PubMed Health⌕ Search

PubMed · 16209646

Tissue proteomics using capillary isoelectric focusing-based multidimensional separations.

Abstract

The capabilities of capillary isoelectric focusing-based multidimensional separations for performing proteome analysis from minute samples create new opportunities in the pursuit of biomarker discovery using enriched and selected cell populations procured from tissue specimens. In this article, recent advances in online integration of capillary isoelectric focusing with nano-reversed phase liquid chromatography for achieving high-resolution peptide and protein separations prior to mass spectrometry analysis are reviewed, along with its potential application to tissue proteomics. These proteome technological advances combined with recently developed tissue microdissection techniques, provide powerful tools for those seeking to gain a greater understanding at the global level of the cellular machinery associated with human diseases such as cancer.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Yueju Wang, Brian M Balgley, Cheng S Lee. 2005. Tissue proteomics using capillary isoelectric focusing-based multidimensional separations.. https://doi.org/10.1586/14789450.2.5.659

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

A novel relationship between time offsets in capillary electrophoresis and DNA sequence variations in short tandem repeats.

Next-generation sequencing (NGS) provides increased discriminatory power in forensic DNA analysis due to the detection of isoalleles. Differences in sequences between alleles allow for a second layer of differentiation between DNA contributors beyond the number of short tandem repeat (STR) repeat units. However, because NGS is a more time and resource-intensive analysis than conventional capillary electrophoresis (CE), laboratories may benefit from indicators that suggest NGS is likely to provide added value. This study examined whether CE migration offsets, measured as residuals in the OSIRIS analysis software, can differ significantly among STR isoalleles. Residuals represent the time offset between a sample allele peak and its corresponding allelic ladder peak. Paired CE and NGS data from 95 single source samples were analyzed for CE-based residual differences, as the NGS data provided the sequence information of the corresponding isoalleles. Residual values differed significantly among isoalleles at several STR loci. Statistically significant differences were identified at D16S539 and D3S1358, as well as at specific allele lengths within D12S391, D13S317, and D8S1179. These findings demonstrate that CE residual variation can reflect underlying STR sequence differences between contributors. In practice, residual-based metrics could help laboratories to identify casework reference samples where NGS is likely to provide additional discrimination, without the need for processing outside of a routine CE workflow. Due to the potentially large number of isoalleles, community wide efforts to aggregate CE residual differences versus isoallele sequences may be useful in the validation and implementation of this approach to add value to forensic DNA analyses.

Electrophoresis, Capillary↗

Development of a multiplexed interface for capillary electrophoresis-electrospray ion trap mass spectrometry.

A four-channel multiplexed electrospray capillary electrophoresis interface has been developed. This new interface permits up to four capillary electrophoresis columns to be sampled sequentially by means of a stepper motor and a notched rotating plate assembly, which at any instant occludes all but a single sprayer. In this design, four sheath liquid electrospray probes are oriented in a circular array situated 90 degrees relative to one another. The rotating metal disk, which contains a one-quarter notch, is mounted to the stepper motor assembly and is located between the sprayers and the entrance aperture of an ion trap mass spectrometer. By using the data acquisition signal from the ion trap mass spectrometer, the scan event is synchronized with the rotation of the metal disk. With this device, four discrete sample streams can be simultaneously analyzed, resulting in a 4-fold increase in analytical throughput.

Electrophoresis, Capillary↗

Multichannel PCR-CE microdevice for genetic analysis.

We have developed a fully integrated multichannel polymerase chain reaction-capillary electrophoresis (PCR-CE) microdevice with nanoliter reactor volumes for highly parallel genetic analyses. Resistance temperature detectors and heaters made out of Ti/Pt are integrated on the microchip using a scalable radial design to provide precise temperature control of the four parallel PCR-CE reactor systems. Heating rates of >15 degrees C s(-1) and cooling rates of >10 degrees C s(-1) allow cycle times of 50 s and 30 complete PCR cycles in <27 min. PDMS membrane valves control and localize PCR reagents in the 380-nL reactors. By directly integrating PCR reactors with the CE separation system, efficient coupling of amplification with separation is achieved. The microdevice demonstrates good amplification uniformity and sensitivity down to 10 initial template copies in the 380-nL reactor (approximately 43 aM) with signal-to-noise ratio greater than 10. Parallel PCR-CE multiplex amplification and genetic analyses of four different samples with (1) both M13mp18 control template and E. coli K12 cells, (2) only M13mp18 template, (3) only E. coli K12 cells, and (4) negative control are completed in less than 30 min in a single run.

Electrophoresis, Capillary↗