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不同温度下 InP/ZnS 量子点对 DPPC/DPPG 单层膜热力学性质和形态的影响。

Influence of InP/ZnS Quantum Dots on Thermodynamic Properties and Morphology of the DPPC/DPPG Monolayers at Different Temperatures.

机构信息

Shaanxi Engineering Research Center of Controllable Neutron Source, School of Electronic Information, Xijing University, Xi'an 710123, China.

School of Pharmacy, Xuzhou Medical University, Xuzhou 221004, China.

出版信息

Molecules. 2023 Jan 22;28(3):1118. doi: 10.3390/molecules28031118.

Abstract

In this work, the effects of InP/ZnS quantum dots modified with amino or carboxyl group on the characteristic parameters in phase behavior, elastic modulus, relaxation time of the DPPC/DPPG mixed monolayers are studied by the Langmuir technology at the temperature of 37, 40 and 45 °C. Additionally, the information on the morphology and height of monolayers are obtained by the Langmuir-Bloggett technique and atomic force microscope technique. The results suggest that the modification of the groups can reduce the compressibility of monolayers at a higher temperature, and the most significant effect is the role of the amino group. At a high temperature of 45 °C, the penetration ability of InP/ZnS-NH quantum dots in the LC phase of the mixed monolayer is stronger. At 37 °C and 40 °C, there is no clear difference between the penetration ability of InP/ZnS-NH quantum dots and InP/ZnS-COOH quantum dots. The InP/ZnS-NH quantum dots can prolong the recombination of monolayers at 45 °C and accelerate it at 37 °C and 40 °C either in the LE phase or in the LC phase. However, the InP/ZnS-COOH quantum dots can accelerate it in the LE phase at all temperatures involved but only prolong it at 45 °C in the LC phase. This work provides support for understanding the effects of InP/ZnS nanoparticles on the structure and properties of cell membranes, which is useful for understanding the behavior about the ingestion of nanoparticles by cells and the cause of toxicity.

摘要

在这项工作中,通过 37、40 和 45°C 的 Langmuir 技术研究了氨基或羧基修饰的 InP/ZnS 量子点对 DPPC/DPPG 混合单层相行为、弹性模量和弛豫时间特征参数的影响。此外,通过 Langmuir-Bloggett 技术和原子力显微镜技术获得了关于单层形态和高度的信息。结果表明,基团的修饰可以降低高温下单层的可压缩性,而最显著的影响是氨基的作用。在 45°C 的高温下,InP/ZnS-NH 量子点在混合单层 LC 相中的穿透能力更强。在 37°C 和 40°C 时,InP/ZnS-NH 量子点和 InP/ZnS-COOH 量子点的穿透能力没有明显区别。InP/ZnS-NH 量子点可以延长 45°C 时单层的重组,并在 LE 相或 LC 相均加速其在 37°C 和 40°C 时的重组。然而,在所有涉及的温度下,InP/ZnS-COOH 量子点都可以加速 LE 相中的重组,但仅在 45°C 时延长 LC 相中的重组。这项工作为理解 InP/ZnS 纳米颗粒对细胞膜结构和性质的影响提供了支持,这对于理解细胞摄入纳米颗粒的行为和毒性的原因很有用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e7b3/9920855/3a17b0b326aa/molecules-28-01118-g001.jpg

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