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Biomedical subjects

C Domoney

Publications and source records attributed to C Domoney.

17 recordsLinked to original sources

Biological significance of polymorphism in legume protease inhibitors from the Bowman-Birk family.

Naturally occurring protease inhibitors (PI) of the Bowman-Birk type constitute a major PI family in cereal and legume seeds. The family name is derived from the names of the two investigators who characterised the first inhibitor of this type, the Bowman-Birk inhibitor from soybean (BBI). These proteins have the capacity to inhibit one or more of a range of serine proteases, including the digestive enzymes trypsin and chymotrypsin. PI from this family interact with the active sites of serine proteases in a 'canonical', i.e. substrate-like, manner via exposed reactive site loops of conserved conformation within the inhibitor. Multiple BBI variants can be found within and among species. A limited number of amino acids located within the inhibitory domain is responsible for the primary functional and biological activities of BBI-like proteins. However, sequence variation in binding loops, post-translational modifications at the amino- and carboxy-terminal ends, as well as differences in the multimeric nature of the inhibitors may act in combination to influence the functional properties and the physiological role of BBI-like proteins. Recently, BBI and proteins homologous to BBI (BBI-like proteins) have emerged as highly promising cancer chemopreventive agents. BBI has been shown to be capable of preventing or suppressing carcinogenic processes in a wide variety of in vitro and in vivo animal model systems. The potential exploitation of BBI-like proteins in human health-promotion programmes will depend on elucidating in detail the molecular basis for the variation in biological activities among the many variant forms. New knowledge, derived both from the use of synthetic cyclic peptides that mimic the inhibitory loops of BBI-like proteins, and from genomic data pertaining to the structure of BBI gene classes, together facilitate the manipulation, screening and selection of appropriate variants through biotechnology.

Amino Acid Sequence↗

Continuation of hormone replacement therapy after hysterectomy.

OBJECTIVES: To assess long-term hormone replacement therapy (HRT) usage in women after hysterectomy and to assess the relationship between age and long-term use of HRT in these women. Problems and comments of those women responding to a questionnaire were evaluated. MATERIAL AND METHODS: A postal semistructured questionnaire survey was performed in a single gynecological practice. A total of 545 consecutive women who had undergone a hysterectomy for benign conditions between January 1986 and September 1997 were studied, the main outcome measure being continuing use of HRT. RESULTS: There was a response rate of 83.1% to the questionnaire; 83% of all responders were taking HRT at the time of the survey. A continuation rate of 95.7% was found among women who had had a hysterectomy after 1994, and of 84.7% among those operated on in 1989 or before. Implants were used by 68%, transdermal patches by 17%, oral preparations by 11% and estradiol gel by 4%. Ten per cent of those not taking HRT at present indicated that they were likely to start again in the near future. No correlation was found between age and likelihood of HRT continuation. Fifty per cent of women responding to the questionnaire made further comments: 17.6% of these made specific positive comments regarding HRT, 16.7% reported weight gain, 9.7% suffered breast symptoms and 13.2% admitted concerns regarding breast cancer. CONCLUSIONS: A high HRT continuation rate of between 95.7% (women having had their hysterectomy less than 5 years ago) and 84.7% (women 10 or more years from their operation) can be achieved in the long term. Considering the high proportion having implant therapy, the use of testosterone as well as estradiol replacement may be a major factor in the greater adherence to HRT of this group.

Age Distribution↗

Combinatorial variation in coding and promoter sequences of genes at the Tri locus in Pisum sativum accounts for variation in trypsin inhibitor activity in seeds.

Cultivars of Pisum sativum that differ with respect to the quantitative expression of trypsin/chymotrypsin inhibitor proteins in seeds have been examined in terms of the structure of the corresponding genes. The patterns of divergence in the promoter and coding sequences are described, and the divergence among these exploited for the development of facile DNA-based assays to distinguish genotypes. Quantitative effects on gene expression may be attributed to the overall gene complement and to particular promoter/coding sequence combinations, as well as to the existence of distinct active-site variants that ultimately influence protein activity. Electronic supplementary material to this paper can be obtained by using the Springer LINK server located at http://dx.doi.org/10.1007/s00438-002-0667-4.

