合理设计
材料科学
膜
堆积
纳米技术
分子动力学
纳米尺度
抗菌肽
相变
机制(生物学)
化学物理
药物输送
相(物质)
纳米生物技术
生物物理学
抗菌剂
设计要素和原则
连接器
工作(物理)
静电
纳米颗粒
肽
膜生物物理学
小泡
软质材料
作者
Bettina Tran,Diane C.A. Lima,Linda Sandblad,Madeleine Ramstedt,Thereza A. Soares,Stefan Salentinig
标识
DOI:10.1002/adfm.202532053
摘要
Abstract Multidrug‐resistant Gram‐negative bacteria are a growing clinical threat, driving the search for alternative antimicrobial strategies, such as antimicrobial peptide (AMP)‐ based materials. However, the rational design of such systems remains constrained by simplified membrane models that neglect critical components of the Gram‐negative envelope, such as lipopolysaccharides and cardiolipin, and fail to capture its dual‐membrane architecture. This work establishes a materials‐oriented experimental framework for constructing membrane‐mimetic oligolamellar structures that actively integrate the human AMP LL‐37. These hierarchically organized assemblies emulate the compositional and structural complexity of the Gram‐negative inner and outer membranes and have the potential to serve as tunable soft‐matter platforms for the delivery of AMPs. Combining small‐angle X‐ray scattering, electron microscopy, electrophoretic mobility analysis, and coarse‐grained molecular dynamics simulations, we show that LL‐37 interacts strongly with cardiolipin, driving phase transitions from multilamellar vesicles to nanoscale assemblies, followed by membrane stacking. This restructuring phenomenon is unlikely to occur in conventional single‐bilayer systems. In the presence of lipopolysaccharides, polysaccharide side chains modulate but do not suppress this transition, revealing a lipid‐specific reorganisation mechanism relevant to the design of AMP‐based materials targeting Gram‐negative bacteria. These results deepen mechanistic understanding of AMP‐membrane interactions and establish design principles for peptide‐integrated soft materials with programmable structural responses. The presented platform further enables the development of antimicrobial biointerfaces through targeted membrane remodeling.
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