.5c00167. Epub 2025 May 23.

Abstract

Site-selective modifications of proteins, without compromising their biological activity, are highly sought after due to their critical role in many biomedical applications. Here, we established a universal and efficient approach for site-selective conjugation of a variable domain of single-chain heavy-chain only antibody fragments (VHH) to polysaccharides using thiol-maleimide chemistry, known for its specificity and efficiency. This is achieved by genetically engineering an unpaired cysteine (Cys) residue in a C-terminal extension of VHHs. In this study, we synthesized two maleimide-functionalized polysaccharides, i.e., dextran-maleimide (Dex-Mal) and hyaluronic acid-maleimide (HA-Mal), for protein conjugation. Six distinct VHHs were selected and engineered with C-terminal extensions containing Cys residues for conjugation with Dex-Mal and HA-Mal. Conjugation efficiency varied among VHHs due to structural heterogeneity, which influenced the reactivity of the engineered Cys residues. One VHH, specific to TNFα (anti-TNFα-VHH), exhibited low conjugation efficiency (<20%); however, efficiency was fully restored when a flexible glycine-serine GS linker was introduced between the variable domain and the C-terminal Cys tag. Additionally, incorporation of two free Cys residues in the C-terminal tail further enhanced conjugation efficiency. This work establishes a robust and versatile approach for generating protein-polysaccharide conjugates, paving the way for therapeutic and diagnostic applications.

摘要

在不损害蛋白质生物活性的前提下对其进行位点选择性修饰,因其在许多生物医学应用中的关键作用而备受关注。在此,我们利用以特异性和高效性著称的硫醇-马来酰亚胺化学,建立了一种通用且高效的方法,用于将单链仅重链抗体片段(VHH)的可变结构域与多糖进行位点选择性偶联。这是通过在VHH的C末端延伸区进行基因工程改造引入一个未配对的半胱氨酸(Cys)残基来实现的。在本研究中,我们合成了两种马来酰亚胺功能化的多糖,即葡聚糖-马来酰亚胺(Dex-Mal)和透明质酸-马来酰亚胺(HA-Mal),用于蛋白质偶联。选择了六个不同的VHH,并对其进行工程改造,使其C末端延伸区含有用于与Dex-Mal和HA-Mal偶联的Cys残基。由于结构异质性,不同VHH的偶联效率有所差异,这影响了工程改造后的Cys残基的反应性。一种对TNFα特异的VHH(抗TNFα-VHH)偶联效率较低(<20%);然而,当在可变结构域和C末端Cys标签之间引入一个柔性甘氨酸-丝氨酸(GS)接头时,效率完全恢复。此外,在C末端尾巴中引入两个游离的Cys残基进一步提高了偶联效率。这项工作建立了一种强大且通用的方法来生成蛋白质-多糖偶联物,为治疗和诊断应用铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2566/12183677/53894753fe50/bc5c00167_0001.jpg

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