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检测单个T细胞的细胞因子释放。

Detecting cytokine release from single T-cells.

作者信息

Zhu He, Stybayeva Gulnaz, Silangcruz Jaime, Yan Jun, Ramanculov Erlan, Dandekar Satya, George Michael D, Revzin Alexander

机构信息

Biomedical Engineering, University of California, Davis, USA.

出版信息

Anal Chem. 2009 Oct 1;81(19):8150-6. doi: 10.1021/ac901390j.

Abstract

The cytokine production by leukocytes correlates with body's ability to mount an immune response and therefore has high diagnostic value. In the present study we employed microfabricated surfaces to capture T-cells from minimally processed human blood, arrange these cells into a single cell array, and then detect interferon (IFN)-gamma released from individual cells. The fabrication of cell capture surfaces started with coating a silane-modified glass slide with a uniform layer of poly(ethylene glycol) (PEG) hydrogel. The hydrogel-coated slide was lyophilized and then incubated with a mixture of monoclonal anti-IFN-gamma and anti-CD4 antibodies (Abs). To define sites for single cell attachment, PEG hydrogel microwells (20 microm diameter) were photolithographically patterned on top of the Ab-containing hydrogel layer. This micropatterning process resulted in fabrication of PEG hydrogel microwells with Ab-decorated bottom and nonfouling walls. To minimize the blood volume requirement and to precisely define shear stress conditions, the engineered surface was enclosed inside a PDMS-based microfluidic device. Introduction of red blood cell (RBC) depleted whole human blood followed by controlled washing led to the isolation of individual CD4 T-cells within PEG microwells. Mitogenic activation and immunofluorescent staining performed inside the microfluidic chamber revealed IFN-gamma cytokine signal colocalized with specific T-cells. The device and process presented here will be expanded in the future to enable multiparametric functional analysis of immune cells organized into high density single cell arrays.

摘要

白细胞产生的细胞因子与机体产生免疫反应的能力相关,因此具有很高的诊断价值。在本研究中,我们采用微加工表面从经过最少处理的人体血液中捕获T细胞,将这些细胞排列成单细胞阵列,然后检测单个细胞释放的干扰素(IFN)-γ。细胞捕获表面的制备首先在硅烷修饰的载玻片上涂覆一层均匀的聚乙二醇(PEG)水凝胶。将涂覆有水凝胶的载玻片冻干,然后与单克隆抗IFN-γ和抗CD4抗体(Abs)的混合物孵育。为了确定单细胞附着的位点,在含抗体的水凝胶层顶部通过光刻图案化制备了PEG水凝胶微孔(直径20微米)。这种微图案化过程导致制备出底部带有抗体修饰且壁面具有抗污染性能的PEG水凝胶微孔。为了最小化所需的血量并精确确定剪切应力条件,将工程化表面封闭在基于聚二甲基硅氧烷(PDMS)的微流控装置内。引入去除红细胞(RBC)的全人类血液,随后进行控制冲洗,导致在PEG微孔内分离出单个CD4 T细胞。在微流控腔内进行的促有丝分裂激活和免疫荧光染色显示,IFN-γ细胞因子信号与特定的T细胞共定位。本文介绍的装置和方法未来将得到扩展,以实现对组织成高密度单细胞阵列的免疫细胞进行多参数功能分析。

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