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L Riggs

Publications and source records attributed to L Riggs.

At least 19 recordsLinked to original sources

Automated signature peptide approach for proteomics.

This paper addresses the issue of automating the multidimensional chromatographic, signature peptide approach to proteomics. Peptides were automatically reduced and alkylated in the autosampler of the instrument. Trypsin digestion of all proteins in the sample was then executed on an immobilized enzyme column and the digest directly transferred to an affinity chromatography column. Although a wide variety of affinity columns may be used, the specific column used in this case was a Ga(III) loaded immobilized metal affinity chromatography (IMAC) column. Ga(III)-IMAC is known to select phosphorylated peptides. Phosphorylated peptides selected by the affinity column from tryptic digests of milk were automatically transferred to a reversed-phase liquid chromatography (RPLC) column. Further fractionation of tryptic peptides on the RPLC column was achieved with linear solvent gradient elution. Effluent from the RPLC column was electrosprayed into a time-of-flight mass spectrometer. The entire process was controlled by software in the liquid chromatograph. With slight modification, it is possible to add multiple columns in parallel at any of the single column positions to further increase throughput. Total analysis time in the tandem column mode of operation was under 2 h.

Automation↗

The impact of buffers and surfactants from micellar electrokinetic chromatography on matrix-assisted laser desorption ionization (MALDI) mass spectrometry of peptides. Effect of buffer type and concentration on mass determination by MALDI-time-of-flight mass spectrometry.

This paper describes the effect of various buffers, surfactants, and organic additives commonly encountered in capillary zone electrophoresis and micellar electrokinetic chromatography on the molecular weight determination of peptides by matrix-assisted laser desorption/ionization (MALDI) time-of-flight mass spectrometry. Signal-to-noise ratio generally decreased with increasing buffer concentration without affecting mass accuracy, but the type of buffer was also important. Good spectra were obtained with an ammonium acetate buffer up to a concentration of 500 mM without impacting ionization of either peptides or other mobile phase constituents. Ionization of organic additives, such as anionic surfactants, non-ionic surfactants, and cyclodextrins was buffer dependent and presented a problem when the mass of the additive was in the range of the peptide mass. Brij-35, Tween-80, and cyclodextrins all produced prominent spectra of their own in the presence of sodium or potassium containing buffers, but not with ammonium acetate. Cationization of these neutral species with sodium or potassium ions allowed them to acquire a positive charge and produce spectra. In contrast, the ammonium ion appears to be a poor cationizating agent. Ionization of neutral surfactants was suppressed in ammonium acetate without impacting the spectra of peptides. Ammonium acetate buffers containing 30 mM sodium dodecyl phosphate also gave spectra with good signal intensity and no interference from the surfactant. Suppression of peptide ionization in MALDI was a problem when methanol, tetrabutyl amine, or poly(vinyl alcohol) were used with either ammonium acetate, sodium phosphate, and N-(2-hydroxyethyl)piperazine-N-(2-ethansulfonic acid).

Buffers↗

Medical-legal problems in the emergency department related to hand injuries.

One of the areas that has become important to emergency medicine is that of risk management, which uses retrospective evaluation of improper medical encounters in an attempt to prevent future similar occurrences. Risk management involves the identification of the risk, the control of the risk, and the prevention of the risk.

Consultants↗

How to improve your image with physicians. Differentiating your laboratory for a competitive advantage.

A collaborative partnership between physicians and the laboratory is more important than ever. This requires addressing the five major complaints that physicians have regarding the laboratory within the context of six key characteristics of doctors. The complaints concern: timeliness of information, completeness, accessibility, providing information in a suitable form, and making it understandable to time-pressed physicians. Working effectively with physicians to achieve an immaculate image means understanding why they tend toward control, have difficulty with conceptual presentations, and are quick to stereotype. It also means understanding how to capitalize on their tendency to respect expertise and reward it with loyalty. Establishing a favorable image requires creating a perception of cooperative proactivity based on sensitive performance.

Attitude of Health Personnel↗