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组织透明化以通过整个生物体的三维成像定位微塑料。

Tissue Clearing To Localize Microplastics via Three-Dimensional Imaging of Whole Organisms.

机构信息

Department of Chemical Engineering, McGill University, 3610 University Street, Montreal, Quebec H3A 0C5, Canada.

出版信息

Environ Sci Technol. 2023 Jun 13;57(23):8476-8483. doi: 10.1021/acs.est.2c07209. Epub 2023 May 31.

DOI:10.1021/acs.est.2c07209
PMID:37256715
Abstract

Understanding the biological impacts of plastic pollution requires an effective methodology to detect unlabeled microplastics in environmental samples. Detecting unlabeled microplastics in an organism generally requires a digestion protocol, which results in the loss of spatial information on the distribution of microplastic within the organism and could lead to the disappearance of the smaller plastics. Fluorescence microscopy allows visualization of ingested microplastics but many labeling strategies are nonspecific and label biomass, thus limiting our ability to distinguish internalized plastics. While prelabeled plastics can be used to avoid nonspecific labeling, this approach precludes the detection of environmental microplastics in organisms. Also, using prelabeled microplastics can affect the viability of the organism and impact plastic uptake. Thus, a method was developed that employs nonspecific labeling with a tissue-clearing technique. Briefly, unlabeled microplastics are stained with a fluorescent dye ingestion by the organism. The tissue-clearing technique then removes tissue-bound dye while rendering the structurally intact organism transparent. The internalized plastics remain stained and can be visualized in the cleared tissue with fluorescence microscopy. The technique is demonstrated using polystyrene beads in living aquatic organismsandand by spiking a model vertebrate () with different microplastics.

摘要

要了解塑料污染的生物学影响,需要有一种有效的方法来检测环境样本中未标记的微塑料。通常,检测生物体中未标记的微塑料需要使用消化方案,这会导致微塑料在生物体中分布的空间信息丢失,并且可能导致较小的塑料消失。荧光显微镜可以观察到摄入的微塑料,但许多标记策略是非特异性的,会标记生物量,从而限制了我们区分内化塑料的能力。虽然可以使用预标记的塑料来避免非特异性标记,但这种方法排除了在生物体中检测环境微塑料的可能性。此外,使用预标记的微塑料会影响生物体的活力并影响塑料的吸收。因此,开发了一种使用非特异性标记和组织透明化技术的方法。简而言之,未标记的微塑料通过生物体的摄入被荧光染料染色。然后,组织透明化技术去除组织结合的染料,同时使结构完整的生物体透明化。内化的塑料仍然被染色,并可以在透明化的组织中通过荧光显微镜观察到。该技术通过在活体水生生物中使用聚苯乙烯珠粒和向模型脊椎动物()中添加不同的微塑料进行了演示。

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