Spatial charge-hydrophobicity configuration modulates cationic peptide transport in cartilage

空间电荷-疏水性构型调节软骨中阳离子肽的运输

阅读:1

Abstract

Charge-based delivery systems offer a promising approach for targeting dense, negatively charged tissues such as cartilage, which presents a significant transport barrier due to its high fixed charge density from aggrecan glycosaminoglycans. Cationic nanocarriers, including peptide-based systems, can overcome these barriers by leveraging electrostatic interactions to enhance intratissue penetration. However, the effectiveness of these carriers depends not only on their net positive charge, which drives Donnan partitioning, but also on the precise spatial arrangement of cationic and hydrophobic residues, which influences transport, binding, and retention. In this study, we investigated the impact of spatial charge distribution and hydrophobicity on the intracartilage transport and retention of arginine-rich cationic peptide carriers with a net charge of +14, optimized for effective cartilage targeting. Using both experimental methods and molecular modeling, we examined the transport properties of cationic peptide carriers with varied charge and hydrophobic cluster arrangements in healthy and degenerated cartilage with different fixed charge densities. Our findings reveal that peptides with a higher degree of clustered cationic or hydrophobic residues exhibit greater intracartilage diffusivity due to weaker binding interactions with aggrecan glycosaminoglycans and a more flexible structural conformation that incurs an entropic penalty. However, although hydrophobic residues can enhance intratissue retention, particularly in degenerated tissues, they also promote competitive binding within synovial fluid, emphasizing the need for hydrophilic designs. Overall, our results indicate that evenly distributed cationic residues and minimal hydrophobicity yield the most effective carriers for deep, long-term tissue penetration, providing a framework for the rational design of tissue-targeting cationic peptide carriers. The design principles established in this work can be broadly applied to the rational development of cationic carriers for targeted drug delivery in a wide range of negatively charged tissues.

特别声明

1、本页面内容包含部分的内容是基于公开信息的合理引用;引用内容仅为补充信息,不代表本站立场。

2、若认为本页面引用内容涉及侵权,请及时与本站联系,我们将第一时间处理。

3、其他媒体/个人如需使用本页面原创内容,需注明“来源:[生知库]”并获得授权;使用引用内容的,需自行联系原作者获得许可。

4、投稿及合作请联系:info@biocloudy.com。