Devices based on light emitting fabrics dedicated to PDT preclinical studies

E. Thecua, L. Ziane, G. Baert, P. Deleporte, B. Leroux, A. Kumar, M. Baydoun, O. Morales, N. Delhem, S. Mordon
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引用次数: 7

Abstract

Whether preclinical studies either involve a cell or animal model, the distribution of light plays a determinant role in the reproducibility of results of photodynamic therapy (PDT) studies. Unfortunately, only few illumination devices dedicated to preclinical studies are available and are for the most, very expensive. Most research teams use home-made solutions that may not always be reproducible because of undefined light distribution, additive thermal emission, or unsuitable for shapes and volumes to illuminate. To address these issues, we developed illumination devices dedicated to our preclinical studies, which embed knitted light emitting fabrics (LEF) technology. LEF technology offers a homogeneous light distribution, without thermal emission and can be coupled with various light sources allowing investigation of several PDT modalities (irradiance, wavelength, illumination duration/mode). For in-vitro studies, we designed light plates, each allowing illumination of up to four 96-cells plates. For in-vivo studies, we designed mice boxes allowing three animals placement in prone position, equally surrounded by LEF and ensuring homogeneous extracorporeal illumination. Optical validation was performed and reproducibility of both preclinical systems were assessed. Both systems can deliver homogeneous light with an irradiance that can reach several mW/cm2, with varying durations and wavelengths. First results of preclinical studies demonstrate a high reproducibility, with an easy setup, and a great adaptability of illumination modalities with these devices based on light emitting fabrics.
基于专用于PDT临床前研究的发光织物的设备
无论临床前研究是否涉及细胞或动物模型,光的分布在光动力治疗(PDT)研究结果的可重复性中起着决定性作用。不幸的是,只有少数专用于临床前研究的照明设备可用,而且大多数都非常昂贵。大多数研究团队使用自制的解决方案,由于光分布不明确、附加热辐射或不适合形状和体积的照明,这些解决方案可能并不总是可重复的。为了解决这些问题,我们开发了专用于临床前研究的照明设备,其中嵌入了针织发光织物(LEF)技术。LEF技术提供均匀的光分布,没有热辐射,可以与各种光源耦合,允许研究几种PDT模式(辐照度,波长,照明持续时间/模式)。对于体外研究,我们设计了光板,每个光板允许最多四个96个细胞的光板。在体内研究中,我们设计了老鼠箱,允许三只动物俯卧,均匀地被LEF包围,并确保均匀的体外照明。进行了光学验证并评估了两种临床前系统的可重复性。这两种系统都可以提供均匀的光,辐照度可以达到几毫瓦/平方厘米,具有不同的持续时间和波长。临床前研究的第一个结果表明,这些基于发光织物的设备具有很高的可重复性,易于设置,并且对照明模式具有很大的适应性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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