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1.
细胞是生命活动的基本单位,单细胞分析能够阐明细胞的结构与功能,揭示细胞之间的差异性,在细胞分化、生理病理研究及疾病早期诊断中具有重要作用。毛细管电泳作为一种高效的分离手段,所需样品体积小,能与高灵敏度检测器联用,特别适于单细胞分析。本文从单细胞进样技术、单细胞裂解技术、检测方法及应用等方面,对2007年以来毛细管电泳用于单细胞分析的最新进展做了相应叙述,并对未来的发展方向进行了展望。表明毛细管电泳不仅适于单细胞分析,而且仍有巨大的发展潜力和广阔的应用空间。  相似文献   

2.
单细胞分析的研究   总被引:1,自引:0,他引:1  
程介克  黄卫华  王宗礼 《色谱》2007,25(1):1-10
单细胞分析是分析化学、生物学和医学之间渗透发展形成的跨学科前沿领域。近年来,毛细管电泳及微流控芯片用于单细胞分析已取得显著进展,特别表现在微流控芯片用于细胞的培养、分选、操纵、定位、分离及检测细胞的组分,实时监测细胞释放,及高通量阵列检测等方面。芯片的单元操作可根据需要灵活组合,显示出其独特的优点。本文重点介绍作者研究组的工作,并对近三年来国内外在毛细管电泳及芯片毛细管电泳用于单细胞分析的新进展进行评论。最后从毛细管电泳与微流控芯片、微流控芯片与细胞界面以及量子点用于探测活细胞等方面,展望了单细胞分析的发展前景。  相似文献   

3.
本文从细胞悬浮液制备、单个细胞进样技术、细胞溶解技术、分离模式、检测方法和应用新进展6个方面对单细胞毛细管电泳分析进行了全面评述.重点介绍了单个细胞进样技术及检测方法的最新进展,并对单细胞毛细管电泳分析的未来发展方向进行了展望.  相似文献   

4.
朱兰兰  殷学锋 《化学进展》2008,20(12):2045-2052
细胞内组分复杂、含量低,因此测定单细胞内化学组分的分析方法必须具有灵敏度高、选择性好和分辨率高的特点。高灵敏度的荧光检测技术是单细胞分析中应用最多的检测方法之一。但是细胞内绝大部分物质其天然态是没有荧光的,且由于细胞膜的阻碍,衍生试剂不能自由地进入细胞内。为了使衍生试剂透过细胞膜标记细胞内待测物质而不引起显著的稀释效应,已进行了大量的研究工作。本文综述了在单细胞分析中常用的荧光标记方法,包括细胞作为微反应器的衍生法,借助于脂质体与聚乙二醇(PEG)等增加细胞膜通透性的衍生方法和在毛细管/芯片毛细管电泳分析单细胞时柱上衍生和柱后衍生法以及量子点的标记法等。对这些方法的原理、特点和在单细胞分析中的应用也做了较为详细的阐述。  相似文献   

5.
单细胞的毛细管电泳分析   总被引:4,自引:0,他引:4  
胡深  黄波  李培标  程介克 《色谱》1997,15(1):27-30
对单细胞分析化学中毛细管电泳分离技术的进样方式、检测器、应用和前景予以综述,46篇。  相似文献   

6.
本文对毛细管电泳技术的主要原理、特点及其在单细胞分析中的应用作了综述,并展望了这一领域的未来发展。  相似文献   

7.
窄内径多孔层毛细管开管柱(NPLOT柱)在生命科学领域,特别是单细胞分析领域具有较好的应用前景。本研究采用原位热引发聚合法来制备窄内径奎尼丁类手性固定相多孔层开管柱,在6 μ m i.d.的毛细管中制备有机聚合物多孔层,考察了不同热聚合时间(3、6和9 h)对NPLOT柱形貌的影响,热聚3 h和6 h制备的NPLOT柱形貌均一,多孔层厚度分别为103±51 nm和210±51 nm。将热聚合3 h制备的NPLOT柱用于纳流高效液相色谱分离N-衍生化氨基酸对映体,在2 min内即可实现基本分离,消耗的样品量仅为皮升级别。该研究将为单细胞分析提供研究手段。  相似文献   

