Skowron Piotr M, Sobolewski Ireneusz, Adamowicz Katarzyna, Morcinek-Orłowska Joanna, Gaffke Lidia, Jaroszewicz Weronika, Łubkowska Beata, Pierzynowska Karolina, Zylicz-Stachula Agnieszka, Węgrzyn Grzegorz
Department of Molecular Biotechnology, Faculty of Chemistry, University of Gdansk, Wita Stwosza 63, 80-308, Gdansk, Poland.
Department of Molecular Biology, Faculty of Biology, University of Gdansk, Wita Stwosza 59, 80-308, Gdansk, Poland.
Mater Today Bio. 2025 Jun 10;33:101960. doi: 10.1016/j.mtbio.2025.101960. eCollection 2025 Aug.
Phage display technology is a powerful technique that allows to expose any peptide fused to a bacteriophage coat protein on the surface of the virion. However, the phage display systems have limitations that impair their applications in microbiology and biotechnology. We present the construction of the first thermophilic phage display system, including 'mosaic' system, and provide examples of its biotechnological usefulness. The system relies on TP-84 bacteriophage, infecting , with proliferation temperature up to 73°C, and developing only in the lytic mode, which allows liberating virion with any attached peptide. TP-84 has a large capsid, tolerates changes in the capsid proteins arrangement and develops in the thermophilic host, preventing recombinant protein aggregation in the cytoplasm. Furthermore, we introduce 'affinity coupling' functionalized bionanoparticle system, allowing attachment of theoretically any size proteins or even non-proteinous ligands onto TP-84 capsid, overcoming genome/capsid size limitations. The system provides technology for generation of novel types thermostable, biodegradable biomaterials. Moreover, the duplicated major capsid protein phage was constructed, forming the first thermophilic phage gene expression system. Upon a replacement of the engineered TP84_12 gene copy by a gene to be expressed, high level recombinant proteins expression can be achieved. This versatile phage display system should be useful in many microbiological approaches, overcoming the drawbacks of previous systems.
噬菌体展示技术是一种强大的技术,它能够使与噬菌体外壳蛋白融合的任何肽段暴露在病毒粒子表面。然而,噬菌体展示系统存在一些局限性,这限制了它们在微生物学和生物技术领域的应用。我们展示了首个嗜热噬菌体展示系统的构建,包括“镶嵌”系统,并提供了其在生物技术方面实用性的实例。该系统依赖于TP - 84噬菌体,其感染宿主的增殖温度可达73°C,且仅以裂解模式生长,这使得带有任何附着肽段的病毒粒子得以释放。TP - 84具有较大的衣壳,能够耐受衣壳蛋白排列的变化,并在嗜热宿主中生长,可防止重组蛋白在细胞质中聚集。此外,我们引入了“亲和偶联”功能化生物纳米颗粒系统,理论上可将任何大小的蛋白质甚至非蛋白质配体附着到TP - 84衣壳上,克服了基因组/衣壳大小的限制。该系统提供了用于生成新型热稳定、可生物降解生物材料的技术。此外,构建了重复的主要衣壳蛋白噬菌体,形成了首个嗜热噬菌体基因表达系统。通过将工程化的TP84_12基因拷贝替换为待表达的基因,可实现高水平的重组蛋白表达。这种多功能的噬菌体展示系统在许多微生物学方法中应会很有用,克服了先前系统的缺点。