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Due to their ability to store lipid bodies under certain stress conditions, algae have received a great deal of attention in recent years as a potential renewable fuel source1,2. Neutral lipids can account for over 60% of the cell dry weight under appropriate growth conditions3. Yet the industry does not have a simple, clean, rapid, and reliable standardized protocol to quantitate lipid content of algal cells in order to properly monitor bioprocess performance, analyze cultures, and screen for new strains.
The Bligh-Dyer gravimetric method developed some 50 years ago remains among the most common techniques used today4,5. While this procedure is simple, reliable, and easy to carry out, it is time-consuming, necessitates large sample volumes, and makes use of toxic solvents. It is not practical for analyzing many samples from a fermentation run or screening for new oil-rich strains. Other methods have been developed, but usually require advanced equipment and have not been standardized6.
An alternative that has garnered a great deal of interest is the Nile Red stain. Nile Red, a dye that fluoresces preferentially in non-polar environments, has been used to identify or quantify lipid bodies in various organisms including nematodes7, yeast8, bacteria9, and algae10-19. Initial techniques involving Nile Red were mostly qualitative or semi-quantitative, combining the stain with single-cuvette spectrophotometry or flow cytometry. In addition, some classes of algae such as green algae have thick cell wells that are mostly impermeable to the dye, which limited the range of the technique10.
Recent improvements to the Nile Red staining method have been reported that bypass the initial shortcomings of the protocol10,11. Staining the cells in the presence of a carrier solvent such as DMSO10 or ethanol10,11 linearizes the relationship between oil content and absorbance, allowing for reliable quantitative measurements. The solvent helps permeabilize the cell membrane so that the Nile Red molecules can pass through. In addition, incorporating a spectrophotometer with micro-plate reading capabilities enables high throughput protocols suitable for quantitative analysis.
In this article we detail a simple method for measuring oil content of algal cells by staining cultures with Nile Red in the presence of ethanol, a mild solvent. In order to most accurately account for background noise in the measurements, a standard curve correlating fluorescence intensity to oil content is developed using algal cells of known oil composition. The method is adapted from previously published protocols10,11. By using a 96-well spectrophotometer, one is able to analyze the same amount of samples in an hour that would take days to monitor by gravimetric methods. Furthermore, by calibrating using representative samples of the desired algal species this method produces relatively precise measurements that are directly interpretable. There exist many protocols outlining methods of staining algae with Nile Red optimized for different strains and applications; the protocol presented here was originally developed by de la Hoz Siegler et al.11 for Auxenochlorella protothecoides, Chlorella vulgaris, Scenedesmus dimorphus, and Scenedesmus obliquus, although it is likely suitable for many more species and classes. It has been designed with the specific application of monitoring bioprocess performance and it works equally well for previously dried samples and wet samples from a growing culture.