Genetic Markers↗

Expression of legumin and vicilin genes in pea mutants and the production of legumin in transgenic plants.

Pea seeds contain two major storage proteins, legumin and vicilin, in proportions that are genetically and environmentally determined. They are synthesized from at least 40 genes and at least 10 different genetic loci. Mutant alleles at loci involved in starch synthesis, which result in perturbations in starch accumulation, also affect the expression of legumin genes, thereby influencing the legumin: vicilin ratio within the total seed protein. Examples of such alleles include r (starch-branching enzyme) and rb (ADP-glucose pyrophosphorylase), both of which result in a reduction in legumin synthesis; double mutants (rrb) show a particularly severe reduction in the amount of legumin. The effects of such mutations are specific to legumins. The amounts of vicilin are unaffected by mutations at r or rb. One of the consequences of the production of legumin from many genes is structural heterogeneity that is believed to preclude the purification of homogeneous legumin for crystallization and 3D-structure determination. Expression of cloned legumin cDNA in E. coli can result in sequence homogeneity, but E. coli is unable to carry out the normal proteolytic processing of legumin precursors and consequently such material is different from that produced in pea seeds. This paper describes the high-level synthesis, processing and assembly of pea legumin in transgenic wheat seeds, leading to the spontaneous in vitro formation of paracrystalline arrays of legumin, which may be attributed to the fact that the legumin consists of a single type of subunit. Such material might be used as a source of single-sequence, processed and assembled pea legumin for structural investigation.

Gene Expression Regulation, Plant↗

Temporal and spatial activity of a promoter from a pea enzyme inhibitor gene and its exploitation for seed quality improvement.

The promoter from one of the two seed-expressed genes encoding trypsin/chymotrypsin inhibitors (TI) has been isolated and characterised in transgenic pea lines, following its re-introduction by Agrobacterium-mediated transformation, as a TI promoter-beta-glucuronidase (GUS) gene fusion. The promoter from this gene (TI1) directed expression of GUS enzyme at late stages of embryogenesis, comparable to those determined for activity of the homologous native TI genes. GUS expression was detected in roots of plants subjected to drought stress conditions, indicating that the TI1 gene, normally seed-specific in its expression, can be induced under these conditions. A second gene construct utilised the TI1 gene promoter to direct expression of an antisense TI gene. Seed TI activities in some lines transformed with this construct were reduced significantly. A limitation of the pea transformation methodology for antisense manipulations, in particular, is the observed frequency of non-transmission of transgenes from primary transformants (up to 80%).

Journal Article↗

Plasma leptin concentrations are increased in women with premenstrual syndrome.

Leptin is a metabolic regulator of the hypothalamic- pituitary-gonadal axis, and plays an important role in human reproduction. Its neuro-endocrine effects are mediated by interactions with receptors in the hypothalamus, where emotional drive is also controlled. We postulated that circulating leptin concentrations are increased in premenstrual syndrome (PMS), and that this may be associated with the psychological symptoms of the disease. We obtained fasting venous samples from 32 women with PMS and 28 women with asymptomatic menstrual cycles, matched for age, body mass index and menstrual cycle length. Leptin concentrations were measured by radioimmunoassay. Leptin concentrations increased significantly during the luteal phases of the menstrual cycles of the control and PMS groups as compared with the follicular phase, having excluded the 11 women with PMS and six controls found to be anovulatory on the basis of mid-luteal plasma progesterone concentrations from the analysis. A greater increase was observed in women with PMS than the controls (P: = 0.00006 and 0.003 respectively). Although leptin concentrations in the follicular and luteal phases were higher in PMS than the controls, the difference was only statistically significant between the follicular phases (P: = 0.001). There was no clear relationship between leptin and oestradiol or progesterone in this study. These findings suggest that leptin may play a role in the pathophysiology of the disease, and requires further evaluation.

