| Literature DB >> 29213318 |
Kyle Sander1,2,3, Keiji G Asano4,3, Deepak Bhandari4,3,5, Gary J Van Berkel4,3, Steven D Brown2,6,7, Brian Davison1,2,6,3, Timothy J Tschaplinski6,3.
Abstract
BACKGROUND: Clostridium thermocellum and Thermoanaerobacterium saccharolyticum are prominent candidate biocatalysts that, together, can enable the direct biotic conversion of lignocellulosic biomass to ethanol. The imbalance and suboptimal turnover rates of redox cofactors are currently hindering engineering efforts to achieve higher bioproductivity in both organisms. Measuring relevant intracellular cofactor concentrations will help understand redox state of these cofactors and help identify a strategy to overcome these limitations; however, metabolomic determinations of these labile metabolites have historically proved challenging.Entities:
Keywords: Adenylate energy charge; Clostridium thermocellum; Redox; Targeted metabolomics; Thermoanaerobacterium saccharolyticum
Year: 2017 PMID: 29213318 PMCID: PMC5707896 DOI: 10.1186/s13068-017-0960-4
Source DB: PubMed Journal: Biotechnol Biofuels ISSN: 1754-6834 Impact factor: 6.040
Adenylate energy charge (AEC) improvements observed through protocol development
| Date | AEC | NADH (µM) | ATP (µM) | Protocol improvements from previous |
|---|---|---|---|---|
| 1 | 0.411 ± 0.017 | 0 | 0.246 ± 0.031 | Ethanol-based solvent, aggressive sonication protocol, extraction temperatures reached ~ 50 °C |
| 2 | 0.804 ± 0.009 | 0.123 ± 0.006 | 2.31 ± 0.13 | Fast-filtering extraction and aqueous/organic extraction solvent, adapted from [ |
| 3 | 0.91 ± 0.01 | 1.17 ± 0.06 | 3.61 ± 0.02 | Further improved handling, removed formic acid from extraction solvent |
Fig. 1Cell biomass was extracted multiple times to determine if extracting biomass multiple times is necessary to recover all metabolites present in collected biomass. Using this protocol, extracting cell biomass once is sufficient for complete extraction and quantitation of metabolites. AMP and NADH were unable to be detected in this experiment
Fig. 6Diagram of method used to collect and aliquot cell extract from biomass that had been extracted multiple times
Fig. 2Extraction solvent containing exogenously added metabolites was used to conduct a ‘mock extraction’ to assess metabolite losses due to handling. Blue bars indicate amount of metabolite quantified in solvent containing spiked metabolite. Orange bars indicate amount of solvent quantified in spiked solvent after one pass through a mock extraction. Noted above each metabolite is the percentage of each metabolite lost during mock extractions relative to the amount present in the spiked solvent. A(T,D,M)P and NAD(P)(H) are susceptible to handling-related losses
Fig. 3Storage stability of metabolites was assessed over 5 days at − 80 °C in extraction solvent at concentrations 0.01–1 µM. All metabolites appear stable under these storage conditions
Fig. 4Mass spectrometry signal suppression brought about by cell extract components were assessed as deflections in steady-state metabolite signals (created by infusing a mixture of the seven metabolites of interest in this study into the chromatography column eluent). Predetermined retention times for each metabolite (indicated by green bars) were monitored for signal deflection, which would indicate signal suppression by the cellular extract matrix. No signal suppression was observed from extraction solvent or extraction matrix at expected retention times for metabolites. Each steady-state metabolite signal was assayed for signal suppression in the presence of cell extract twice. Both assays are shown overlaid (red and blue lines)
Varying adenylate charge ratios observed across species highlights the need to develop protocols specific for each species/strain
| Species/strain | Genotype | Fermentation capabilities | Metabolite concentrations (μmol/g CDW) | NADH/NAD+ | NADPH/NADP+ | Adenylate energy charge | ||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| AMP | ADP | ATP | NAD | NADH | NADP | NADPH | ||||||
|
| ||||||||||||
| LL345 | Δhpt | Wildtype | 0.12 ± 0.047 | 0.64 ± 0.23 | 4.22 ± 1.1 | 1.26 ± 0.4 | 0.05 ± 0.01 | 0.15 ± 0.03 | 0.17 ± 0.07 | 0.04 | 1.13 | 0.91 |
| LL1111 | Δhpt ΔadhE | < 5% of wt ethanol | 0.53 ± 0.14 | 1.87 ± 0.54 | 5.64 ± 1.14 | 1.83 ± 0.42 | 0.48 ± 0.23 | 0.49 ± 0.04 | 0.71 ± 0.15 | 0.26 | 1.45 | 0.82 |
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| LL1025 | Wildtype | Wildtype | 0.16 ± 0.078 | 0.88 ± 0.21 | 4.4 ± 1.26 | 2.41 ± 0.51 | 0.06 ± 0.01 | 0.52 ± 0.1 | 0.09 ± 0.02 | 0.02 | 0.17 | 0.89 |
Fig. 5Diagram of the fast-filtering protocol used to extract and detect intracellular metabolites from cell biomass in this study
Ionization and collision cell parameters used to analyze metabolites in this study
| Metabolite | Product ion ( | Declustering potential (DP) V | Collision energy (CE) eV | Cell exit potential (CXP) V |
|---|---|---|---|---|
| AMP | 79 | − 100 | − 60 | − 15 |
| ADP | 79 | − 105 | − 120 | − 15 |
| ATP | 79 | − 55 | − 100 | − 15 |
| NAD | 540.1 | − 70 | − 20 | − 10 |
| NADH | 79 | − 110 | − 120 | − 3 |
| NADP | 620.1 | − 60 | − 20 | − 10 |
| NADPH | 79 | − 110 | − 115 | − 5 |