» Articles » PMID: 24479413

Lipid Accumulation and Biosynthesis Genes Response of the Oleaginous Chlorella Pyrenoidosa Under Three Nutrition Stressors

Overview
Publisher Biomed Central
Specialty Biotechnology
Date 2014 Feb 1
PMID 24479413
Citations 62
Authors
Affiliations
Soon will be listed here.
Abstract

Background: Microalgae can accumulate considerable amounts of lipids under different nutrient-deficient conditions, making them as one of the most promising sustainable sources for biofuel production. These inducible processes provide a powerful experimental basis for fully understanding the mechanisms of physiological acclimation, lipid hyperaccumulation and gene expression in algae. In this study, three nutrient-deficiency strategies, viz nitrogen-, phosphorus- and iron-deficiency were applied to trigger the lipid hyperaccumulation in an oleaginous Chlorella pyrenoidosa. Regular patterns of growth characteristics, lipid accumulation, physiological parameters, as well as the expression patterns of lipid biosynthesis-related genes were fully analyzed and compared.

Results: Our results showed that all the nutrient stress conditions could enhance the lipid content considerably compared with the control. The total lipid and neutral lipid contents exhibit the most marked increment under nitrogen deficiency, achieving 50.32% and 34.29% of dry cell weight at the end of cultivation, respectively. Both photosynthesis indicators and reactive oxygen species parameters reveal that physiological stress turned up when exposed to nutrient depletions. Time-course transcript patterns of lipid biosynthesis-related genes showed that diverse expression dynamics probably contributes to the different lipidic phenotypes under stress conditions. By analyzing the correlation between lipid content and gene expression level, we pinpoint several genes viz. rbsL, me g6562, accA, accD, dgat g2354, dgat g3280 and dgat g7063, which encode corresponding enzymes or subunits of malic enzyme, ACCase and diacylglycerol acyltransferase in the de novo TAG biosynthesis pathway, are highly related to lipid accumulation and might be exploited as target genes for genetic modification.

Conclusion: This study provided us not only a comprehensive picture of adaptive mechanisms from physiological perspective, but also a number of targeted genes that can be used for a systematic metabolic engineering. Besides, our results also represented the feasibility of lipid production through trophic transition cultivation modes, throwing light on a two-stage microalgal lipid production strategy with which heterotrophy stage provides sufficient robust seed and nitrogen-starvation photoautotrophy stage enhances the overall lipid productivity.

Citing Articles

Adaptability and nutritional analysis of a newly isolated sp. NeZha in brackish and marine environments with potential bioeconomic impacts.

Yuan S, Du M, Li X, Xu K, Zhang K, Liu X Front Nutr. 2024; 11:1460675.

PMID: 39206305 PMC: 11349555. DOI: 10.3389/fnut.2024.1460675.


Salicylic acid enhances cell growth, fatty acid and astaxanthin production in heterotrophic Chromochloris zofingiensis without reactive oxygen species elevation.

Zhang X, Zhang Z, Peng Y, Zhang Y, Li Q, Sun D Biotechnol Biofuels Bioprod. 2024; 17(1):1.

PMID: 38172878 PMC: 10765886. DOI: 10.1186/s13068-023-02449-2.


Nitrogen and phosphorus stress as a tool to induce lipid production in microalgae.

Maltsev Y, Kulikovskiy M, Maltseva S Microb Cell Fact. 2023; 22(1):239.

PMID: 37981666 PMC: 10658923. DOI: 10.1186/s12934-023-02244-6.


Biodiesel Production from the Marine Alga Grown on Yeast Wastewater and the Effect on Its Biochemical Composition and Gene Expression.

Senousy H, El-Sheekh M, Khairy H, El-Sayed H, Mahmoud G, Hamed A Plants (Basel). 2023; 12(16).

PMID: 37631110 PMC: 10459201. DOI: 10.3390/plants12162898.


Application of ionizing radiation as an elicitor to enhance the growth and metabolic activities in .

Kim J, Dubey S, Hwangbo K, Chung B, Lee S, Lee S Front Plant Sci. 2023; 14:1087070.

PMID: 36890890 PMC: 9986495. DOI: 10.3389/fpls.2023.1087070.


References
1.
Scott S, Davey M, Dennis J, Horst I, Howe C, Lea-Smith D . Biodiesel from algae: challenges and prospects. Curr Opin Biotechnol. 2010; 21(3):277-86. DOI: 10.1016/j.copbio.2010.03.005. View

2.
Li Y, Horsman M, Wang B, Wu N, Lan C . Effects of nitrogen sources on cell growth and lipid accumulation of green alga Neochloris oleoabundans. Appl Microbiol Biotechnol. 2008; 81(4):629-36. DOI: 10.1007/s00253-008-1681-1. View

3.
Liu Z, Wang G, Zhou B . Effect of iron on growth and lipid accumulation in Chlorella vulgaris. Bioresour Technol. 2007; 99(11):4717-22. DOI: 10.1016/j.biortech.2007.09.073. View

4.
James E . Superoxide dismutase. Parasitol Today. 1994; 10(12):481-4. DOI: 10.1016/0169-4758(94)90161-9. View

5.
Yeh K, Chang J . Nitrogen starvation strategies and photobioreactor design for enhancing lipid content and lipid production of a newly isolated microalga Chlorella vulgaris ESP-31: implications for biofuels. Biotechnol J. 2011; 6(11):1358-66. DOI: 10.1002/biot.201000433. View