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定制化尼奥斯omes-控制货物释放和作为纳米反应器的功能的影响。

Tailoring Niosomes- Implications for Controlled Cargo Release and Function as Nanoreactors.

机构信息

Department of Chemistry, University of Kalyani, Kalyani, West Bengal, 741235, India.

出版信息

J Fluoresc. 2022 May;32(3):907-920. doi: 10.1007/s10895-022-02894-6. Epub 2022 Feb 1.

Abstract

Nonionic surfactant vesicles (Niosomes) were prepared using polyoxyethylene alkyl ether (Brij 58).The impact of variation of the Brij: cholesterol molar ratio on the niosomal structure was studied. Fluorescence studies performed with the membrane probe 1,6-Diphenyl-1,3,5-triene (DPH) gave important insight on the bilayer integrity of the niosomes in response to environmental perturbations. The aim of the work being assessment of the efficacy of the niosomes as "drug release vehicles", release studies were performed with a xanthene dye Carboxyfluorescein (CF). Further, the vesicles were used as nanoreactors for the synthesis of gold nanoparticles (GNPs) as it is often useful to house nanoparticles in biological /biomimicking environments. Stable, spherical GNPs of diameter 6-10 nm were formed in these vesicles. As the vesicular bilayer mimics the cell membrane, the present work is relevant to the use of the GNPs for diagnostic and therapeutic purpose. It has also been established that fluorescence resonance energy transfer (FRET) effectively occurs between DPH and CF in the niosomes. The FRET studies provide important insight on the location of dyes within the vesicles thus indicating the prospective applications of this fluorescence technique for tracking the location of probes in biomimicking systems which maybe extrapolated to in vivo biological systems in future.

摘要

非离子表面活性剂囊泡(Niosomes)是用聚氧乙烯烷基醚(Brij 58)制备的。研究了 Brij:胆固醇摩尔比的变化对囊泡结构的影响。用膜探针 1,6-二苯基-1,3,5-三烯(DPH)进行的荧光研究深入了解了囊泡双层完整性对环境干扰的响应。这项工作的目的是评估囊泡作为“药物释放载体”的功效,用香豆素染料羧基荧光素(CF)进行了释放研究。此外,由于将纳米颗粒封装在生物/仿生环境中通常很有用,因此将这些囊泡用作金纳米颗粒(GNPs)的纳米反应器。在这些囊泡中形成了直径为 6-10nm 的稳定、球形的 GNPs。由于囊泡双层模拟细胞膜,因此本工作与将 GNPs 用于诊断和治疗目的有关。还已经证实,荧光共振能量转移(FRET)在囊泡中在 DPH 和 CF 之间有效发生。FRET 研究提供了有关染料在囊泡内位置的重要见解,从而表明该荧光技术在追踪仿生系统中探针位置方面的潜在应用,未来可能会扩展到体内生物系统。

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