Method Article

Quantification of Lipid Abundance and Evaluation of Lipid Distribution in Caenorhabditis elegans by Nile Red and Oil Red O Staining

DOI:

10.3791/57352

⸱

March 5th, 2018

In This Article

Summary

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Nile red staining of fixed Caenorhabditis elegans is a method for quantitative measurement of neutral lipid deposits, while oil red O staining facilitates qualitative assessment of lipid distribution among tissues.

Abstract

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Caenorhabditis elegans is an exceptional model organism in which to study lipid metabolism and energy homeostasis. Many of its lipid genes are conserved in humans and are associated with metabolic syndrome or other diseases. Examination of lipid accumulation in this organism can be carried out by fixative dyes or label-free methods. Fixative stains like Nile red and oil red O are inexpensive, reliable ways to quantitatively measure lipid levels and to qualitatively observe lipid distribution across tissues, respectively. Moreover, these stains allow for high-throughput screening of various lipid metabolism genes and pathways. Additionally, their hydrophobic nature facilitates lipid solubility, reduces interaction with surrounding tissues, and prevents dissociation into the solvent. Though these methods are effective at examining general lipid content, they do not provide detailed information about the chemical composition and diversity of lipid deposits. For these purposes, label-free methods such as GC-MS and CARS microscopy are better suited, their costs notwithstanding.

Introduction

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Lipids are essential for life. They are integral components of membranes, act as secondary messengers and signal transducers, and have crucial functions in energy storage. When lipid metabolism is dysregulated, it leads to diseases like obesity and type II diabetes, which are pressing public health concerns9. Caenorhabditis elegans (C. elegans) is an excellent model organism in which to study lipid metabolism because it has a relatively short life cycle, a transparent body, a known cell lineage, and a fully sequenced genome. Primarily a hermaphrodite, C. elegans allows researchers to raise large numbers of isogenic animals in short periods of time to carryout high-throughput forward genetic screens to study a wide array of metabolic genes and pathways4. This approach has revealed a high degree of conservation in 273 C. elegans lipid metabolism genes among humans, mice, rats and drosophila. Furthermore, over 300 lipid genes in C. elegans have human orthologues that are associated with diseases unrelated to metabolic syndrome11. Traditionally, examination of lipid storage in C. elegans has mostly relied on dye-labeled assays, which provide robust information about lipid accumulation. Less common is a description of where lipids localize and measured differences in lipid abundance across tissues. However, recent work has revealed that lipid distribution can be as important as lipid accumulation6.

Lately, studies have begun integrating methods such as high performance liquid chromatography-mass spectrometry (HPLC-MS), gas chromatography-mass spectrometry (GC-MS), and coherent anti-stokes Raman scattering (CARS) microscopy to address the shortcomings of stain-based approaches by directly analyzing the contents of lipid extracts, specific lipid fractions, and lipid deposits, respectively10,11. Moreover, CARS microscopy has revealed that Nile red can only serve as a proxy for fat accumulation when used as a fixative dye, for its use as a vital stain leads to off-target staining of auto-fluorescent organelles10. However, the required technical expertise and costs associated with these chromatography and microscopy methods make their use untenable for many research questions. In this article, we discuss a convenient and reliable method to fixate and stain neutral lipid deposits in C. elegans using Nile red and oil red O to distinguish lipid abundance in whole animals and in specific tissues.

Nile red, 9-diethylamino-5H-benzo[α]phenoxazine-5-one, is a benzophenoxazone dye that readily dissolves in various organic solvents, but is mostly insoluble in water. It is an excellent lysochrome dye used to stain neutral lipids such as triglycerides or cholesterol esters because it features a strong color, solubilizes well in lipids, has negligible interaction with surrounding tissues, and is less soluble in the solvent than in lipids. It has an excitation and emission maxima of 450-500 and 520 nm, respectively1. When Nile red-stained C. elegans is viewed for green fluorescence, discrete lipid bodies can be observed throughout the intestine and other tissues either in clusters or evenly dispersed, depending on the animal's genotype or experimental treatment7.

