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dc.contributor.advisorVigh, Gyula
dc.creatorNorth, Robert Yates
dc.date.accessioned2011-08-08T22:47:19Z
dc.date.accessioned2011-08-09T01:30:00Z
dc.date.available2011-08-08T22:47:19Z
dc.date.available2011-08-09T01:30:00Z
dc.date.created2009-05
dc.date.issued2011-08-08
dc.date.submittedMay 2009
dc.identifier.urihttps://hdl.handle.net/1969.1/ETD-TAMU-2009-05-424
dc.description.abstractIsoelectric trapping (IET) has become an accepted preparative-scale electrophoretic separation technique. However, there are still a number of shortcomings that limit its utility. The performance of the current preparative-scale IET systems is limited by the serial arrangement of the separation compartments, the difficulties in the selection of the appropriate buffering membranes, the effect of Joule heating that may alter separation selectivity and a lack of methods for the determination of the true, operational pH value inside the buffering membranes. In order to bolster the current membrane pH determination methods which rely on the separation of complex ampholytic mixtures, a fluorescent carrier ampholyte mixture was synthesized. The use of a fluorescent mixture allows for a reduced load of carrier ampholytes, thereby reducing a possible source of error in the pH determinations. A mixture of carrier ampholytes tagged with an alkoxypyrenetrisulfonate fluorophore was shown to have suitable fluorescence and ampholytic properties and used to accurately determine the pH of high pH buffering membranes under actual IET conditions. In a more elegant solution to the difficulties associated with pH determinations, a method utilizing commercial UV-transparent carrier ampholytes as the ampholyte mixture to be separated was developed. By using commercial carrier ampholytes and eliminating the need to synthesize, purify, and blend fluorescently tagged ampholytes, the new method greatly simplified the determination of the operational pH value of the buffering membranes. In order to address the remaining limitations, a new system has been developed that relies on (i) parallel arrangement of the electrodes and the collection compartments, (ii) a directionally-controlled convection system for the delivery of analytes, (iii) short anode-to-cathode distances, (iv) short intermembrane distances, and (v) an external cooling system. This system has been tested in four operational modes and used for the separation of small molecule ampholytic mixtures, for the separation of protein isoforms, and direct purification of a target pI marker from a crude reaction mixture.en
dc.format.mimetypeapplication/pdf
dc.language.isoen_US
dc.subjectPreparative electrophoresisen
dc.subjectBuffering membraneen
dc.subjectDesaltingen
dc.subjectIsoelectric trappingen
dc.subjectTrapping by recursive electrophoresis in a compartmentalized systemen
dc.subjectMulti-compartmental electrolyzeren
dc.subjectcarrier ampholyteen
dc.subjectpH determinationen
dc.subjectprotein separationen
dc.subjectisoelectric focusingen
dc.subjectfluorescent carrier ampholyteen
dc.titleMATERIALS, METHODS, AND INSTRUMENTATION FOR PREPARATIVE-SCALE ISOELECTRIC TRAPPING SEPARATIONSen
dc.typeThesisen
thesis.degree.departmentChemistryen
thesis.degree.disciplineChemistryen
thesis.degree.grantorTexas A&M Universityen
thesis.degree.nameDoctor of Philosophyen
thesis.degree.levelDoctoralen
dc.contributor.committeeMemberRussell, David H.
dc.contributor.committeeMemberSoriaga, Manuel P.
dc.contributor.committeeMemberUgaz, Victor M.
dc.type.genrethesisen
dc.type.materialtexten


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