Adult↗

Molecular analysis of a null mutant for pea (Pisum sativum L.) seed lipoxygenase-2.

A mutant line of Pisum fulvum was identified that lacked seed lipoxygenase-2 (LOX-2). The mutant phenotype was introgressed into a standard Pisum sativum cv. Birte to provide near-isogenic lines with or without seed LOX-2. Genetic analyses showed the mutation to behave as a single, recessive Mendelian gene. Northern and dot-blot analyses showed a large reduction in LOX-2 mRNA from developing seeds of the LOX-2-null mutant. A restriction fragment length polymorphism associated with the 5' end of the LOX-2 gene(s) co-segregated with the null phenotype, indicating that the reduction of LOX-2 mRNA was neither a consequence of deletion of the LOX genes nor a consequence of the action of a genetically distant regulatory gene. Analysis of the 5'-flanking sequences of LOX-2 genes from Birte and the near-isogenic LOX-2-null mutant revealed a number of insertions, deletions and substitutions within the promoter from the LOX-2-null mutant that could be responsible for the null phenotype. Incubation of crude seed LOX preparations from Birte and the LOX-2-null mutant showed that the latter generated relatively less 13-hydroperoxides and also produced relatively more hydroxy- and ketoacid compounds that have implications for the fresh-frozen pea industry.

Base Sequence↗

Multiple isoforms of Pisum trypsin inhibitors result from modification of two primary gene products.

Characterization of Pisum (pea) seed trypsin inhibitors (TI) and their corresponding cDNAs indicates that the pea TI gene family contains two genes. The existence of multiple TI isoforms can be attributed to post-translational modifications of primary gene products. Post-translational processing at the C-terminus during the desiccation stage of seed development results in the appearance of TI isoforms with increased affinity for the target enzyme, trypsin.

Amino Acid Sequence↗

Structure of the Pisum sativum seed lipoxygenase gene lox1:Ps:3.

We have isolated the Pisum sativum (pea) lox1:Ps:3 gene which encodes a lipoxygenase that is 84% identical in coding sequence to the LOX-3 gene from Glycine max (soybean). The 10028 bp sequence includes 5895 bp 5' to the transcription start site and 707 bp 3' to the stop codon. The coding region of lox1:Ps:3 contains eight introns, at positions equivalent to those in the soybean LOX-3 and L-4, the Phaseolus vulgaris (Frenchbean) LOX1, and the Pisum sativum lox1:Ps:2 genes. The first intron is unusually small. The 5'-flanking sequence contains two regions that have the potential to form hairpin structures, but few motifs known to interact with transcription factors. Despite their similarity in terms of expression, the lox1:Ps:3 and lox1:Ps:2 genes have little similarity within their 5'-flanking regions.

Genes, Plant↗

Linkage maps in pea.

We have analyzed segregation patterns of markers among the late generation progeny of several crosses of pea. From the patterns of association of these markers we have deduced linkage orders. Salient features of these linkages are discussed, as is the relationship between the data presented here and previously published genetic and cytogenetic data.

Chromosome Mapping↗

Opportunities for bioactive compounds in transgenic plants.

A variety of bioactive compounds have now been introduced into plants through recombinant DNA techniques. Early examples included genes encoding proteins conferring herbicide tolerance and insect or virus resistance. More recently, pharmacologically useful compounds such as enkephalin and immunoglobulin have been produced in transgenic plants. Modification of existing compounds to provide better nutritional value or improved functional properties is exemplified in the case of seed storage proteins. The value of RNAs as bioactive compounds for suppression of undesirable products and viral infection has now been demonstrated in plants. The developmentally regulated expression of novel bioactive compounds in defined tissues, and their targeting to specific subcellular locations, is becoming of ever increasing economic and sociological importance as knowledge of the molecular mechanisms involved accumulates.

Endopeptidases↗

Legumin heterogeneity in Pisum.

