Synthesis and Structure Optimization of Star Copolymers as Tunable Macromolecular Carriers for Minimal Immunogen Vaccine Delivery.

IF 4 2区 化学 Q1 BIOCHEMICAL RESEARCH METHODS Bioconjugate Chemistry Bioconjugate Pub Date : 2024-08-21 Epub Date: 2024-07-31 DOI:10.1021/acs.bioconjchem.4c00273
Gabriela Mixová, Eva Tihlaříková, Yaling Zhu, Lucie Schindler, Ladislav Androvič, Lucie Kracíková, Eliška Hrdá, Bedřich Porsch, Michal Pechar, Christopher M Garliss, David Wilson, Hugh C Welles, Jake Holechek, Qiuyin Ren, Geoffrey M Lynn, Vilém Neděla, Richard Laga
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Abstract

Minimal immunogen vaccines are being developed to focus antibody responses against otherwise challenging targets, including human immunodeficiency virus (HIV), but multimerization of the minimal peptide immunogen on a carrier platform is required for activity. Star copolymers comprising multiple hydrophilic polymer chains ("arms") radiating from a central dendrimer unit ("core") were recently reported to be an effective platform for arraying minimal immunogens for inducing antibody responses in mice and primates. However, the impact of different parameters of the star copolymer (e.g., minimal immunogen density and hydrodynamic size) on antibody responses and the optimal synthetic route for controlling those parameters remains to be fully explored. We synthesized a library of star copolymers composed of poly[N-(2-hydroxypropyl)methacrylamide] hydrophilic arms extending from poly(amidoamine) dendrimer cores with the aim of identifying the optimal composition for use as minimal immunogen vaccines. Our results show that the length of the polymer arms has a crucial impact on the star copolymer hydrodynamic size and is precisely tunable over a range of 20-50 nm diameter, while the dendrimer generation affects the maximum number of arms (and therefore minimal immunogens) that can be attached to the surface of the dendrimer. In addition, high-resolution images of selected star copolymer taken by a custom-modified environmental scanning electron microscope enabled the acquisition of high-resolution images, providing new insights into the star copolymer structure. Finally, in vivo studies assessing a star copolymer vaccine comprising an HIV minimal immunogen showed the criticality of polymer arm length in promoting antibody responses and highlighting the importance of composition tunability to yield the desired biological effect.

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星型共聚物的合成与结构优化作为最小免疫原疫苗递送的可调大分子载体。
目前正在开发最小免疫原疫苗,以集中抗体反应来对付包括人类免疫缺陷病毒(HIV)在内的其他具有挑战性的目标,但最小肽免疫原需要在载体平台上多聚化才能产生活性。最近有报道称,由多个亲水性聚合物链("臂")组成的星型共聚物从树枝状聚合物的中心单元("核")辐射开来,是排列最小免疫原的有效平台,可诱导小鼠和灵长类动物产生抗体反应。然而,星形共聚物的不同参数(如最小免疫原密度和流体力学尺寸)对抗体反应的影响以及控制这些参数的最佳合成路线仍有待充分探索。我们合成了一个由聚[N-(2-羟基丙基)甲基丙烯酰胺]亲水臂从聚(氨基胺)树枝状聚合物核心延伸出来的星形共聚物库,目的是找出用作最小免疫原疫苗的最佳组成。我们的研究结果表明,聚合物臂的长度对星形共聚物的流体力学尺寸有至关重要的影响,并且可在 20-50 纳米直径范围内精确调节,而树枝状聚合物的生成则影响可附着在树枝状聚合物表面的臂的最大数量(因此也影响最小免疫原的数量)。此外,通过定制改装的环境扫描电子显微镜对选定的星形共聚物进行高分辨率成像,获得了高分辨率图像,为了解星形共聚物的结构提供了新的视角。最后,对包含艾滋病毒最小免疫原的星型共聚物疫苗进行的体内评估研究表明,聚合物臂长对促进抗体反应至关重要,并突出了成分可调性对产生理想生物效应的重要性。
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来源期刊
CiteScore
9.00
自引率
2.10%
发文量
236
审稿时长
1.4 months
期刊介绍: Bioconjugate Chemistry invites original contributions on all research at the interface between man-made and biological materials. The mission of the journal is to communicate to advances in fields including therapeutic delivery, imaging, bionanotechnology, and synthetic biology. Bioconjugate Chemistry is intended to provide a forum for presentation of research relevant to all aspects of bioconjugates, including the preparation, properties and applications of biomolecular conjugates.
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