8.
Zhang L  Qu F  Lou B 《色谱》2012,30(2):116-122
作为人体形态结构、生理功能和生长发育的基本单位,细胞的结构功能及行为分析具有重要的研究价值。毛细管电泳作为日渐成熟的微量分析技术在细胞分析及应用方面已取得显著进展。本文综述了毛细管电泳在完整哺乳动物细胞分析中的应用,包括群体细胞分析和完整单细胞分析。所述内容涉及血红细胞、公猪精子、人宫颈癌细胞、人神经母细胞瘤细胞、人结直肠腺癌细胞、人慢性髓系白血病细胞以及鼠小脑颗粒细胞。总结了完整哺乳动物细胞分析的毛细管电泳方法和条件,归纳分析了完整细胞分析中存在的细胞破碎、聚集、沉降、吸附及电泳异质性等关键问题及解决方法。对毛细管电泳在细胞分析方面未来的应用方向进行了展望。综述文献49篇。  相似文献   

9.
《分析化学》2007,35(1):911-911
单细胞分析是分析化学、生物学和医学多学科相互渗透发展形成的跨学科前沿领域。分析化学新方法新技术丛书———《单细胞分析》,由武汉大学程介克教授等著。全书共分15章,全面系统地介绍了单细胞分析的各种方法,包括毛细管电泳、微流控芯片、多种光学显微镜(荧光显微镜、聚焦荧光显微镜、全内反射荧光显微镜、多光子荧光显微镜、荧光相关显微镜、近场扫描光学显微镜等)、扫描电化学显微镜、质谱成像、原子力显微镜、扫描隧道显微镜图像分析、阿达玛变换显微光谱及成像、肿瘤电化学及免疫分析、动力学分析、荧光及发光探针、纳米技术以及实…  相似文献   

10.
杨云  田瑞军 《色谱》2020,38(10):1125-1132
近年来,蛋白质组学技术在样品前处理、分离技术和质谱检测技术方面获得了快速发展,已经可以实现在几小时内对上万种蛋白的同时定性和定量分析。然而,目前的主流蛋白质组学技术仍无法满足极微量生物样品,尤其是单细胞样品的组学分析需求。毛细管电泳分离技术具有峰宽窄、柱效高、样品用量少等优势,是与高分辨质谱在线联用的理想选择之一。该文评述了集成化和在线样品前处理以及主流的纳升液相色谱-质谱联用系统在高灵敏度蛋白质组学分析领域的发展现状和挑战,认为该领域的重要技术挑战之一在于目前的纳升液相色谱分离已经无法完全匹配现代高分辨质谱超过40 Hz的超高扫描速度,从而导致质谱使用效率的降低。针对上述技术挑战,该文重点探讨了毛细管电泳-质谱联用技术的独特技术优势和潜在发展机遇,主要包括:(1)面向微量酶解多肽样品的高柱效毛细管电泳分离。通过采用毛细管电色谱可以进一步改善毛细管电泳柱容量不足的局限;(2)面向高灵敏度分析的无鞘液/鞘液接口开发;(3)高效毛细管电泳分离与高扫描速度质谱检测的协同化使用。总之,我们预期毛细管电泳-质谱联用技术的进一步发展有望在针对单细胞等超微量生物学样品的蛋白质组学分析中获得更广泛的应用。  相似文献   

11.
Gao J  Yin XF  Fang ZL 《Lab on a chip》2004,4(1):47-52
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 microm deep and 48 microm 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 reservoirs) 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. NDA 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 7.2 [times] 10(-4)+/- 3.3 x 10(-4) M (63 +/- 29 amol per cell). The average separation efficiency for GSH in lysed cells was 2.13 x 10(6)+/- 0.4 x 10(6) plates per m, and was about a factor of 5 higher than those obtained with GSH standards using pinched injection.  相似文献   

