Method Article

Isolation of Cell-Surface and Intracellular Proteins from an Astrocyte Culture

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July 8th, 2025

In This Article

Abstract

Source: Tham, D. K. L., et al. Determining Cell-surface Expression and Endocytic Rate of Proteins in Primary Astrocyte Cultures Using Biotinylation. J. Vis. Exp. (2017).

This video demonstrates the isolation of cell-surface and intracellular proteins from an astrocyte culture. The astrocyte culture is placed on ice to inhibit endocytosis, and then the cell-surface proteins are labeled with a biotinylation reagent. The cells are lysed to release the biotinylated cell-surface proteins and non-biotinylated intracellular proteins. Finally, streptavidin-coated beads are used to separate the biotinylated cell-surface proteins from the intracellular proteins.

Protocol

1. Determining Relative Cell-surface Protein Expression in Astrocytes by Biotinylation

NOTE: Here, we illustrate the application of this biotinylation technique to the study of the effects of the extracellular matrix molecule laminin on the cell-surface localization of the water-permeable channel aquaporin-4 (AQP4). Specialized materials required for this assay include sulfo-NHS-LC-biotin (sulfosuccinimidyl 6-(biotinamido) Hexanoate) and streptavidin-agarose resin (see Table of Materials).

  1. Using the method, prepare cultures of cortical astrocytes approximately 2 weeks in advance of the assay, and grow them in 75 cm2 vented culture flasks. When astrocytes are 80 - 90% confluent, detach them from the culture surface using 0.05% trypsin, and then passage them 1:3.
  2. At 48 h prior to the assay, when cells are again 80 - 90% confluent, passage astrocytes 1:3 (accounting for the change in the culture format) onto 60 mm cell culture dishes so that they are >70% confluent on the day the experiment is to take place. Ensure that cells are evenly distributed between dishes.
  3. At 16 h prior to assay, pipette laminin into culture medium to a final concentration of 24 nM, and incubate at 37 °C.
  4. Immediately prior to assay, prepare the following, and then place on ice or refrigerate: CM-PBS (100 mg/L MgCl2∙6H2O and 100 mg/L CaCl2 in 1X phosphate-buffered saline [PBS], pH 7.4), biotin buffer (0.5 mg/mL sulfo-NHS-LC-biotin in CM-PBS), quenching buffer (50 mM NH4Cl in CM-PBS), lysis buffer (25 mM Tris, pH 7.4, 25 mM glycine, 150 mM NaCl and 5 mM ethylenediaminetetraacetic acid [EDTA], 1% triton X-100, 1X protease inhibitor cocktail), 3X loading buffer (150 mM Tris, pH 6.8, 6% sodium dodecyl sulfate [SDS], 30% glycerol, 300 mM dithiothreitol [DTT] and 0.01% bromophenol blue), and wash buffer (10 mM Tris (pH 7.4), 1.5 mM EDTA, 150 mM NaCl, 1% Triton X-100, 1X protease inhibitor cocktail).
  5. Remove dishes holding the astrocyte cultures from the incubator and discard the medium.
  6. Wash cells thrice with 4 mL chilled CM-PBS and place the dishes on crushed ice.
  7. Pipette 2 mL biotin buffer into each well, and gently tilt dishes back and forth a few times to ensure complete coverage. Leave on ice for 30 min.
  8. Remove the biotin buffer using an aspirator and replace it with 4 mL quenching buffer. Leave on ice for 10 min.
  9. Aspirate the quenching buffer and replace it with an equivalent volume of the same. Again, leave on ice for 10 min.
  10. Discard the quenching buffer, and wash cells thrice with 4 mL chilled CM-PBS.
  11. Scrape cells into 1 mL chilled CM-PBS using a cell lifter and transfer the suspension to microcentrifuge tube.
  12. Pellet cells by centrifugation at 100 x g for 3 min. Discard the supernatant and re-suspend cells in 500 µL of lysis buffer.
  13. Leave samples on ice for 30 min, vortexing every 5 min, or place them on an end-over-end rotator at 4 °C.
  14. Centrifuge the lysate at 14,000 x g for 10 min at 4 °C to pellet any detergent-insoluble materials. Transfer the supernatant into a new microcentrifuge tube.
    1. Save 50 µL of this lysate and add loading buffer to it. Then denature it by heating at 95 °C in a dry bath; this is the "input" fraction, containing both biotinylated cell-surface proteins, as well as non-biotinylated cytosolic proteins.
  15. Widen the opening of a pipette tip by cutting off approximately 0.5 cm of material from its end using a pair of sharp scissors. Using this pipette tip, transfer 75 µL of streptavidin-agarose beads (normally stored at 4 °C) to the lysate, and incubate at 4 °C for 3 h on shaker/rocker.
    1. As streptavidin-agarose is frequently sold as a slurry containing 50% beads by volume, suspended in an antimicrobial solution, triturate the slurry to ensure that the beads are evenly suspended, and then pipette 150 µL of the suspension into each sample.
  16. Pellet streptavidin-agarose beads by centrifugation at 1500 x g for 30 s at 4 °C.
  17. Save 50 µL of the supernatant (add loading buffer and denature it at 95 °C in a water bath or heating block); this represents the "intracellular" fraction and is comprised primarily of non-biotinylated cytosolic proteins.
  18. Resuspend the pelleted beads in 1 mL wash buffer, and rock this for 3 min at 4 °C. Pellet beads (as in step 1.16) and discard the supernatant. Repeat this process 4x to minimize the nonspecific binding of nonbiotinylated cytosolic proteins.
  19. Pellet the beads by centrifugation (1500 x g for 30 s at 4 °C) and discard the overlying wash buffer. Add 50 µL of 1X loading buffer (diluted using lysis buffer). Release biotin and streptavidin from beads by denaturing this at 95 °C; this fraction should contain biotinylated cell-surface proteins only ("cell-surface" fraction).
    1. Separate input, cell-surface, and intracellular fractions by SDS-PAGE (sodium dodecyl sulfate-polyacrylamide gel electrophoresis), and analyze by western blotting.
      NOTE: While we used a 4 - 20% precast gradient gel in our experiments, a 12 - 14% separating gel with a 4% stacking layer (each containing 0.1% SDS) should suffice for the proteins of interest in this study. A molecular weight standard of the appropriate size range should also be used. Note that there can sometimes be an observable upshift in the apparent molecular masses of biotinylated proteins.

