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1.
J Biomol Screen ; 11(6): 704-11, 2006 Sep.
Article in English | MEDLINE | ID: mdl-16844965

ABSTRACT

Several protocols for bacterial isolation and techniques for aerobic plate counting rely on the use of a spiral plater to deposit concentration gradients of microbial suspensions onto a circular agar plate to isolate colony growth. The advantage of applying a gradient of concentrations across the agar surface is that the original microbiological sample can be applied at a single concentration rather than as multiple serial dilutions. The spiral plater gradually dilutes the sample across a compact area and therefore saves time preparing dilutions and multiple agar plates. Commercial spiral platers are not automated and require manual sample loading. Dispensing of the sample volume and rate of gradients are often very limited in range. Furthermore, the spiral sample application cannot be used with rectangular microplates. Another limitation of commercial spiral platers is that they are useful only for dilute, filtered suspensions and cannot plate suspensions of coarse organic particles therefore precluding the use of many kinds of microorganism-containing substrata. An automated agar plate spreader capable of processing 99 rectangular microplates in unattended mode is described. This novel instrument is capable of dispensing discrete volumes of sample in a linear pattern. It can be programmed to dispense a sample suspense at a uniform application rate or across a decreasing concentration gradient.


Subject(s)
Microbiological Techniques/instrumentation , Specimen Handling/instrumentation , Agar , Automation , Culture Media , Reference Standards
2.
Assay Drug Dev Technol ; 4(1): 21-35, 2006 Feb.
Article in English | MEDLINE | ID: mdl-16506886

ABSTRACT

The Trans Cell Layer Electrical Field Stimulation (TCL-EFS) system has been developed for high-throughput screening (HTS) of voltage-gated ion channels in microplate format on a Voltage-Ion Probe Reader (VIPR) platform. In this design, a wire electrode is placed above the cell layer of each filter well, and a whole plate perimeter electrode resides beneath the filter layer. This configuration allows the electrodes to be placed away from the cell layer to minimize the near electrode field effects on cell function and dye bleaching observed with other existing designs. Mathematical simulation indicates that the electric field at the cell layer becomes uniform as the top electrode is raised to a position near the surface of the solution in the well. Using the TCL-EFS system and membrane potential fluorescence resonance energy transfer (FRET) dyes, the sensitivity of voltage-gated sodium channels to tetrodotoxin and other channel inhibitors was found to be similar to those determined by established electrophysiological and more conventional VIPR techniques. A good correlation was also observed with the TCL-EFS system for inhibition of Cav2.2 by omega-conotoxin-GVIA and for block of Cav1.2 by known small molecule inhibitors. Thus, the TCLEFS system is suitable for both quantitative analysis and HTS of voltage-gated sodium and calcium channels, without the liabilities of previously reported EFS methodologies.


Subject(s)
Ion Channel Gating/physiology , Membrane Potentials/physiology , Muscle Proteins/physiology , Sodium Channels/physiology , Calcium Channel Blockers/pharmacology , Cell Line , Computer Simulation , Electric Stimulation , Electrophysiology/instrumentation , Electrophysiology/methods , Humans , Kinetics , Muscle Proteins/drug effects , NAV1.5 Voltage-Gated Sodium Channel , Sodium Channels/drug effects , Tetrodotoxin/pharmacology , omega-Conotoxin GVIA/pharmacology
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