Oil red O is a lysochrome, fat-soluble dye used to stain triglycerides and lipoproteins. It is called an azo dye because its chemical structure contains two azo groups attached to three aromatic rings. It is difficult to ionize, which renders it highly soluble in lipids. Its stain color is red and its light absorption maximum is 518 nm 3. C. elegans stained with oil red O show red lipid droplets that stand out against the animal's transparent body, which facilitates qualitative assessment of lipid distribution among different tissues6.

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Protocol

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1. Nile Red (NR) Staining of Lipids

  1. Preparation of 5 mg/mL NR stock solution
    1. In a 500 mL bottle, add 100 mg of NR powder to 200 mL of 100% acetone.
    2. Cover the bottle with aluminum foil to avoid any exposure to light.
    3. Before use, stir the solution for 2 h in the dark.
    4. For long term use, store the NR stock solution in a tightly sealed bottle without any light exposure. Scale NR stock solution according to research needs. Ensure that the same stock solution is used across NR-staining experiments to obtain consistent staining and imaging results.
  2. Preparation of NR working solution
    1. For every 1 mL of 40% isopropanol (v/v), add 6 µL of NR stock solution.
    2. Prepare 600 µL of NR working solution for each sample.
      NOTE: Make fresh NR working solution right before staining. Depending on NR stock solution needs, use either a 15 mL or 50 mL graduated conical tube.
  3. Preparation of worms for NR lipid staining
    1. Grow worms to early L4 stage at 20 °C on nematode growth medium (NGM) seeded with late-log OP50 E. coli.
    2. Wash the worms off the plate with 1 mL of 1x phosphate-buffered saline + 0.01% Triton X-100 (PBST) solution and put the worm suspension in a 1.5 mL microfuge tube.
    3. Centrifuge the worms at 560 x g for 1 min. Remove the supernatant and repeat this step until E. coli is cleared from suspension.
    4. Add 100 µL of 40% isopropanol to the worm pellet and incubate it at room temperature for 3 min.
    5. Centrifuge the worms at 560 x g for 1 min and remove the supernatant without disrupting the worm pellet.
      NOTE: Use higher volumes of PBST to wash the worms off the plates if using larger plates or staining more worms per plate. Do not wash the worms in PBST more than 15 min before the sample fixation. Perform additional washes if the supernatant is not cleared of bacteria. Carry out the incubation in 40% isopropanol using a nutator or rocker. Always monitor the tubes to make sure full sample agitation is occurring.
  4. Lipid staining with NR
    1. In the dark, add 600 µL of NR working solution to each sample. Invert the tubes three times and fully mix the worms in NR solution.
    2. Rotate the sample in the dark at room temperature for 2 h.
    3. Following the incubation, centrifuge the worms at 560 x g for 1 min and remove the supernatant.
    4. Add 600 µL of PBST and incubate the samples in the dark for 30 min to remove excess NR stain.
    5. Centrifuge the samples at 560 x g for 1 min and remove all but approximately 50 µL of supernatant.
      NOTE: NR incubation does not require agitation. Settling of worms is common during this step.
  5. Preparation of slides for microscope imaging
    1. Resuspend the worm pellet in remaining supernatant.
    2. Place 5 µL of worm suspension on a microscope slide and put a coverslip on carefully to avoid trapping any air bubbles.
    3. Seal the coverslip with nail polish before imaging worms.
    4. Prepare only a couple slides at a time. This will ensure NR imaging remains constant across samples. The quality of NR-stained images diminishes after 6 h. Discrete lipid droplets are difficult to observe and background fluorescence increases, which interferes with NR signal detection.
  6. Imaging of NR-stained worms
    1. Image the worms at 5X magnification to capture several animals per field of view.
    2. Switch to 10X magnification for better quantification of individual worms.
    3. Use FITC/GFP channel to image NR-stained worms and try different exposure times to determine the optimal conditions for quantification.
    4. Save files in TIF format to avoid losing data due to compression.
      NOTE: Typical exposure times range from 100-1000 ms. Having an optimal exposure time, use it for all samples to maintain imaging consistency.
  7. NR staining image quantification
    1. Upload micrographs to ImageJ. In the Plugins pull-down menu, use the Bio-Formats function if the image file is not recognized.
    2. In the Image pull-down menu, under the Stacks function, use Images-to-Stack to create an image stack when several micrographs are compared.
    3. In the same pull-down menu, adjust Brightness/Contrast of the image stack and propagate changes to all images by clicking Apply.
    4. Employ the Polygon selection tool to delineate each imaged worm and use the Measure function under the Analysis pull-down menu to quantify fluorescence intensity emitted by NR.
    5. For each image, measure five background locations and calculate the average background fluorescence intensity.
    6. Subtract the background fluorescence intensity from each imaged worm using the formula N = G - (A x B), where N stands for net fluorescence, G for gross fluorescence, A for total worm area and B for average background fluorescence.
    7. To normalize the fluorescence intensity by worm size, divide each worm's net fluorescence by its total area. The results are reported as fluorescence intensity, in arbitrary units (a.u.), per pixel.
      NOTE: Avoid exporting images in JPEG format. While compression makes files more manageable to store, data integrity is compromised by this format. Make sure that all images are modified and analyzed identically. Remember to include a scale bar to properly evaluate size at different magnifications. To better visualize differences in fluorescence intensity using ImageJ, switch image type from RGB to 8-bit and select Fire from the image lookup tables (LUT) menu. This creates a heat-map image in which increased color brightness correlates with increased fluorescence intensity.

