Abstract Background Metabolic engineering has emerged as a potential strategy for improving microalgal lipid content through targeted changes to lipid metabolic networks. However, the intricate nature of lipogenesis has impeded metabolic engineering. Therefore, it is very important to identify the crucial metabolic nodes and develop strategies to exploit multiple genes for transgenesis. In an attempt to unravel the microalgal triacylglycerol (TAG) pathway, we overexpressed two key lipogenic genes, glycerol-3-phosphate acyltransferase (GPAT1) and lysophosphatidic acid acyltransferase (LPAT1), in oleaginous Phaeodactylum tricornutum and determined their roles in microalgal lipogenesis. Results Engineered P. tricornutum strains showed enhanced...
With the increasingly severe energy and environmental problems, biodiesel from microalgae has become...
Photosynthetic organisms like plants and algae can use sunlight to produce lipids as important metab...
Additional file 1: Figure S1. Protein structure of GPAT1 and LPAT1 obtained using SMART ( http://sma...
Abstract Background Microalgae have emerged as a potential feedstock for biofuels and bioactive comp...
Abstract Background Microalgal metabolic engineering holds great promise for the overproduction of a...
Microalgal lipids are promising feedstocks for food and biofuels. Since lipid production by microalg...
Microalgal lipids are promising feedstocks for food and biofuels. Since lipid production by microalg...
Oleaginous algae have the ability to synthesize a high level of triacylglycerol (TAG) and are consid...
Abstract Background Microalgae are promising sources of lipid triacylglycerol (TAG) for sustainable ...
Recent research has focused on understanding and using microalgal metabolic pathways to produce tria...
Microalgae have been emerging as an important source for the production of bioactive compounds. Mari...
Oleaginous microalgae represent potential feedstocks for the sustainable production of lipids thanks...
Background: Microalgae are promising alternate and renewable sources for producing valuable products...
Background: In photosynthetic oleaginous microalgae, acyl-CoA molecules are used as substrates for t...
Triacylglycerol (TAG) accumulation mechanisms under stress have been intensively investigated in rec...
With the increasingly severe energy and environmental problems, biodiesel from microalgae has become...
Photosynthetic organisms like plants and algae can use sunlight to produce lipids as important metab...
Additional file 1: Figure S1. Protein structure of GPAT1 and LPAT1 obtained using SMART ( http://sma...
Abstract Background Microalgae have emerged as a potential feedstock for biofuels and bioactive comp...
Abstract Background Microalgal metabolic engineering holds great promise for the overproduction of a...
Microalgal lipids are promising feedstocks for food and biofuels. Since lipid production by microalg...
Microalgal lipids are promising feedstocks for food and biofuels. Since lipid production by microalg...
Oleaginous algae have the ability to synthesize a high level of triacylglycerol (TAG) and are consid...
Abstract Background Microalgae are promising sources of lipid triacylglycerol (TAG) for sustainable ...
Recent research has focused on understanding and using microalgal metabolic pathways to produce tria...
Microalgae have been emerging as an important source for the production of bioactive compounds. Mari...
Oleaginous microalgae represent potential feedstocks for the sustainable production of lipids thanks...
Background: Microalgae are promising alternate and renewable sources for producing valuable products...
Background: In photosynthetic oleaginous microalgae, acyl-CoA molecules are used as substrates for t...
Triacylglycerol (TAG) accumulation mechanisms under stress have been intensively investigated in rec...
With the increasingly severe energy and environmental problems, biodiesel from microalgae has become...
Photosynthetic organisms like plants and algae can use sunlight to produce lipids as important metab...
Additional file 1: Figure S1. Protein structure of GPAT1 and LPAT1 obtained using SMART ( http://sma...