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1.
Microbiology (Reading) ; 158(Pt 2): 448-464, 2012 Feb.
Article in English | MEDLINE | ID: mdl-22096147

ABSTRACT

Cyanobacteria are photosynthetic prokaryotes that are promising 'low-cost' microbial cell factories due to their simple nutritional requirements and metabolic plasticity, and the availability of tools for their genetic manipulation. The unicellular non-nitrogen-fixing Synechocystis sp. PCC 6803 is the best studied cyanobacterial strain and its genome was the first to be sequenced. The vast amount of physiological and molecular data available, together with a relatively small genome, makes Synechocystis suitable for computational metabolic modelling and to be used as a photoautotrophic chassis in synthetic biology applications. To prepare it for the introduction of a synthetic hydrogen producing device, a Synechocystis sp. PCC 6803 deletion mutant lacking an active bidirectional hydrogenase (ΔhoxYH) was produced and characterized at different levels: physiological, proteomic and transcriptional. The results showed that, under conditions favouring hydrogenase activity, 17 of the 210 identified proteins had significant differential fold changes in comparisons of the mutant with the wild-type. Most of these proteins are related to the redox and energy state of the cell. Transcriptional studies revealed that only six genes encoding those proteins exhibited significant differences in transcript levels. Moreover, the mutant exhibits similar growth behaviour compared with the wild-type, reflecting Synechocystis plasticity and metabolic adaptability. Overall, this study reveals that the Synechocystis ΔhoxYH mutant is robust and can be used as a photoautotrophic chassis for the integration of synthetic constructs, i.e. molecular constructs assembled from well characterized biological and/or synthetic parts (e.g. promoters, regulators, coding regions, terminators) designed for a specific purpose.


Subject(s)
Bacterial Proteins/metabolism , Hydrogen/metabolism , Hydrogenase/metabolism , Synechocystis/enzymology , Synechocystis/genetics , Bacterial Proteins/genetics , Gene Expression Regulation, Bacterial , Hydrogenase/genetics , Mutation , Synechocystis/metabolism
2.
Proteomics ; 10(16): 2950-60, 2010 Aug.
Article in English | MEDLINE | ID: mdl-20662100

ABSTRACT

The 2-D peptide separations employing mixed mode reversed phase anion exchange (MM (RP-AX)) HPLC in the first dimension in conjunction with RP chromatography in the second dimension were developed and utilised for shotgun proteome analysis. Compared with strong cation exchange (SCX) typically employed for shotgun proteomic analysis, peptide separations using MM (RP-AX) revealed improved separation efficiency and increased peptide distribution across the elution gradient. In addition, improved sample handling, with no significant reduction in the orthogonality of the peptide separations was observed. The shotgun proteomic analysis of a mammalian nuclear cell lysate revealed additional proteome coverage (2818 versus 1125 unique peptides and 602 versus 238 proteins) using the MM (RP-AX) compared with the traditional SCX hyphenated to RP-LC-MS/MS. The MM analysis resulted in approximately 90% of the unique peptides identified present in only one fraction, with a heterogeneous peptide distribution across all fractions. No clustering of the predominant peptide charge states was observed during the gradient elution. The application of MM (RP-AX) for 2-D LC proteomic studies was also extended in the analysis of iTRAQ-labelled HeLa and cyanobacterial proteomes using nano-flow chromatography interfaced to the MS/MS. We demonstrate MM (RP-AX) HPLC as an alternative approach for shotgun proteomic studies that offers significant advantages over traditional SCX peptide separations.


Subject(s)
Chromatography, Reverse-Phase/methods , Mass Spectrometry/methods , Peptide Fragments/analysis , Peptide Mapping/methods , Proteomics/methods , Acetonitriles , Cations , Cell Nucleus/chemistry , HeLa Cells , Humans , Hydrophobic and Hydrophilic Interactions , Isotope Labeling , Nuclear Proteins/analysis , Nuclear Proteins/chemistry , Nuclear Proteins/metabolism , Peptide Fragments/chemistry , Peptide Fragments/metabolism , Proteome/chemistry , Trypsin/metabolism
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