Department of Molecular and Cellular Biochemistry, Indiana University, Bloomington, Indiana 47405, United States.
Department of Chemistry, Indiana University, Bloomington, Indiana 47405, United States.
ACS Nano. 2024 Aug 13;18(32):21024-21037. doi: 10.1021/acsnano.4c02056. Epub 2024 Aug 1.
Virus-like particles (VLPs) have untapped potential for packaging and delivery of macromolecular cargo. To be a broadly useful platform, there needs to be a strategy for attaching macromolecules to the inside or the outside of the VLP with minimal modification of the platform or cargo. Here, we repurpose antiviral compounds that bind to hepatitis B virus (HBV) capsids to create a chemical tag to noncovalently attach cargo to the VLP. Our tag consists of a capsid assembly modulator, HAP13, connected to a linker terminating in maleimide. Our cargo is a green fluorescent protein (GFP) with a single addressable cysteine, a feature that can be engineered in many proteins. The HAP-GFP construct maintained HAP's intrinsic ability to bind HBV capsids and accelerate assembly. We investigated the capacity of HAP-GFP to coassemble with HBV capsid protein and bind to preassembled capsids. HAP-GFP binding was concentration-dependent, sensitive to capsid stability, and dependent on linker length. Long linkers had the greatest activity to bind capsids, while short linkers impeded assembly and damaged intact capsids. In coassembly reactions, >20 HAP-GFP molecules were presented on the outside and inside of the capsid, concentrating the cargo by more than 100-fold compared to bulk solution. We also tested an HAP-GFP with a cleavable linker so that external GFP molecules could be removed, resulting in exclusive internal packaging. These results demonstrate a generalizable strategy for attaching cargo to a VLP, supporting development of HBV as a modular VLP platform.
病毒样颗粒 (VLPs) 在包装和输送大分子货物方面具有尚未开发的潜力。为了成为一个广泛应用的平台,需要有一种策略来将大分子附着在 VLP 的内部或外部,同时对平台或货物的修饰最小化。在这里,我们重新利用了与乙型肝炎病毒 (HBV) 衣壳结合的抗病毒化合物,创建了一个化学标签,以非共价方式将货物附着到 VLP 上。我们的标签由衣壳组装调节剂 HAP13 组成,连接到末端带有马来酰亚胺的接头。我们的货物是一种绿色荧光蛋白 (GFP),带有一个可寻址的半胱氨酸,这个特征可以在许多蛋白质中进行工程设计。HAP-GFP 构建体保持了 HAP 固有结合 HBV 衣壳并加速组装的能力。我们研究了 HAP-GFP 与 HBV 衣壳蛋白共组装和与预组装衣壳结合的能力。HAP-GFP 结合是浓度依赖性的,对衣壳稳定性敏感,并且依赖于接头长度。长接头具有最大的结合衣壳的活性,而短接头阻碍组装并损坏完整的衣壳。在共组装反应中,>20 个 HAP-GFP 分子被呈现在衣壳的内外表面上,与在 bulk solution 中相比,货物的浓度提高了 100 多倍。我们还测试了带有可切割接头的 HAP-GFP,以便可以去除外部 GFP 分子,从而实现内部包装的排他性。这些结果证明了将货物附着到 VLP 的一种通用策略,支持 HBV 作为模块化 VLP 平台的发展。