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利用飞秒激光在单细胞分辨率下的光穿孔作用,将荧光肽适体靶向递送至活体微藻中。

Targeted delivery of fluorogenic peptide aptamers into live microalgae by femtosecond laser photoporation at single-cell resolution.

机构信息

Graduate School of Materials Science, Nara Institute of Science and Technology, Ikoma, 630-0192, Japan.

Nano Medical Engineering Laboratory, RIKEN, Wako, 351-0198, Japan.

出版信息

Sci Rep. 2018 May 29;8(1):8271. doi: 10.1038/s41598-018-26565-4.

Abstract

Microalgae-based metabolic engineering has been proven effective for producing valuable substances such as food supplements, pharmaceutical drugs, biodegradable plastics, and biofuels in the past decade. The ability to accurately visualize and quantify intracellular metabolites in live microalgae is essential for efficient metabolic engineering, but remains a major challenge due to the lack of characterization methods. Here we demonstrate it by synthesizing fluorogenic peptide aptamers with specific binding affinity to a target metabolite and delivering them into live microalgae by femtosecond laser photoporation at single-cell resolution. As a proof-of-principle demonstration of our method, we use it to characterize Euglena gracilis, a photosynthetic unicellular motile microalgal species, which is capable of producing paramylon (a carbohydrate granule similar to starch). Specifically, we synthesize a peptide aptamer containing a paramylon-binding fluorescent probe, 7-nitrobenzofurazan, and introduce it into E. gracilis cells one-by-one by suppressing their mobility with mannitol and transiently perforating them with femtosecond laser pulses at 800 nm for photoporation. To demonstrate the method's practical utility in metabolic engineering, we perform spatially and temporally resolved fluorescence microscopy of single live photoporated E. gracilis cells under different culture conditions. Our method holds great promise for highly efficient microalgae-based metabolic engineering.

摘要

在过去的十年中,基于微藻的代谢工程已被证明可有效生产有价值的物质,如食品补充剂、药物、可生物降解塑料和生物燃料。能够准确可视化和定量活微藻中的细胞内代谢物对于高效的代谢工程至关重要,但由于缺乏表征方法,这仍然是一个主要挑战。在这里,我们通过合成对靶代谢物具有特异性结合亲和力的荧光肽适体,并通过飞秒激光光穿孔以单细胞分辨率将其递送到活微藻中,证明了这一点。作为我们方法的原理验证演示,我们使用它来表征 Euglena gracilis,这是一种能够产生 paramylon(一种类似于淀粉的碳水化合物颗粒)的光合单细胞运动微藻物种。具体来说,我们合成了一种含有 paramylon 结合荧光探针 7-硝基苯并呋咱的肽适体,并通过用甘露醇抑制其迁移性,然后用 800nm 的飞秒激光脉冲瞬时穿孔,将其逐个引入 E. gracilis 细胞中进行光穿孔。为了证明该方法在代谢工程中的实际应用,我们在不同的培养条件下对单个活光穿孔的 E. gracilis 细胞进行时空分辨荧光显微镜观察。我们的方法为高效的基于微藻的代谢工程提供了很大的前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e8bc/5974127/d5d3658bc22b/41598_2018_26565_Fig1_HTML.jpg

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