Department of Industrial Pharmacy, Daiichi University of Pharmacy, 22-1 Tamagawa-cho, Minami-ku, Fukuoka, 815-8511, Japan.
Department of Pharmaceutical Informatics, Graduate School of Biomedical Sciences, Nagasaki University, 1-7-1 Sakamoto, Nagasaki, 852-8501, Japan.
Colloids Surf B Biointerfaces. 2018 Apr 1;164:1-10. doi: 10.1016/j.colsurfb.2018.01.015. Epub 2018 Jan 30.
The property of a newly synthesized tetrazine derivative comprised of double C18-saturated hydrocarbon chain (C18-rTz-C18) has been studied in situ at the air-water interface. C18-rTz-C18 or a gemini amphiphile contributes to restriction of its tetrazine moiety on the interface, which is expected to be used for bioimaging and analytical reagents. Herein, to understand lateral interactions between Tz and biomembrane constituents, we investigated the interfacial behavior of Langmuir monolayers composed of C18-rTz-C18 and biomembrane lipids such as DPPC, DPPG, DPPE, PSM, and Cholesterol (Ch). The lateral interaction of the binary monolayers was analyzed with the surface pressure (π)-molecular area (A) and surface potential (ΔV)-A isotherms. These thermodynamic data indicate that all of the two-components are miscible with each other. In particular, as opposed to the others, the monolayer stability of DPPE, which is a major constituent of the inner surface of cell membranes, is attenuated by the small-amount addition of C18-rTz-C18. This specific interaction implies the membrane destruction from the inside. The phase behavior during monolayer compression was visualized with Brewster angle microscopy (BAM), fluorescence microscopy (FM), and atomic force microscopy (AFM). The obtained morphologies exhibit a coexistence state of two different liquid-condensed domains derived from extra phospholipids and phospholipids-C18-rTz-C18 monolayers.
一种新合成的四嗪衍生物的性质,该衍生物由双 C18 饱和烃链(C18-rTz-C18)组成,已在气-水界面进行了原位研究。C18-rTz-C18 或双子型两亲物有助于限制其四嗪部分在界面上,这有望用于生物成像和分析试剂。在此,为了了解 Tz 与生物膜成分之间的横向相互作用,我们研究了由 C18-rTz-C18 和生物膜脂质(如 DPPC、DPPG、DPPE、PSM 和胆固醇(Ch))组成的 Langmuir 单层的界面行为。通过表面压力(π)-分子面积(A)和表面电势(ΔV)-A 等温线分析了二元单层的横向相互作用。这些热力学数据表明,所有两种成分都是互溶的。特别是与其他成分相比,DPPE 的单层稳定性(DPPE 是细胞膜内表面的主要成分之一)由于少量添加 C18-rTz-C18 而减弱。这种特定的相互作用意味着从内部破坏膜。通过布鲁斯特角显微镜(BAM)、荧光显微镜(FM)和原子力显微镜(AFM)可视化单层压缩过程中的相行为。获得的形态表现出两种不同的液体凝聚态区域的共存状态,这两种区域分别来自额外的磷脂和磷脂-C18-rTz-C18 单层。