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T Gough

Publications and source records attributed to T Gough.

4 recordsLinked to original sources

Neutron-mapping polymer flow: scattering, flow visualization, and molecular theory.

Flows of complex fluids need to be understood at both macroscopic and molecular scales, because it is the macroscopic response that controls the fluid behavior, but the molecular scale that ultimately gives rise to rheological and solid-state properties. Here the flow field of an entangled polymer melt through an extended contraction, typical of many polymer processes, is imaged optically and by small-angle neutron scattering. The dual-probe technique samples both the macroscopic stress field in the flow and the microscopic configuration of the polymer molecules at selected points. The results are compared with a recent "tube model" molecular theory of entangled melt flow that is able to calculate both the stress and the single-chain structure factor from first principles. The combined action of the three fundamental entangled processes of reptation, contour length fluctuation, and convective constraint release is essential to account quantitatively for the rich rheological behavior. The multiscale approach unearths a new feature: Orientation at the length scale of the entire chain decays considerably more slowly than at the smaller entanglement length.

Journal Article↗

Molecular analysis of dihydropteridine reductase deficiency: identification of two novel mutations in Japanese patients.

Mutations in the dihydropteridine reductase (DHPR) gene result in hyperphenylalaninaemia and deficiency of various neurotransmitters in the central nervous system, causing severe neurological symptoms. We studied two Japanese patients with DHPR deficiency and identified a missense and a splicing error mutation, respectively. A homozygous missense mutation (tryptophan36-to-arginine) was detected in patient 1. The mutation abolished DHPR activity according to in vitro expression studies. The DHPR mRNA in patient 2 was markedly decreased. Reverse transcription-polymerase chain reaction of the mRNA generated a cDNA fragment with a 152-bp insertion. The inserted sequence contained a termination codon, which was likely to affect the stability of the mRNA. Analysis of genomic DNA showed that the insertion was derived from putative intron 3 of the DHPR gene, and an intronic A-to-G substitution was present adjacent to the 3'-end of the inserted sequence. The nucleotide change generated a sequence similar to an RNA splice donor site and probably activated an upstream cryptic acceptor site, thus producing an abnormal extra exon.

Amino Acid Metabolism, Inborn Errors↗