Method Article

Measuring Proliferation of Vascular Smooth Muscle Cells Using Click Chemistry

DOI:

10.3791/59930

October 30th, 2019

In This Article

Summary

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Proliferation is a critical part of cellular function, and a common readout used to assess potential toxicity of new drugs. Measuring proliferation is, therefore, a frequently used assay in cell biology. Here we present a simple, versatile method of measuring proliferation that can be used in adherent and non-adherent cells.

Abstract

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The ability of a cell to proliferate is integral to the normal function of most cells, and dysregulation of proliferation is at the heart of many disease processes. For these reasons, measuring proliferation is a common tool used to assess cell function. Cell proliferation can be measured simply by counting; however, this is an indirect means of measuring proliferation. One common means of directly detecting cells preparing to divide is by incorporation of labeled nucleoside analogs. These include the radioactive nucleoside analog 3H-thymidine plus non-radioactive nucleoside analogs such as 5-bromo-2’ deoxyuridine (BrdU) and 5-ethynyl-2′-deoxyuridine (EdU). Incorporation of EdU is detected by click chemistry, which has several advantages when compared to BrdU. In this report, we provide a protocol for measuring proliferation by the incorporation of EdU. This protocol includes options for various readouts, along with the advantages and disadvantages of each. We also discuss places where the protocol can be optimized or altered to meet the specific needs of the experiment planned. Finally, we touch on the ways that this basic protocol can be modified for measuring other cell metabolites.

Introduction

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Proliferation is a critical part of cellular function1,2. Control of proliferation influences normal processes such as development, and pathologic processes such as cancer and cardiovascular disease. Hyperplastic growth of vascular smooth muscle cells, for example, is thought to be a precursor to atherosclerosis3. Changes in cell proliferation are also used to assess potential toxicity of new drugs. Given its widespread impact, measuring proliferation is a mainstay of many cell biology-based laboratories.

Cell proliferation can be measured by simply counting ....

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Protocol

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1. Detection of EdU using fluorescent label

  1. Stock solutions
    1. Prepare a 5 mM EdU stock solution by adding 12.5 mg of EdU to 10 mL of double distilled H2O.
    2. Prepare the labeling solution components: 200 mM tris(3-hydroxypropyltriazolylmethyl)amine (THPTA) (100 mg in 1.15 mL H2O), 100 mM CuSO4 (15.95 mg in 1 mL H2O; make fresh), 10 mM Cy3 picolyl-azide (1 mg in 95.3 mL H2O, stored in 5 µL aliquots at -20 °C), and 1 M sodium ascorbate (200 mg in 1 mL H2O; make fresh).
    3. Prepare resazurin stock solution at a concentration of 0.15 mg/mL. Filter sterilize and....

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Results

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In Figure 2, we demonstrate the outcomes of three different experiments measuring proliferation of VSMC in response to PDGF. After growing the cells in media formulated for SMCs, we carried out the experiment in serum free DMEM, to eliminate any potential effects of serum or growth factors on proliferation. In Figure 2A we compare results, from the same experiment, using a fluorescent vs luminescent readout. To read these plates, we used a multimode microplate r.......

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Discussion

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Incorporation of EdU is a simple, straightforward way to measure cell proliferation; it is particularly useful for adherent cells13. Our protocol uses smooth muscle cells, but it is applicable to any adherent cell (epithelial, endothelial, etc.). Although the protocol is not complicated, the one critical step is making the labeling solution — the ingredients must be added in the order listed. In addition, like chemiluminescent Western blots, if using the luminescence readout the plate must b.......

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Disclosures

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The authors have nothing to disclose.

Acknowledgements

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We thank Katie Carroll for technical assistance. We also thank Dr. David Cool and the Proteomics Analysis Laboratory for instruction on and provision of the Cytation imaging plate reader. This work was supported by a Wright State Foundation grant (to L.E.W.).

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Materials

List of materials used in this article
NameCompanyCatalog NumberComments
5-Ethynyl-2'-deoxyuridineCarbosynthNE08701
biotin picolyl azideClick Chemistry Tools1167-5
CuSO4Fisher ScientificC1297-100G
Cy3 picolyl azideClick Chemistry Tools1178-1
Cytation Plate ReaderBiotek
EVOS MicroscopeThermo Fisher Scientific
Hydrogen peroxide solutionSigma-Aldrich216763
Na ascorbateSigma-Aldrich11140-250G
NucBlue Fixed Cell Stain Ready ProbesInvitrogenR37606DAPI nuclear stain
Odyssey Blocking BufferLi-Cor927-40000blocking buffer
ParaformaldehydeElectron Microscopy Services15710
PBSFisher ScientificSH3002802
Sodium ChlorideSigma Life ScienceS3014-5kg
Streptavidin Horseradish Peroxidase ConjugateLife TechnologiesS911
Super Signal ELISA FemtoThermo ScientificPI137075ELISA substrate
Synergy Plate ReaderBiotek
THPTAClick Chemistry Tools1010-100
Tris Hydroxymethyl Aminomethane Hydrochloride (Tris-HCl)Fisher ScientificBP153-500
Triton X 100Bio-Rad1610407
Tween 20Fisher ScientificBP337-100

References

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  1. Fuster, J. J., et al. Control of cell proliferation in atherosclerosis: Insights from animal models and human studies. Cardiovascular Research. 86 (2), 254-264 (2010).
  2. Zhu, J., Thompson, C. B. Metabolic regulation of cell ....

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Tags

EdU Proliferation AssayClick Chemistry DetectionVascular Smooth Muscle CellsFluorescence ReadoutLuminescence ReadoutPlatelet Derived Growth FactorParaformaldehyde FixationTX 100 PermeabilizationImaging Plate ReaderManual Cell Counting

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