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Integration of single cell injection,cell lysis,separation and detection of intracellular constituents on a microfluidic chip

机译:在微流控芯片上整合单细胞注射,细胞裂解,分离和细胞内成分检测

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A microfluidic system was developed for the analysis of single biological cells,with functional integration of cell sampling,single cell loading,docking,lysing,and capillary electrophoretic (CE) separation with laser induced fluorescence (LIF) detection in microfabricated channels of a single glass chip.Channels were 12 num deep and 48 mum wide,with a simple crossed-channel design.The effective separation channel length was 35 mm.During sampling with a cell suspension (cell population 1.2 X 10~5 cells per mL in physiological salt solution),differential hydrostatic pressure (created by adjusting liquid levels in the four reservoris) was used to control cell flow exclusively through the channel crossing.Single cell loading into the separation channel was achieved by electrophoretic means by applying a set of potentials at the four reservoirs,counteracting the hydrostatic flow.A special docking (adhering) procedure for the loaded cell was applied before lysis by repeatedly connecting and disconnecting a set of low potentials,allowing precise positioning of the cell within the separation channel.Cell lysis was then effected within 40 ms under an applied CE separation voltage of 1.4 kV (280 V cm~(-1)) within the working electrolyte (pH 9.2 borate buffer) without additional lysates.The docked lysing approach reduced dispersion of released intracellular constituents,and significantly improved the reproducibility of CE separations.Glutathione (GSH) was used as a model intracellular component in single human erythrocyte cells.DNA derivatized GSH was detected using LIF.A throughput of 15 samples h~(-1),a retention time precision of 2.4% RSD was obtained for 14 consecutively injected cells.The average cellular concentration of GSH in human erythrocytes was found to be 7.2X10~(-4)+-3.3X10~(-4) M (63+-29 amol per cell).The average separation efficiency for GSH in lysed cells was 2.13X10~6+-0.4X10~6 plates per m,and was about a factor of 5 higher than those obtained with GSH standards using pinched injection.
机译:开发了一种用于分析单个生物细胞的微流体系统,该系统具有在单个玻璃的微加工通道中进行细胞采样,单细胞上样,对接,裂解和毛细管电泳(CE)分离与激光诱导荧光(LIF)检测的功能集成。通道为12毫米深,48毫米宽,采用简单的交叉通道设计,有效分离通道长度为35毫米。 ),通过压差静水压(通过调节四个储液罐中的液位产生)来控制细胞仅通过通道的流动。通过电泳方法在四个储液罐上施加一组电势,将单个细胞加载到分离通道中通过反复连接和连接,对裂解的细胞进行特殊的对接(粘附)程序,然后进行裂解。断开一组低电位,以使电池在分离通道内精确定位。然后在工作电解液中施加的1.4 kV(280 V cm〜(-1))CE分离电压下,在40 ms内进行细胞裂解。 pH 9.2硼酸盐缓冲液),无需额外的裂解物。对接裂解法减少了释放的细胞内成分的分散,并显着提高了CE分离的重现性。谷胱甘肽(GSH)被用作单个人红细胞中的模型细胞内成分。用LIF检测.15个样品h〜(-1)的通量,连续注入14个细胞的保留时间精度为2.4%RSD。人红细胞中GSH的平均细胞浓度为7.2X10〜(- 4)+-3.3X10〜(-4)M(每细胞63 + -29 amol)。裂解细胞中GSH的平均分离效率为每m 2.13X10〜6 + -0.4X10〜6板,约为比GSH stan高5倍pin子使用捏注射。

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