| Literature DB >> 26786050 |
Jianming Yang1,2, Qingjuan Nie3, Hui Liu4, Mo Xian5, Huizhou Liu6.
Abstract
BACKGROUND: To deal with the increasingly severe energy crisis and environmental consequences, biofuels and biochemicals generated from renewable resources could serve as a promising alternative for replacing petroleum as a source of fuel and chemicals, among which isoprene (2-methyl-1,3-butadiene) in particular is of great significance in that it is an important platform chemical, which has been used in industrial production of synthetic rubber for tires and coatings or aviation fuel.Entities:
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Year: 2016 PMID: 26786050 PMCID: PMC4719670 DOI: 10.1186/s12896-016-0236-2
Source DB: PubMed Journal: BMC Biotechnol ISSN: 1472-6750 Impact factor: 2.563
Fig. 1Production of isoprene via the novel MVA-mediated pathway used in this study. The dashed box shows the traditional pathway for MVA conversion to isoprene [8, 9], while the new pathway constructed in this study is within the solid-lined box. Enzyme symbols: MvaE (acetyl-CoA acetyltransferase/HMG-CoA reductase) and MvaS (HMG-CoA synthase) from Enterococcus faecalis; ERG12 (mevalonate kinase), ERG8 (phosphomevalonate kinase), ERG19 (mevalonate pyrophosphate decarboxylase) and IDI1 (IPP isomerase) from Saccharomyces cerevisiae; IspS (isoprene synthase) from Populus alba. OleTJE from Jeotgalicoccus species; OhyAEM from Elizabethkingia meningoseptica. Pathway intermediates: A-CoA, acetyl-CoA; AA-CoA, acetoacetyl-CoA; HMG-CoA, hydroxymethylglutaryl-CoA; Mev-P, mevalonate 5-phosphate; Mev-PP, mevalonate pyrophosphate. IPP, isopentenyl pyrophosphate; DMAPP, dimethylallyl pyrophosphate
Fig. 2Enzymatic assay for 3-methyl-3-buten-1-ol production by OleTJE using GC-MS and SDS-PAGE analysis. a GC-MS analysis of a 3-methyl-3-buten-1-ol sample produced by the OleTJE assay mixtures. b SDS-PAGE analysis of OleTJE. CK: cell lysate from BL21(DE3) containing pCOLADuet-1. 1: crude cell extracts from YJM30. 2: purified OleTJE
Fig. 3Enzymatic assay for isoprene production by OhyAEM using GC-MS and SDS-PAGE analysis. a GC-MS analysis of a isoprene sample produced by the OhyAEM assay mixtures. b SDS-PAGE analysis of OhyAEM. CK: cell lysate from BL21(DE3) containing pCOLADuet-1. 1: crude cell extracts from YJM31. 2: purified OhyAEM
Fig. 4Optimization of the expression levels of oleT and ohyA . The expression of oleT aand ohyA under the control of T7 promoter (YJM32) achieved much higher isoprene production than when the gene were under the control of the araBAD promoter (YJM34). The strain YJM33 using a high copy number plasmid (pET-28a(+)) achieved the highest isoprene production (52.2 μg/L). The experiment was conducted in triplicate
Fig. 5The time course of isoprene production by YJM33. Cell growth (▲) and isoprene accumulation (■) in YJM33. Cells were induced when the OD600 reached approximately 12 at 31 °C. Other experimental conditions are described in the section entitled “Fed-Batch Fermentation”
Strains , plasmids used in this study
| Name | Relevant characteristics | References |
|---|---|---|
| Strains | ||
|
| F−
| Invitrogen |
|
|
| Takara |
| YJM30 |
| This study |
| YJM31 |
| This study |
| YJM32 |
| This study |
| YJM33 |
| This study |
| YJM34 |
| This study |
| Plasmids | ||
| pACYCDuet-1 | P15A | Novagen |
| pCOLADuet-1 | ColA | Novagen |
| pBAD 18 | pBR322 | [ |
| pET-28a(+) | pBR322 | Novagen |
| pYJM16 | pACYCDuet-1 carrying | [ |
| pYJM30 | pCOLADuet-1 carrying | This study |
| pYJM31 | pBAD18 carrying | This study |
| pYJM32 | pCOLADuet-1 carrying | This study |
| pYJM33 | pCOLADuet-1 carrying | This study |
| pYJM34 | pET-28a(+) carrying | This study |
| pYJM35 | pBAD18 carrying | This study |