Physical Chemistry 1, Lund University, S-221 00 Lund, Sweden.
Physical Chemistry 1, Lund University, S-221 00 Lund, Sweden; Department of Pharmacy, University of Copenhagen, DK-2100 Copenhagen, Denmark.
Adv Colloid Interface Sci. 2024 Mar;325:103120. doi: 10.1016/j.cis.2024.103120. Epub 2024 Feb 28.
The last couple of decades have seen an explosion of novel colloidal drug delivery systems, which have been demonstrated to increase drug efficacy, reduce side-effects, and provide various other advantages for both small-molecule and biomacromolecular drugs. The interactions of delivery systems with biomembranes are increasingly recognized to play a key role for efficient eradication of pathogens and cancer cells, as well as for intracellular delivery of protein and nucleic acid drugs. In parallel, there has been a broadening of methodologies for investigating such systems. For example, advanced microscopy, mass-spectroscopic "omic"-techniques, as well as small-angle X-ray and neutron scattering techniques, which only a few years ago were largely restricted to rather specialized areas within basic research, are currently seeing increased interest from researchers within wide application fields. In the present discussion, focus is placed on the use of neutron reflectometry to investigate membrane interactions of colloidal drug delivery systems. Although the technique is still less extensively employed for investigations of drug delivery systems than, e.g., X-ray scattering, such studies may provide key mechanistic information regarding membrane binding, re-modelling, translocation, and permeation, of key importance for efficacy and toxicity of antimicrobial, cancer, and other therapeutics. In the following, examples of this are discussed and gaps/opportunities in the research field identified.
过去几十年见证了新型胶体药物输送系统的飞速发展,这些系统被证明可以提高药物疗效、降低副作用,并为小分子和生物大分子药物提供各种其他优势。输送系统与生物膜的相互作用对于有效消灭病原体和癌细胞以及实现蛋白质和核酸药物的细胞内输送,越来越被认为起着关键作用。与此同时,用于研究此类系统的方法也在不断拓宽。例如,高级显微镜、质谱“组学”技术以及小角度 X 射线和中子散射技术,这些技术在几年前还主要局限于基础研究中相当专业化的领域,目前受到了广泛应用领域研究人员的更多关注。在本次讨论中,重点关注利用中子反射技术研究胶体药物输送系统与膜的相互作用。尽管该技术在药物输送系统的研究中应用不如 X 射线散射广泛,但这些研究可能为有关膜结合、重排、转运和渗透的关键机制信息提供依据,而这些信息对于抗菌、癌症和其他治疗药物的疗效和毒性至关重要。在接下来的内容中,将讨论此类研究的实例,并确定研究领域中的空白和机会。