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J A Westbrook

Publications and source records attributed to J A Westbrook.

3 recordsLinked to original sources

Zooming-in on the proteome: very narrow-range immobilised pH gradients reveal more protein species and isoforms.

Two-dimensional gel electrophoresis (2-DE) enables separation of complex mixtures of proteins on a single polyacrylamide gel according to isoelectric point, molecular weight, solubility, and relative abundance. For this reason, 2-DE together with mass spectrometry (MS) has become a key technology in proteome analysis. The introduction of immobilised pH gradients (IPGs) for isoelectric focusing of proteins affords improved reproducibility and permits full-scale proteome analyses to be undertaken. Whilst broad-range IPGs are useful for investigating simple proteomes (e.g. Mycoplasma genitalium) it is becoming clear that additional resolving power is needed for separating the more complex proteomes of eukaryotic organisms. The use of narrow-range and very narrow-range IPGs provides the means with which to dissect a complex proteome. We have compared very narrow-range IPGs (3.5-4.5L, 4-5L, 4.5-5.5L, 5-6L, and 5.5-6.7L) with broad- (3-10NL) and narrow-range IPGs (4-7L and 6-9L) for the visualisation of the human heart proteome. The superior ability of very narrow-range IPGs to separate different protein species and isoforms, compared with 3-10NL and 4-7L 2-D gels is demonstrated. The results are supported by MS identifications which further show that reduction of the number of comigrating protein species results in less ambiguous and more reliable database search results.

Adipose Tissue↗

A combined radiolabelling and silver staining technique for improved visualisation, localisation, and identification of proteins separated by two-dimensional gel electrophoresis.

Two-dimensional gel electrophoresis (2-DE) remains the method of choice for the Separation of protein mixtures whilst mass spectrometry (MS) is rapidly becoming the premier tool for protein identification. When combined, 2-DE and MS form the current operating paradigm for classical proteomics. One of the key challenges of proteome research is that of detecting and identifying all of the elements (proteins) of a proteome. Silver staining and radiolabelling, e.g. with 35S-methionine ([35S]-met), represent two sensitive methods used to visualise many of the constitutive and synthesised elements of a proteome, respectively. The latter method allows a very low total protein loading on a two-dimensional (2-D) gel and challenges protein identification using current MS-based technology. Therefore, it is necessary to refer to and locate a radiolabelled spot's cognate on a preparatively loaded stained gel, or Western blot, and use that protein spot for identification. Unfortunately, the images of autoradiographs and preparative gels or blots, even of the same sample, often do not correspond making it difficult to accurately locate and select spots of interest by visual comparison. We have established a technique that permits the unambiguous localisation of radiolabelled proteins on the same silver stained 2-D gel. Protein identification of superimposed spots is described by peptide mass fingerprinting and database searching using matrix-assisted laser desorption/ionization-time of flight mass spectrometry and by peptide sequencing using tandem MS by hybrid quadrupole/orthogonal acceleration time of flight MS (Q-TOF).

Amino Acid Sequence↗

A modified silver staining protocol for visualization of proteins compatible with matrix-assisted laser desorption/ionization and electrospray ionization-mass spectrometry.

The growing availability of genomic sequence information, together with improvements in analytical methodology, have enabled high throughput, high sensitivity protein identification. Silver staining remains the most sensitive method for visualization of proteins separated by two-dimensional gel electrophoresis (2-D PAGE). Several silver staining protocols have been developed which offer improved compatibility with subsequent mass spectrometric analysis. We describe a modified silver staining method that is available as a commercial kit (Silver Stain PlusOne; Amersham Pharmacia Biotech, Amersham, UK). The 2-D patterns abtained with this modified protocol are comparable to those from other silver staining methods. Omitting the sensitizing reagent allows higher loading without saturation, which facilitates protein identification and quantitation. We show that tryptic digests of proteins visualized by the modified stain afford excellent mass spectra by both matrix-assisted laser desorption/ionization and tandem electrospray ionization. We conclude that the modified silver staining protocol is highly compatible with subsequent mass spectrometric analysis.

Animals↗