Analyses of heterogeneity in legumin subunit patterns, legumin precursor polypeptides, and restriction fragments containing legumin genes have shown that Pisum (pea) genotypes vary in the extent of gene and polypeptide divergence but not in the degree of gene reiteration. Genotypes containing single and multiple alpha M subunits had the same numbers of legumin genes. The potential value of this heterogeneity in genetical analyses is outlined.

Electrophoresis↗

Isolation of a cDNA clone for pea (Pisum sativum) seed lipoxygenase.

A lipoxygenase cDNA clone, pCD45, was identified in a Pisum sativum L. (pea) seed mRNA cDNA library by hybrid-release/translation followed by immunoprecipitation with antiserum raised against lipoxygenase from Glycine max L. (soya bean). pCD45 hybrid-selected an mRNA encoding the larger of the two polypeptides of Mr approximately 95 000 that were immunoprecipitated from cell-free translation products of pea seed poly(A)-containing RNA by the G. max anti-lipoxygenase. 'Northern'-blot analysis showed the mRNA that hybridized to pCD45 to be approximately 3000 nucleotides in length. Three to five copies of the lipoxygenase gene corresponding to pCD45 were estimated to be present per haploid Pisum genome; hybridization of the cDNA insert from pCD45 to G. max DNA was also detected.

Centrifugation, Density Gradient↗

Measurement of gene number for seed storage proteins in Pisum.

We have measured the numbers of genes coding for the three seed storage proteins, vicilin, convicilin and legumin, in a number of Pisum genotypes of variant protein composition. No difference in gene number existed among P. sativum genotypes for any of the proteins. There were differences in the number of genes coding for individual proteins with approximately 11 genes (per haploid genome) for vicilin, 8 genes for legumin and 1 gene for convicilin.

DNA Restriction Enzymes↗

Convicilin mRNA from pea (Pisum sativum L.) has sequence homology with other legume 7S storage protein mRNA species.

Nucleotide-sequence analysis of a complementary-DNA clone for convicilin, one of the storage proteins from pea (Pisum sativum L.) seeds, shows it to be homologous with the 7S legume seed storage proteins vicilin, conglycinin and phaseolin. Convicilin is more similar to vicilin than to phaseolin or to conglycinin. Significant areas of sequence difference are discussed.

Amino Acid Sequence↗

Storage protein precursor polypeptides in cotyledons of Pisum sativum L. Identification of, and isolation of a cDNA clone for, an 80000-Mr legumin-related polypeptide.

An 80 000-Mr polypeptide, which bound to anti-legumin IgG, was detected among labelled polypeptides from cotyledons at late stages of development. When poly(A)-containing RNA from similar cotyledons was translated in a cell-free protein-synthesizing system, an 80 000-Mr polypeptide was also detected. Immunoprecipitation of translation products with anti-legumin IgG showed that, in addition to the major legumin precursor polypeptides of Mr approximately 60 000, the 80 000-Mr polypeptide was specifically immunoprecipitated. A cDNA clone, pCD32, was found to select an RNA coding for an 80 000-Mr polypeptide in hybrid-selection experiments. Additional minor polypeptides of Mr 63 000 and 65 000 were present in translation products of RNA selected by pCD32; all three polypeptides were immunoprecipitated by anti-legumin IgG. Thermal elution of RNAs bound to pCD32 showed that the affinity of pCD32 to the RNA coding for the 80 000-Mr polypeptide was greater than to the RNAs coding for the 63 000-Mr and 65 000-Mr polypeptides. In similar hybrid-selection experiments, another cDNA clone, pCD40, selected RNAs coding predominantly for polypeptides of Mr 63 000 and 65 000. A minor polypeptide of Mr 80 000 was also detected among these products; again all three polypeptides were immunoprecipitated by anti-legumin IgG. Peptide mapping revealed close similarities between the 80000-Mr polypeptide and the 63 000-Mr/65 000-Mr polypeptides obtained by translation of RNAs selected by pCD32. There were similarities also between maps obtained from translation products of RNA selected by pCD32 and those obtained from anti-legumin IgG immunoprecipitates of total translation products of poly(A)-containing RNA.

Chemical Phenomena↗