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Disclosures

No conflicts of interest declared.

Materials

List of materials used in this article
NameCompanyCatalog NumberComments
Ammonium chloride (NH4Cl)Fisher ScientificA661-500
Bromophenol blueBio-Rad#1610404
Complete protease inhibitor cocktailSigma-Aldrich11697498001
Disodium ethylenediaminetetraacetate dihydrate (EDTA)Bio-Rad#1610729
Dithiothreitol (DTT)Bio-Rad#1610611
EZ-Link Sulfo-NHS-LC-BiotinThermo Fisher Scientific#21335
GlycerolFisher ScientificBP229-1
GlycineSigma-AldrichG8898
Laminin from Engelbreth-Holm-Swarm murine sarcoma basement membraneSigma-AldrichL2020
Phosphate buffer salineGibco/Thermo Fisher Scientific10010-023
Sodium chloride (NaCl)Fisher ScientificS271-500Thaw on ice.
Sodium dodecyl sulfate (SDS)Sigma-Aldrich862010
Sodium hydroxide (NaOH)Fisher ScientificS318-100
Streptavidin agarose resinThermo Fisher Scientific#20347
Triton X-100Fisher ScientificBP151-500

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Tags

Cell Surface ProteinsBiotinylation ReagentStreptavidin Coated BeadsProtein IsolationEndocytosis InhibitionLysis BufferCentrifugationProtein Separation

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