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T D Maloney

Publications and source records attributed to T D Maloney.

4 recordsLinked to original sources

Effects of fluorescent probe structure on the dynamics at cysteine-34 within bovine serum albumin: evidence for probe-dependent modulation of the cybotactic region.

We have prepared a series of bovine serum albumins (BSA) that have been site-selectively labeled at cysteine-34 with one of four different sulfhydryl-selective boron dipyrromethene difluoride (BODIPY) fluorescent probes (BODIPY FL IA, BODIPY FL C(1) IA, BODIPY 530/550 IA, and BODIPY 493/503 MB). We determine how the choice of extrinsic probe structure dictates the recovered BSA-BODIPY dynamics under thermal (10-80 degrees C) and chemical (0-5M guanidine hydrochloride) denaturation conditions. The results of these experiments show that the global protein dynamics are sensed equally by each fluorescent probe; however, the probe itself influences the local probe dynamics within the cybotactic region that surrounds cysteine-34. Thus, it seems inappropriate to think of these extrinsic fluorescent probes as passive, nonparticipatory viewers of local protein dynamics.

Animals↗

Packing columns for capillary electrochromatography.

Considering the current interest in capillary electrochromatography (CEC), performed in packed columns, we present the different methods used to pack capillary columns for use in CEC. General considerations on column packing are given and the column fabrication process is discussed in sufficient detail to allow instruction to those who are not experienced in the field. Five different packing methods are discussed to deliver packing material into the capillary column from a practical view point: slurry pressure packing, packing with supercritical CO2, electrokinetic packing, using centripetal forces, and packing by gravity. Entrapment of particulate material by sintering and sol-gel technology is also mentioned. Although slurry pressure packing procedures are most common, higher separation efficiencies are obtained using other packing approaches. Electrokinetic packing seems to be the simplest technique to deliver the packing material into the capillary columns. Nevertheless, as with the other packing techniques, skill and experience are required to complete all the steps involved in the fabrication of packed columns for CEC.

Carbon Dioxide↗

Recent progress in capillary electrochromatography.

Capillary electrochromatography (CEC) continues to captivate many separation scientists. A remarkable activity is apparent from the numerous publications in the literature using CEC. A review of the most recent progress in CEC is presented herein, covering an extensive fraction of the literature on CEC published from the year 1997 until the beginning of 2000. Most of the recent developments have concentrated on column technology.

Chromatography, High Pressure Liquid↗

A drying step in the protocol to pack capillary columns by centripetal forces for capillary electrochromatography.

Capillary columns have been packed for capillary electrochromatography (CEC) using centripetal forces. The packed columns were maintained under wet conditions or they were dried with nitrogen gas prior to forming the retaining frits. Upon fabrication of the retaining frits, the dried columns were resolvated with the mobile phase. The performance of the columns was evaluated to determine the effect of the drying step during the packing procedure. The columns submitted to the drying step showed improved separation efficiencies and stronger retention characteristics than those kept under wet conditions. The drying step allows the silica-based packing material to be better accommodated inside the capillary column. Upon solvation, the packing material "swells," resulting in a greater packing density, which allows for a stronger retention and improved separation efficiencies. The drying step led to a 13% increase in retention on columns packed with isopropanol. An increase of 15-20% in theoretical plates for the most retained compounds was also observed in such columns.

2-Propanol↗