12.
微流控芯片NDA在线衍生测定单细胞中谷胱甘肽   总被引:3,自引:0,他引:3  
单细胞分析对研究细胞内信号传递和重大疾病的早期诊断等具有重要意义,荧光标记是检测细胞内物质的常用技术,为防止衍生时的过度稀释,大多采用柱前细胞内衍生法,衍生后再用微流控芯片分析,此法操作复杂,需多次离心分离,且能透过细胞膜标记胞内组分的荧光试剂较少。  相似文献   

13.
A chip-based microfluidic system for high-throughput single-cell analysis is described. The system was integrated with continuous introduction of individual cells, rapid dynamic lysis, capillary electrophoretic (CE) separation and laser induced fluorescence (LIF) detection. A cross microfluidic chip with one sheath-flow channel located on each side of the sampling channel was designed. The labeled cells were hydrodynamically focused by sheath-flow streams and sequentially introduced into the cross section of the microchip under hydrostatic pressure generated by adjusting liquid levels in the reservoirs. Combined with the electric field applied on the separation channel, the aligned cells were driven into the separation channel and rapidly lysed within 33ms at the entry of the separation channel by Triton X-100 added in the sheath-flow solution. The maximum rate for introducing individual cells into the separation channel was about 150cells/min. The introduction of sheath-flow streams also significantly reduced the concentration of phosphate-buffered saline (PBS) injected into the separation channel along with single cells, thus reducing Joule heating during electrophoretic separation. The performance of this microfluidic system was evaluated by analysis of reduced glutathione (GSH) and reactive oxygen species (ROS) in single erythrocytes. A throughput of 38cells/min was obtained. The proposed method is simple and robust for high-throughput single-cell analysis, allowing for analysis of cell population with considerable size to generate results with statistical significance.  相似文献   

14.
A novel multi-depth microfluidic chip was fabricated on glass substrate by use of conventional lithography and three-step etching technology. The sampling channel on the microchip was 37 microm deep, while the separation channel was 12 microm deep. A 1mm long weir was constructed in the separation channel, 300 microm down the channel crossing. The channel at the weir section was 6 microm deep. By using the multi-depth microfluidic chip, human carcinoma cells, which easily aggregate, settle and adhere to the surface of the channel, can be driven from the sample reservoir to the sample waste reservoir by hydrostatic pressure generated by the difference of liquid level between sample and sample waste reservoirs. Single cell loading into the separation channel was achieved by applying a set of pinching potentials at the four reservoirs. The loaded cell was stopped by the weir and precisely positioned within the separation channel. The trapped cell was lysed by sodium dodecyl sulfate (SDS) containing buffer solution in 20s. This approach reduced the lysing time and improved the reproducibility of chip-based electrophoresis separations. Reduced glutathione (GSH) and reactive oxygen species (ROS) were used as model intracellular components in single human carcinoma cells, and the constituents were separated by chip-based electrophoresis and detected by laser-induced fluorescence (LIF). A throughput of 15 samples/h, a migration time precision of 3.1% RSD for ROS and 4.9% RSD for GSH were obtained for 10 consecutively injected cells.  相似文献   

15.
微流控分析芯片的网络结构和微米通道尺寸适合于单细胞进样、控制和分离分析[1~4].在测定细胞内容物时,大多采用柱前细胞内衍生法[1,2,4],但操作复杂,需多次离心分离,且能透过细胞膜标记胞内组分的荧光试剂较少.  相似文献   

16.
Ling YY  Yin XF  Fang ZL 《Electrophoresis》2005,26(24):4759-4766
A microchip electrophoresis method was developed for simultaneous determination of reactive oxygen species (ROS) and reduced glutathione (GSH) in the individual erythrocyte cell. In this method, cell sampling, single-cell loading, docking, lysing, and capillary electrophoretic separation with LIF detection were integrated on a microfluidic chip with crossed channels. ROS was labeled with dihydrorhodamine 123 in the intact cell, while GSH was on-chip labeled with 2,3-naphthalene-dicarboxaldehyde, which was included in the separation medium. On-chip electrical lysis, characterized by extremely fast disruption of the cellular membrane (<40 ms), was exploited to minimize enzymatic effects on analyte concentrations during the determination. The microfluidic network was optimized to prevent cell leaking from the sample reservoir (S) into separation during the separation phase. The structure of the S was modified to avoid blockage of its outlet by deposited cells. Detection limits of 0.5 and 6.9 amol for ROS and GSH, respectively, were achieved. The average cell throughput was 25 cells/h. The effectiveness of the method was demonstrated in the simultaneous determination of GSH and ROS in individual cells and the variations of cellular GSH and ROS contents in response to external stimuli.  相似文献   