2. Oil Red O Staining (ORO) of Lipids

  1. Preparation of ORO stock solution
    1. In a 250 mL bottle, add 500 mg of ORO powder to 100 mL of 100% isopropanol and mix it well.
    2. Once prepared, store the solution tightly sealed with no light exposure.
  2. Preparation of ORO working solution
    1. Dilute ORO stock solution in water (3:2) to 60% isopropanol.
    2. Before use, filter the working ORO solution through a 0.2 µm cellulose acetate sterile syringe filter.
      NOTE: For best solution quality, prepare working ORO solution the day before, and let it mix overnight. However, if solution is needed same day, dilute and mix ORO solution on a rocker for at least 2 h before use. Before rocking, wrap conical tube in paraffin tape to avoid leakage of ORO solution.
  3. Preparation of worms for ORO lipid staining
    1. Grow the worms at 20 °C on nematode growth medium (NGM) seeded with late-log OP50 E. coli to desired life stage.
    2. Add 1 mL of PBST solution to the plate and swirl until all worms are off the plate. Tilt the plate and wash it with 1 mL of PBST. Transfer the worm suspension to a 1.5 mL microfuge tube.
    3. Centrifuge the worms at 560 x g for 1 min. Remove the supernatant without disturbing the pellet and repeat the washing step with 1 mL of PBST three times. Remove all supernatant but 100 µL.
    4. Add 600 µL of 40% isopropanol to the worm pellet and rock it at room temperature for 3 min.
    5. Centrifuge the worms at 560 x g for 30 s and remove all supernatant but 100 µL without disrupting the worm pellet.
      NOTE: Use higher volumes of PBST to wash worms off plates if doing high-throughput staining. Do not wash worms in PBST more than 15 min prior to sample fixation. Do additional washes if supernatant is not cleared of bacteria. Carry out incubation in 40% isopropanol using a nutator or rocker. Always monitor tubes to make sure full sample agitation is occurring.
  4. Lipid staining with ORO
    1. Add 600 µL ORO working solution to each sample. Invert the tube three times and mix the worms well in ORO.
    2. Rotate the samples at 30 rpm for 2 h at room temperature.
    3. Centrifuge the samples at 560 x g for 1 min and eliminate all supernatant but 100 µL.
    4. Resuspend the samples in 600 µL of PBST and rotate the tubes at 30 rpm for 30 min to remove excess ORO stain.
    5. Centrifuge samples at 560 x g for 1 min and eliminate all but 50 µL of supernatant.
    6. To better distinguish the location of the animal's germline and intestinal cells, stain nuclei by adding 1 µL of (2-(4-amidinophenyl)-1H -indole-6-carboxamidine) (DAPI) for every 1 mL of ORO working solution. Carry out ORO staining for 2 h with adding DAPI prior to mounting slides for imaging. Intestinal nuclei are larger in size and the gonad is distinguished by the developing germ cells.
      NOTE: After ORO staining, worms may adhere to the sides of the microfuge tube and fail to form a noticeable pellet. If this happens, centrifuge the worms again or allow worms to settle by gravity for at least 10 min.
  5. Preparation of the slides for worm imaging
    1. Resuspend the worms in the remaining supernatant and mix the solution well.
    2. Put 5 µL of worm suspension on a microscope slide and place a coverslip carefully, ensuring that no air bubbles form.
    3. Seal the coverslip with nail polish and image worms.
      NOTE: After fixing and staining, worms can be very rigid and difficult to pipette. To circumvent this, make wide-bore pipettes by cutting off their tips.
    4. Store the slides in a micro-centrifuge rack at 4 °C for up to 24 h if not imaging immediately after staining.
  6. Imaging of ORO-stained worms
    1. Use a color-capable camera to image ORO-stained worms.
    2. Use 5X magnification to image several worms in one field of view.
    3. Switch to 10X magnification for better examination of individual worms.
    4. Export images in TIF format to avoid data loss due to compression.
      NOTE: If staining with ORO + DAPI, switch the color-capable camera to one that can capture fluorescence.
  7. Image analysis of ORO-stained worms
    1. Upload micrograph(s) to ImageJ. In the Plugins pull-down menu, use the Bio-Formats function if the image file is not recognized.
    2. In the Image pull-down menu, under the Stacks function, use Images-to-Stack to create an image stack when several micrographs are compared.
    3. Adjust Brightness/Contrast under the same pull-down menu to improve the visibility of lipid droplets.
    4. Categorize the images according to lipid accumulation throughout the animal's body or in specific tissues.
    5. For better evaluation of lipid localization and for the identification of non-specific image artifacts using ImageJ, select the Color function under the Image pull-down menu and click on Stack to RGB to show the signals of each RGB component.

