4.7 Article

Single cell-resolution western blotting

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NATURE PROTOCOLS
卷 11, 期 8, 页码 1508-1530

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NATURE PUBLISHING GROUP
DOI: 10.1038/nprot.2016.089

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资金

  1. National Cancer Institute of the National Institutes of Health [R21CA183679]
  2. New Innovator Award from the National Institutes of Health [1DP2OD007294]
  3. NSF CAREER award from the National Science Foundation [CBET-1056035]
  4. Diversity Supplement from the National Institutes of Health
  5. National Science Foundation Graduate Research Fellowships [DGE 1106400]
  6. Directorate For Engineering [1056035] Funding Source: National Science Foundation
  7. Div Of Chem, Bioeng, Env, & Transp Sys [1056035] Funding Source: National Science Foundation

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his protocol describes how to perform western blotting on individual cells to measure cell-to-cell variation in protein expression levels and protein state. Like conventional western blotting, single-cell western blotting (scWB) is particularly useful for protein targets that lack selective antibodies (e.g., isoforms) and in cases in which background signal from intact cells is confounding. scWB is performed on a microdevice that comprises an array of microwells molded in a thin layer of a polyacrylamide gel (PAG). The gel layer functions as both a molecular sieving matrix during PAGE and a blotting scaffold during immunoprobing. scWB involves five main stages: (i) gravity settling of cells into microwells; (ii) chemical lysis of cells in each microwell; (iii) PAGE of each single-cell lysate; (iv) exposure of the gel to UV light to blot (immobilize) proteins to the gel matrix; and (v) in-gel immunoprobing of immobilized proteins. Multiplexing can be achieved by probing with antibody cocktails and using antibody stripping/reprobing techniques, enabling detection of 10+ proteins in each cell. We also describe microdevice fabrication for both uniform and pore-gradient microgels. To extend in-gel immunoprobing to gels of small pore size, we describe an optional gel de-cross-linking protocol for more effective introduction of antibodies into the gel layer. Once the microdevice has been fabricated, the assay can be completed in 4-6 h by microfluidic novices and it generates high-selectivity, multiplexed data from single cells. The technique is relevant when direct measurement of proteins in single cells is needed, with applications spanning the fundamental biosciences to applied biomedicine.

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