17.
We developed a method for the direct identification of dopamine in single cultured rat pheochromocytoma cells by capillary electrophoresis using an end‐channel carbon fiber nanoelectrode amperometric detector. The operation mode was designed to achieve single‐cell injection and lysis in microfluidic chip electrophoresis with only one high‐voltage power supply. The separation and detection conditions were optimized. Four catecholamines were baseline‐separated and determined with this system, and the cell density and liquid height of the reservoirs were accommodated for single cell loading, docking and analysis. The microchip capillary electrophoresis system was successfully applied to determine dopamine in single cultured rat pheochromocytoma cells.  相似文献   

18.
Gai H  Yu L  Dai Z  Ma Y  Lin B 《Electrophoresis》2004,25(12):1888-1894
A simple method was developed for injecting a sample on a cross-form microfluidic chip by means of hydrostatic pressure combined with electrokinetic forces. The hydrostatic pressure was generated simply by adjusting the liquid level in different reservoirs without any additional driven equipment such as a pump. Two dispensing strategies using a floating injection and a gated injection, coupled with hydrostatic pressure loading, were tested. The fluorescence observation verified the feasibility of hydrostatic pressure loading in the separation of a mixture of fluorescein sodium salt and fluorescein isothiocyanate. This method was proved to be effective in leading cells to a separation channel for single cell analysis.  相似文献   

19.
A method based on microchip electrophoresis (MCE) with chemiluminescence (CL) detection was developed for the determination of ascorbic acid (AA) and amino acids including tryptophan (Trp), glycine (Gly) and alanine (Ala) present in single cells. Cell injection, loading, lysing, electrophoretic separation and CL detection were integrated onto a simple cross microfluidic chip. A single cell was loaded in the cross intersection by electrophoretic means through applying a set of potentials at the reservoirs. The docked cell was lysed rapidly under a direct electric field. The intracellular contents were MCE separated within 130 s. CL detection was based on the enhancing effects of AA and amino acids on the CL reaction of luminol with K3[Fe(CN)6]. Rat hepatocytes were prepared and analyzed as the test cellular model. The average intracellular contents of AA, Trp, Gly and Ala in single rat hepatocytes were found to be 38.3, 5.15, 3.78 and 3.84 fmol (n = 12), respectively.  相似文献   

20.
Zhang L  Yin X  Fang Z 《Lab on a chip》2006,6(2):258-264
A simple method for injecting well-defined non-biased sample plugs into the separation channel of a microfluidic chip-based capillary electrophoresis system was developed by a combination of flows generated by negative pressure, electrokinetic and hydrostatic forces. This was achieved by using only a single syringe pump and a single voltage supply at constant voltage. In the loading step, a partial vacuum in the headspace of a sealed sample waste reservoir was produced using a syringe pump equipped with a 3-way valve. Almost instantaneously, sample was drawn from the sample reservoir across the injection intersection to the sample waste reservoir by negative pressure. Simultaneously, buffer flow from the remaining two buffer reservoirs pinched the sample flow to form a well-defined sample plug at the channel intersection. In the subsequent separation stage, the vacuum in headspace of the sample waste reservoir was released to terminate all flows generated by negative pressure, and the sample plug at the channel intersection was electrokinetically injected into the separation channel under the potential applied along the separation channel. The liquid levels of the four reservoirs were optimized to prevent sample leakage during the separation stage. The approach considerably simplified the operations and equipment for pinched injection in chip-based CE, and improved the throughput. Migration time precisions of 3.3 and 1.5% RSD for rhodamine123 (Rh123) and fluorescein sodium (Flu) in the separation of a mixture of Flu and Rh123 were obtained for 56 consecutive determinations with peak height precisions of 6.2% and 4.4% RSD for Rh123 and Flu, respectively.  相似文献   

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