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Biomedical subjects

David Gore

Publications and source records attributed to David Gore.

5 recordsLinked to original sources

Radial density distribution and symmetry of a Potexvirus, narcissus mosaic virus.

Narcissus mosaic virus is a Potexvirus, a member of the Flexiviridae family of filamentous plant viruses. Fiber diffraction patterns from oriented sols of narcissus mosaic virus have been used to determine the symmetry and structural parameters of the viral helix. The virions have a radius of 55+/-5 A. The viral helix has a pitch of 34.45+/-0.5 A, with 7.8 subunits per turn of the helix. We conclude that all members of the Potexvirus genus have close to 8 subunits per helical turn.

Narcissus↗

The myosin filament superlattice in the flight muscles of flies: A-band lattice optimisation for stretch-activation?

Low-angle X-ray diffraction patterns from relaxed fruitfly (Drosophila) flight muscle recorded on the BioCat beamline at the Argonne Advanced Photon Source (APS) show many features similar to such patterns from the "classic" insect flight muscle in Lethocerus, the giant water bug, but there is a characteristically different pattern of sampling of the myosin filament layer-lines, which indicates the presence of a superlattice of myosin filaments in the Drosophila A-band. We show from analysis of the structure factor for this lattice that the sampling pattern is exactly as expected if adjacent four-stranded myosin filaments, of repeat 116 nm, are axially shifted in the hexagonal A-band lattice by one-third of the 14.5 nm axial spacing between crowns of myosin heads. In addition, electron micrographs of Drosophila and other flies (e.g. the house fly (Musca) and the flesh fly (Sarcophaga)) combined with image processing confirm that the same A-band superlattice occurs in all of these flies; it may be a general property of the Diptera. The different A-band organisation in flies compared with Lethocerus, which operates at a much lower wing beat frequency (approximately 30 Hz) and requires a warm-up period, may be a way of optimising the myosin and actin filament geometry needed both for stretch activation at the higher wing beat frequencies (50 Hz to 1000 Hz) of flies and their need for a rapid escape response.

Actin Cytoskeleton↗

Molecular dynamics of cyclically contracting insect flight muscle in vivo.

Flight in insects--which constitute the largest group of species in the animal kingdom--is powered by specialized muscles located within the thorax. In most insects each contraction is triggered not by a motor neuron spike but by mechanical stretch imposed by antagonistic muscles. Whereas 'stretch activation' and its reciprocal phenomenon 'shortening deactivation' are observed to varying extents in all striated muscles, both are particularly prominent in the indirect flight muscles of insects. Here we show changes in thick-filament structure and actin-myosin interactions in living, flying Drosophila with the use of synchrotron small-angle X-ray diffraction. To elicit stable flight behaviour and permit the capture of images at specific phases within the 5-ms wingbeat cycle, we tethered flies within a visual flight simulator. We recorded images of 340 micros duration every 625 micros to create an eight-frame diffraction movie, with each frame reflecting the instantaneous structure of the contractile apparatus. These time-resolved measurements of molecular-level structure provide new insight into the unique ability of insect flight muscle to generate elevated power at high frequency.

Animals↗

Glass ionomer cements: a review of composition, chemistry, and biocompatibility as a dental and medical implant material.

Glass ionomer cements are a group of materials based on the acid/base reaction between poly(alkenoic) acid and an ion-leachable silicate glass. The material was developed in dentistry as a tooth restorative material that released fluoride ions over an extended time, bonded to tooth structure, and was very biocompatible. Its use in dentistry was initially limited by its slow setting time and lack of strength; however, modern formulations of the material have yielded materials with properties that are clinically useful in dentistry. Its biocompatibility, osteoconductive behavior, and ability to bond to bone and metals have generated interest in the material for medical applications. Glass ionomer cements in medicine have been used as bone cements, implants to replace ossicular bones of the inner ear, as well as other craniofacial implants. The early release of fluoride and aluminum ions and release of polyacids have been implicated in tissue biocompatibility in medical use. Additional material development is necessary to optimize its properties for use in medicine. This article reviews the literature written on the composition, chemistry, fluoride release, biocompatibility, and medical uses of glass ionomer cements.

Biocompatible Materials↗

Vitallium.

Vitallium is a base metal alloy that has been used in dentistry and medicine since 1929. This article will focus on the historical perspectives of Vitallium and include the dental and medical applications used today. The physical and chemical properties of Vitallium will be discussed, with particular emphasis on the biocompatibility of the metal. Finally, the future uses of Vitallium will be examined, as will the potential dangers in fabricating prostheses using this base metal alloy.

Biocompatible Materials↗