Feldhof Melina I, Schlatterer Rebecca, Strahl Friederike, Garthe Jonathan, Prévost Sylvain, Schmidt Stephan, Karg Matthias, Balzer Bizan N, Hartmann Laura
Department of Organic Chemistry and Macromolecular Chemistry, Heinrich-Heine-University Düsseldorf, Universitätsstraße 1, 40225 Düsseldorf, Germany.
Institute of Physical Chemistry, Albertstr. 21, 79104 Freiburg, Germany.
J Am Chem Soc. 2025 Sep 10;147(36):32698-32709. doi: 10.1021/jacs.5c08232. Epub 2025 Aug 27.
Mucins are highly complex glycoproteins that form protective and lubricating barriers around epithelial surfaces, e.g., in the respiratory tract, to protect against pathogens. The isolation and purification of natural mucins without compromising their structure and thus their properties remain challenging. Glycopolymers as mucin mimetics have shown great potential in biomedical research, for example, in mucosal barrier enhancement and respiratory disease treatment, or in improving surface lubrication and adhesion properties. Here, we introduce double-brushed mucin mimetic glycopolymers, replicating for the first time a structural design that more closely imitates key architectural features of natural mucins. By combining solid-phase synthesis of sequence-defined glycooligomers and their attachment onto polyactive ester scaffolds, we enable access to a library of linear, brushed, and double-brushed glycopolymers with controlled variations of structural parameters, such as overall chain length, number, and length of branches, as well as number of carbohydrates and degree of sulfation. By using light and neutron scattering as well as atomic force microscopy-based single-molecule force spectroscopy and imaging, we can demonstrate that the double-brushed architecture is responsible for successfully mimicking critical mucin properties, such as their adhesion to hydrophilic surfaces and an extended conformation, properties that are not achieved with single-brushed or linear analogues. Thus, our findings show that double-brushed sulfated glycopolymers effectively replicate key characteristics of natural mucins, advancing their potential as mucin models, as well as for use in biomedical applications.
黏蛋白是高度复杂的糖蛋白,可在呼吸道等上皮表面周围形成保护性和润滑性屏障,以抵御病原体。在不破坏其结构及性质的前提下分离和纯化天然黏蛋白仍然具有挑战性。作为黏蛋白模拟物的糖聚合物在生物医学研究中显示出巨大潜力,例如在增强黏膜屏障和治疗呼吸道疾病方面,或在改善表面润滑和黏附特性方面。在此,我们介绍了双刷状黏蛋白模拟糖聚合物,首次复制了一种更紧密模仿天然黏蛋白关键结构特征的结构设计。通过将序列定义的低聚糖的固相合成及其连接到聚活性酯支架上,我们能够获得一系列线性、刷状和双刷状糖聚合物,其结构参数如总链长、分支数量和长度、碳水化合物数量以及硫酸化程度可得到控制变化。通过使用光散射和中子散射以及基于原子力显微镜的单分子力谱和成像,我们可以证明双刷状结构负责成功模拟关键的黏蛋白特性,如它们对亲水表面的黏附以及伸展构象,而单刷状或线性类似物无法实现这些特性。因此,我们的研究结果表明,双刷状硫酸化糖聚合物有效地复制了天然黏蛋白的关键特征,提升了它们作为黏蛋白模型以及用于生物医学应用的潜力。