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Proteome analysis of Spiroplasma melliferum (A56) and protein characterisation across species boundaries
S J Cordwell1, D J Basseal, I Humphery-Smith
1Centre of Proteome Research and Gene-Product Mapping, National Innovation Centre, Eveleigh, Australia.
Abstract:
Spiroplasma melliferum (Class: Mollicutes) is a wall-less, helical bacterium with a genome of approximately 1460 kbp encoding 800-1000 gene-products. A two-dimensional electrophoresis gel reference map of S. melliferum was produced by Phoretix 2-D gel software analysis of eight high quality gels. The reference map showed 456 silver-stained and replicated protein spots. 156 proteins (34% of visible protein spots) from S. melliferum were further characterised by one, or a combination, of the following: amino acid analysis, peptide-mass fingerprinting via matrix assisted laser desorption ionisation-time of flight (MALDI-TOF) mass spectrometry, and N-terminal protein microsequencing. Proteins with close relationship to those previously determined from other species were identified across species barriers. Thus, this study represents the first larger-scale analysis of a proteome based upon the attribution of predominantly 'unique numerical parameters' for protein characterisation across species boundaries, as opposed to a sequence-based approach. This approach allowed all database entries to be screened for homology, as is currently the case for studies based on nucleic acid or protein sequence information. Several proteins studied from this organism were identified as hypothetical, or having no close homolog already present in the databases. Gene-products from major families such as glycolysis, translation, transcription, cellular processes, energy metabolism and protein synthesis were identified. Several gene-products characterised in S. melliferum were not previously found in studies of the entire Mycoplasma genitalium and Mycoplasma pneumoniae (both closely related Mollicutes) genomes. The presence of such gene-products in S. melliferum is discussed in terms of genome size as compared with the smallest known free-living organisms. Finally, the levels of expression of S. melliferum gene-products were determined with respect to total optical intensity associated with all visible proteins expressed in exponentially grown cells.
Insights
This study presents the first large-scale proteome analysis of Spiroplasma melliferum using a novel numerical parameter approach for protein characterization. It identified key proteins and unique gene products, offering insights into bacterial genome evolution and expression.
Area of Science:
- Microbiology
- Proteomics
- Genomics
Background:
- Spiroplasma melliferum is a wall-less, helical bacterium belonging to the Mollicutes class.
- Understanding its proteome is crucial for comparative genomics and understanding minimal genome organisms.
Purpose of the Study:
- To perform a large-scale proteomic analysis of Spiroplasma melliferum.
- To characterize proteins using a novel numerical parameter approach for cross-species homology screening.
- To identify unique gene products and compare expression levels with related Mollicutes.
Main Methods:
- Two-dimensional gel electrophoresis and Phoretix 2-D gel software were used to create a reference map.
- Protein identification involved amino acid analysis, MALDI-TOF mass spectrometry, and N-terminal protein microsequencing.
- Quantitative analysis of protein expression was based on total optical intensity.
Main Results:
- A reference map of 456 protein spots was generated, with 156 proteins further characterized.
- Proteins homologous to known species were identified, alongside several hypothetical proteins.
- Unique gene products not found in Mycoplasma genitalium or Mycoplasma pneumoniae were identified in S. melliferum.
Conclusions:
- The numerical parameter approach enables effective cross-species proteome analysis and homology screening.
- S. melliferum possesses unique gene products, contributing to our understanding of genome size and evolution.
- Differential gene product expression in S. melliferum provides insights into its cellular functions and adaptation.
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