Rosa Mariangela, Gallo Enrico, Pellegrino Paolo, Mercurio Flavia Anna, Leone Marilisa, Cascione Mariafrancesca, Carrese Barbara, Morelli Giancarlo, Accardo Antonella, Diaferia Carlo
Department of Pharmacy and Interuniversity Research Centre on Bioactive Peptides "Carlo Pedone" (CIRPeB), University of Naples "Federico II", Via T. De Amicis 95, Naples 80145, Italy.
IRCCS SYNLAB SDN, Via G. Ferraris 144, Naples 80146, Italy.
ACS Appl Bio Mater. 2025 Jan 20;8(1):488-502. doi: 10.1021/acsabm.4c01409. Epub 2024 Dec 9.
Peptide building blocks have been recently proposed for the fabrication of supramolecular nanostructures able to encapsulate and in vivo deliver drugs of a different nature. The primary sequence design is essential for nanostructure property modulation, directing and affecting affinity for specific drugs. For instance, the presence of positively charged residues of lysine (K) or arginine (R) could allow improving electrostatic interactions and, in turn, the encapsulation of negatively charged active pharmaceutical ingredients, including nucleic acids. In this context, here, we describe the formulation and the multiscale structural characterization of hybrid cationic peptide containing hydrogels (HGs). In these matrices, the well-known low-molecular-weight hydrogelator, Fmoc-diphenylalanine (Fmoc-FF, Fmoc = fluorenyl methoxycarbonyl), was mixed with a library of cationic amphiphilic peptides (CAPs) differing for their alkyl chain (from C8 to C18) in a 1/1 mol/mol ratio. The structural characterization highlighted that in mixed HGs, the aggregation is guided by Fmoc-FF, whereas the cationic peptides are only partially immobilized into the hydrogelated matrix. Moreover, morphology, stiffness, topography, and toxicity are significantly affected by the length of the alkyl chain. The capability of the hydrogels to encapsulate negative drugs was evaluated using the 5-carboxyfluorescein (5-FAM) dye as a model.
最近有人提出使用肽构建块来制造超分子纳米结构,这种结构能够包裹并在体内递送不同性质的药物。一级序列设计对于纳米结构性质的调节、引导和影响对特定药物的亲和力至关重要。例如,赖氨酸(K)或精氨酸(R)等带正电荷残基的存在可以增强静电相互作用,进而实现对包括核酸在内的带负电荷活性药物成分的包裹。在此背景下,我们在此描述了含混合阳离子肽水凝胶(HG)的配方及其多尺度结构表征。在这些基质中,将著名的低分子量水凝胶剂芴甲氧羰基 - 二苯基丙氨酸(Fmoc-FF,Fmoc = 芴甲氧羰基)与一系列烷基链长度不同(从C8到C18)的阳离子两亲性肽(CAP)以1/1摩尔/摩尔的比例混合。结构表征表明,在混合水凝胶中,聚集由Fmoc-FF引导,而阳离子肽仅部分固定在水凝胶化基质中。此外,烷基链的长度对形态、硬度、表面形貌和毒性有显著影响。使用5 - 羧基荧光素(5-FAM)染料作为模型评估了水凝胶包裹带负电荷药物的能力。