Gupta Dinesh, Ip Tina, Summers Michael L, Basu Chhandak
a Department of Biology ; California State University , Northridge; Los Angeles , CA USA.
Bioengineered. 2015;6(1):33-41. doi: 10.4161/21655979.2014.979702. Epub 2015 Jan 3.
Phytol is a diterpene alcohol of medicinal importance and it also has potential to be used as biofuel. We found over production of phytol in Nostoc punctiforme by expressing a 2-Methyl-3-buten-2-ol (MBO) synthase gene. MBO synthase catalyzes the conversion of dimethylallyl pyrophosphate (DMAPP) into MBO, a volatile hemiterpene alcohol, in Pinus sabiniana. The result of enhanced phytol production in N. punctiforme, instead of MBO, could be explained by one of the 2 models: either the presence of a native prenyltransferase enzyme with a broad substrate specificity, or appropriation of a MBO synthase metabolic intermediate by a native geranyl diphosphate (GDP) synthase. In this work, an expression vector with an indigenous petE promoter for gene expression in the cyanobacterium N. punctiforme was constructed and MBO synthase gene expression was successfully shown using reverse transcriptase (RT)-PCR and SDS-PAGE. Gas chromatography--mass spectrophotometry (GC-MS) was performed to confirm phytol production from the transgenic N. punctiforme strains. We conclude that the expression of MBO synthase in N. punctiforme leads to overproduction of an economically important compound, phytol. This study provides insights about metabolic channeling of isoprenoids in cyanobacteria and also illustrates the challenges of bioengineering non-native hosts to produce economically important compounds.
叶绿醇是一种具有药用价值的二萜醇,它也有潜力用作生物燃料。我们通过表达2-甲基-3-丁烯-2-醇(MBO)合酶基因,发现点状念珠藻中叶绿醇产量过高。MBO合酶在北美黄松中催化焦磷酸二甲基烯丙酯(DMAPP)转化为MBO,一种挥发性单萜醇。点状念珠藻中叶绿醇产量增加而非MBO产量增加的结果,可以用以下两种模型之一来解释:要么存在一种具有广泛底物特异性的天然异戊烯基转移酶,要么天然的香叶基二磷酸(GDP)合酶利用了MBO合酶的代谢中间体。在这项工作中,构建了一个带有本土petE启动子的表达载体,用于在蓝藻点状念珠藻中进行基因表达,并使用逆转录酶(RT)-PCR和SDS-PAGE成功展示了MBO合酶基因的表达。进行了气相色谱-质谱(GC-MS)分析,以确认转基因点状念珠藻菌株中叶绿醇的产生。我们得出结论,点状念珠藻中MBO合酶的表达导致了一种经济上重要的化合物叶绿醇的过量产生。这项研究提供了关于蓝藻中类异戊二烯代谢通道的见解,也说明了生物工程改造非天然宿主以生产经济上重要化合物的挑战。