Department of Chemistry, University of Warwick, Coventry, CV4 7AL, United Kingdom.
School of Biosciences, University of Birmingham, Birmingham, B15 2TT, United Kingdom.
Biomacromolecules. 2024 Jan 8;25(1):413-424. doi: 10.1021/acs.biomac.3c01042. Epub 2023 Dec 20.
Bacteriophages have many biotechnological and therapeutic applications, but as with other biologics, cryopreservation is essential for storage and distribution. Macromolecular cryoprotectants are emerging for a range of biologics, but the chemical space for polymer-mediated phage cryopreservation has not been explored. Here we screen the cryoprotective effect of a panel of polymers against five distinct phages, showing that nearly all the tested polymers provide a benefit. Exceptions were poly(methacrylic acid) and poly(acrylic acid), which can inhibit phage-infection with bacteria, making post-thaw recovery challenging to assess. A particular benefit of a polymeric cryopreservation formulation is that the polymers do not function as carbon sources for the phage hosts (bacteria) and hence do not interfere with post-thaw measurements. This work shows that phages are amenable to protection with hydrophilic polymers and opens up new opportunities for advanced formulations for future phage therapies and to take advantage of the additional functionality brought by the polymers.
噬菌体在生物技术和治疗中有许多应用,但与其他生物制剂一样,冷冻保存对于储存和分发至关重要。大分子冷冻保护剂正在为一系列生物制剂而出现,但聚合物介导的噬菌体冷冻保存的化学空间尚未得到探索。在这里,我们筛选了一组聚合物对五种不同噬菌体的冷冻保护效果,结果表明几乎所有测试的聚合物都有一定的效果。例外的是聚(甲基丙烯酸)和聚(丙烯酸),它们可以抑制噬菌体感染细菌,这使得冻后恢复的评估变得具有挑战性。聚合物冷冻保存配方的一个特别好处是,聚合物不能作为噬菌体宿主(细菌)的碳源,因此不会干扰冻后测量。这项工作表明,噬菌体可以用亲水性聚合物来保护,这为未来噬菌体疗法的先进配方开辟了新的机会,并利用聚合物带来的额外功能。