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M Devey

Publications and source records attributed to M Devey.

7 recordsLinked to original sources

Identification of quantitative trait loci influencing wood specific gravity in an outbred pedigree of loblolly pine.

We report the identification of quantitative trait loci (QTL) influencing wood specific gravity (WSG) in an outbred pedigree of loblolly pine (Pinus taeda L.). QTL mapping in an outcrossing species is complicated by the presence of multiple alleles (> 2) at QTL and marker loci. Multiple alleles at QTL allow the examination of interaction among alleles at QTL (deviation from additive gene action). Restriction fragment length polymorphism (RFLP) marker genotypes and wood specific gravity phenotypes were determined for 177 progeny. Two RFLP linkage maps were constructed, representing maternal and paternal parent gamete segregations as inferred from diploid progeny RFLP genotypes. RFLP loci segregating for multiple alleles were vital for aligning the two maps. Each RFLP locus was assayed for cosegregation with WSG QTL using analysis of variance (ANOVA). Five regions of the genome contained one or more RFLP loci showing differences in mean WSG at or below the P = 0.05 level for progeny as grouped by RFLP genotype. One region contained a marker locus (S6a) whose QTL-associated effects were highly significant (P > 0.0002). Marker S6a segregated for multiple alleles, a prerequisite for determining the number of alleles segregating at the linked QTL and analyzing the interactions among QTL alleles. The QTL associated with marker S6a appeared to be segregating for multiple alleles which interacted with each other and with environments. No evidence for digenic epistasis was found among the five QTL.

Alleles↗

Transformation of Zea mays L. Using Agrobacterium tumefaciens and the Shoot Apex.

Agrobacterium tumefaciens is established as a vector for gene transfer in many dicotyledonous plants but is not accepted as a vector in monocotyledonous plants, especially in the important Gramineae. The use of Agrobacterium to transfer genes into monocot species could simplify the transformation and improvement of important crop plants. In this report we describe the use of Agrobacterium to transfer a gene into corn, the regeneration of plants, and detection of the transferred genes in the F(1) progeny. Shoot apices of Zea mays L. variety Funk's G90 were cocultivated with A. tumefaciens EHA 1, which harbored the plasmid pGUS3 containing genes for kanamycin resistance (NPT II) and beta-glucuronidase (GUS). Plants developed from these explants within 4 to 6 weeks. Fluorometric GUS assays of leaves and immature seeds from the plants exhibited low GUS activity. Both NOS and GUS gene fragments were amplified by polymerase chain reaction in the DNA isolated from the F(1) generations of one of the original transformed plants. Southern analysis showed both GUS and NPT probes hybridized to DNA in several of the F(1) progeny, demonstrating the incorporation of GUS and NPT II genes into high molecular weight DNA. These data establish successful gene transfer and sexual inheritance of the genes.

Journal Article↗

Human thyroglobulin autoantibodies of subclasses IgG2 and IgG4 bind to different epitopes on thyroglobulin.

IgG autoantibodies to thyroglobulin (Tg) in the serum of patients with autoimmune thyroid disease only recognize a very limited number of epitopes, probably between four and six (Nye, Pontes De Carvalho & Roitt, 1980) on the large Tg molecule (660,000 MW), but attempts to characterize the epitopes have been unsuccessful so far (Male et al., 1985). The distribution of Tg autoantibodies between the IgG subclasses also tends to be restricted and individual patients possess characteristic 'fingerprints' of high affinity IgG1 and/or IgG4 Tg antibodies with smaller amounts of IgG2 Tg antibody (McLachlan et al., 1987, 1988). We have therefore investigated the possibility that Tg autoantibodies of different IgG subclasses interact with different epitopes on Tg.

Autoantibodies↗

The effect of protein deficiency on the development of chronic antigen-antibody complex disease in mice.

Mice genetically selected to produce antibodies of either high or low affinity to protein antigens injected in saline were fed either a normal protein diet or a protein-deficient diet and were given daily injections of HSA for up to 73 days to induce chronic antigen-antibody complex disease. In low-affinity mice fed the normal protein diet, this resulted in impairment of renal function, deposition of immunoglobulin, C3 and HSA in the glomeruli, high levels of circulating antigen-antibody complexes and death from apparent renal failure in 50% of the animals. High-affinity mice on either diet had no impairment of renal function, fewer deposits in the glomeruli, lower levels of circulating complexes and no deaths. Low-affinity mice fed the protein-deficient diet had less impairment of renal function and less glomerular deposition of complexes than did low-affinity mice fed the normal diet. In addition, none of these mice died from renal failure. These results demonstrate that the protein-deficient diet reduced the severity of the experimental chronic antigen-antibody complex disease in low affinity mice but did not increase the susceptibility of high-affinity mice to the disease.

Animals↗