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Results

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SKN-1 is a bZip, cytoprotective transcription factor that shares homology with mammalian NRF2 and has been shown to mediate fatty acid oxidation. Depending on the glucose concentration in their diet, worms with a constitutively activated skn-1 allele show different lipid levels when stained with Nile red7. Figure 1A-C shows activated skn-1 animals exposed to conditions that lead to increasing lipid le...

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Discussion

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The rise in obesity and metabolic disease rates makes C. elegans a suitable model to study the mechanisms that regulate fat accumulation in cells and tissues. Recent evidence suggests that the changes in lipid levels are correlated with cellular processes ranging from insulin signaling8, the activation of hormone receptors2, to reproductive output5. Compared to label-free microscopy and chromatography methods, Nile red and oil red O are rela...

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Disclosures

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The authors declare no conflicts of interest.

Acknowledgements

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This work was made possible by the NIH grant: R01GM109028 (S.P.C.)

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Materials

List of materials used in this article
NameCompanyCatalog NumberComments
Imager.M2m MicroscopeZeissn/aFluorescence microscope
ERC5s cameraAxiocamn/aColor-capable
MRm cameraAxiocamn/aFluorescence-capable
Nile redThermo FisherN1142Lipid Stain
Oil red OAlfa AesarA12989Lipid Stain
DAPIThermo FisherD1306DNA stain
Isopropyl AlcoholBDHBDH1133-1LPFixative solution
0.2 µm seterile syringe filterVWR28145-477Cellulose acetate filter
Centrifuge 5430Eppendorf5428000015Centrifuge
Shaker RotisserieLab Quake400110QShaker
Tube RotatorVWR10136-084Rotator
K2HPO4Sigma-Aldrich7758-11-4NGM
KH2PO4Sigma-Aldrich7778-77-0NGM
MgSO4Alfa Aesar7786-30-3NGM
CaCl2Sigma-Aldrich10035-04-8NGM
NaClSigma-Aldrich7647-14-5NGM
CholesterolSigma-Aldrich57-88-5NGM
PeptoneBD Biosciences211677NGM
AgarTeknovaL9110NGM
LB mediaSigma-AldrichL3147Bacterial growth

References

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Tags

Lipid Abundance QuantificationLipid Distribution EvaluationNile Red StainingOil Red O StainingC elegans Lipid MetabolismImageJ Micrograph AnalysisWorm PermeabilizationPBST WashingCentrifugation ProtocolFluorescence Intensity Measurement

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