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用于同时筛选膜通透性和毒性以发现新型低温保护剂的高通量方法。

High throughput method for simultaneous screening of membrane permeability and toxicity for discovery of new cryoprotective agents.

作者信息

Ahmadkhani Nima, Benson James D, Eroglu Ali, Higgins Adam Z

机构信息

School of Chemical, Biological and Environmental Engineering, Oregon State University.

Department of Biology, University of Saskatchewan.

出版信息

bioRxiv. 2024 Jul 23:2024.07.22.604685. doi: 10.1101/2024.07.22.604685.

Abstract

Vitrification is the most promising method for cryopreservation of complex structures such as organs and tissue constructs. However, this method requires multimolar concentrations of cell-permeant cryoprotective agents (CPAs), which can be toxic at such elevated levels. The selection of CPAs for organ vitrification has been limited to a few chemicals; however, there are numerous chemicals with properties similar to commonly used CPAs. In this study, we developed a high-throughput method that significantly increases the speed of cell membrane permeability measurement, enabling ~100 times faster permeability measurement than previous methods. The method also allows assessment of CPA toxicity using the same 96-well plate. We tested five commonly used CPAs and 22 less common ones at both 4 °C and room temperature, with 23 of them passing the screening process based on their favorable toxicity and permeability properties. Considering its advantages such as high throughput measurement of membrane permeability along with simultaneous toxicity assessment, the presented method holds promise as an effective initial screening tool to identify new CPAs for cryopreservation.

摘要

玻璃化是用于冷冻保存诸如器官和组织构建体等复杂结构最具前景的方法。然而,该方法需要多摩尔浓度的细胞渗透性冷冻保护剂(CPA),如此高的浓度可能具有毒性。用于器官玻璃化的CPA选择仅限于少数几种化学物质;然而,有许多化学物质具有与常用CPA相似的特性。在本研究中,我们开发了一种高通量方法,该方法显著提高了细胞膜渗透性测量的速度,使渗透性测量速度比以前的方法快约100倍。该方法还允许使用同一96孔板评估CPA毒性。我们在4°C和室温下测试了5种常用的CPA和22种不太常用的CPA,其中23种基于其良好的毒性和渗透性特性通过了筛选过程。考虑到其具有诸如高通量测量膜渗透性以及同时进行毒性评估等优点,所提出的方法有望作为一种有效的初步筛选工具,用于识别用于冷冻保存的新CPA。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ff5b/11291039/39f93e0420e6/nihpp-2024.07.22.604685v1-f0001.jpg

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