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细胞透镜和近红外荧光纳米传感器阵列,以实现化学外排细胞术。

Cellular lensing and near infrared fluorescent nanosensor arrays to enable chemical efflux cytometry.

机构信息

Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, MA, USA.

Institute of Materials Research and Engineering (IMRE), Agency for Science, Technology and Research (A*STAR), Singapore, Singapore.

出版信息

Nat Commun. 2021 May 25;12(1):3079. doi: 10.1038/s41467-021-23416-1.

Abstract

Nanosensors have proven to be powerful tools to monitor single cells, achieving spatiotemporal precision even at molecular level. However, there has not been way of extending this approach to statistically relevant numbers of living cells. Herein, we design and fabricate nanosensor array in microfluidics that addresses this limitation, creating a Nanosensor Chemical Cytometry (NCC). nIR fluorescent carbon nanotube array is integrated along microfluidic channel through which flowing cells is guided. We can utilize the flowing cell itself as highly informative Gaussian lenses projecting nIR profiles and extract rich information. This unique biophotonic waveguide allows for quantified cross-correlation of biomolecular information with various physical properties and creates label-free chemical cytometer for cellular heterogeneity measurement. As an example, the NCC can profile the immune heterogeneities of human monocyte populations at attomolar sensitivity in completely non-destructive and real-time manner with rate of ~600 cells/hr, highest range demonstrated to date for state-of-the-art chemical cytometry.

摘要

纳米传感器已被证明是监测单细胞的有力工具,即使在分子水平上也能实现时空精度。然而,目前还没有办法将这种方法扩展到具有统计学意义的大量活细胞上。在这里,我们设计并制造了微流控中的纳米传感器阵列,解决了这一限制,创建了纳米传感器化学计量学(NCC)。近红外荧光碳纳米管阵列通过引导流动细胞的微流道集成。我们可以利用流动细胞本身作为高度信息丰富的高斯透镜,投影近红外轮廓并提取丰富的信息。这种独特的生物光子波导允许对生物分子信息与各种物理性质进行定量的互相关,并创建用于细胞异质性测量的无标记化学计量学。例如,NCC 可以以完全非破坏性和实时的方式以皮摩尔灵敏度对人单核细胞群体的免疫异质性进行分析,其速率约为 600 个细胞/小时,这是迄今为止最先进的化学计量学所展示的最高范围。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8cf7/8149711/990d8fdc7173/41467_2021_23416_Fig1_HTML.jpg

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