Malus Sylvestris

Bitki adı: Malus Sylvestris
Bilimsel adı: Malus sylvestris
Cins: Malus
Familya: Rosaceae

Genel Bilgiler


Duke – Ethnobotany

Bilgi: Steinmetz
Kaynak: James A. Duke
Bilgi: Al-Rawi
Kaynak: James A. Duke
Bilgi: Steinmetz
Kaynak: James A. Duke
Bilgi: Woi.Syria
Kaynak: James A. Duke
Bilgi: Woi.Syria
Kaynak: James A. Duke
Bilgi: Hartwell
Kaynak: James A. Duke
Bilgi: Hartwell
Kaynak: James A. Duke
Bilgi: Hartwell
Kaynak: James A. Duke
Bilgi: Woi.Syria
Kaynak: James A. Duke
Bilgi: Bliss
Kaynak: James A. Duke
Bilgi: Liogier
Kaynak: James A. Duke
Bilgi: Lewis
Kaynak: James A. Duke
Bilgi: Liogier
Kaynak: James A. Duke
Bilgi: Martinez
Kaynak: James A. Duke
Bilgi: Steinmetz
Kaynak: James A. Duke
Bilgi: Al-Rawi
Kaynak: James A. Duke
Bilgi: Steinmetz
Kaynak: James A. Duke
Bilgi: Steinmetz
Kaynak: James A. Duke
Bilgi: Steinmetz
Kaynak: James A. Duke
Bilgi: Al-Rawi
Kaynak: James A. Duke
Bilgi: Eb24: 394
Kaynak: James A. Duke
Bilgi: Lewis
Kaynak: James A. Duke
Bilgi: Bliss
Kaynak: James A. Duke
Bilgi: Woi.Syria
Kaynak: James A. Duke
Bilgi: Bliss
Kaynak: James A. Duke
Bilgi: Woi.Syria
Kaynak: James A. Duke
Bilgi: Liogier
Kaynak: James A. Duke
Bilgi: FontQuer
Kaynak: James A. Duke
Bilgi: Hartwell
Kaynak: James A. Duke
Bilgi: Woi.Syria
Kaynak: James A. Duke
Bilgi: Brutus
Kaynak: James A. Duke
Bilgi: Liogier
Kaynak: James A. Duke
Bilgi: Al-Rawi
Kaynak: James A. Duke
Bilgi: Lewis
Kaynak: James A. Duke
Bilgi: Al-Rawi
Kaynak: James A. Duke
Bilgi: Woi.Syria
Kaynak: James A. Duke
Bilgi: Bliss
Kaynak: James A. Duke
Bilgi: Al-Rawi
Kaynak: James A. Duke
Bilgi: Bliss
Kaynak: James A. Duke
Bilgi: Bliss
Kaynak: James A. Duke
Bilgi: Hartwell
Kaynak: James A. Duke
Bilgi: Bliss
Kaynak: James A. Duke
Bilgi: Woi.Syria
Kaynak: James A. Duke
Bilgi: Hartwell
Kaynak: James A. Duke
Bilgi: Hartwell
Kaynak: James A. Duke
Bilgi: Hartwell
Kaynak: James A. Duke
Bilgi: Hartwell
Kaynak: James A. Duke

Bilimsel Araştırmalar

The limit of the Colletotrichum gloeosporioides species complex is defined genetically, based on a strongly supported clade within the Colletotrichum ITS gene tree. All taxa accepted within this clade are morphologically more or less typical of the broadly defined C. gloeosporioides, as it has been applied in the literature for the past 50 years. We accept 22 species plus one subspecies within the C. gloeosporioides complex. These include C. asianum, C. cordylinicola, C. fructicola, C. gloeosporioides, C. horii, C. kahawae subsp. kahawae, C. musae, C. nupharicola, C. psidii, C. siamense, C. theobromicola, C. tropicale, and C. xanthorrhoeae, along with the taxa described here as new, C. aenigma, C. aeschynomenes, C. alatae, C. alienum, C. aotearoa, C. clidemiae, C. kahawae subsp. ciggaro, C. salsolae, and C. ti, plus the nom. nov. C. queenslandicum (for C. gloeosporioides var. minus). All of the taxa are defined genetically on the basis of multi-gene phylogenies. Brief morphological descriptions are provided for species where no modern description is available. Many of the species are unable to be reliably distinguished using ITS, the official barcoding gene for fungi. Particularly problematic are a set of species genetically close to C. musae and another set of species genetically close to C. kahawae, referred to here as the Musae clade and the Kahawae clade, respectively. Each clade contains several species that are phylogenetically well supported in multi-gene analyses, but within the clades branch lengths are short because of the small number of phylogenetically informative characters, and in a few cases individual gene trees are incongruent. Some single genes or combinations of genes, such as glyceraldehyde-3-phosphate dehydrogenase and glutamine synthetase, can be used to reliably distinguish most taxa and will need to be developed as secondary barcodes for species level identification, which is important because many of these fungi are of biosecurity significance. In addition to the accepted species, notes are provided for names where a possible close relationship with C. gloeosporioides sensu lato has been suggested in the recent literature, along with all subspecific taxa and formae speciales within C. gloeosporioides and its putative teleomorph Glomerella cingulata. Taxonomic novelties Name replacement - C. queenslandicum B. Weir & P.R. Johnst. New species - C. aenigma B. Weir & P.R. Johnst., C. aeschynomenes B. Weir & P.R. Johnst., C. alatae B. Weir & P.R. Johnst., C. alienum B. Weir & P.R. Johnst, C. aotearoa B. Weir & P.R. Johnst., C. clidemiae B. Weir & P.R. Johnst., C. salsolae B. Weir & P.R. Johnst., C. ti B. Weir & P.R. Johnst. New subspecies - C. kahawae subsp. ciggaro B. Weir & P.R. Johnst. Typification: Epitypification - C. queenslandicum B. Weir & P.R. Johnst.

Makaleyi görüntüle
Background The control of plant anthocyanin accumulation is via transcriptional regulation of the genes encoding the biosynthetic enzymes. A key activator appears to be an R2R3 MYB transcription factor. In apple fruit, skin anthocyanin levels are controlled by a gene called MYBA or MYB1, while the gene determining fruit flesh and foliage anthocyanin has been termed MYB10. In order to further understand tissue-specific anthocyanin regulation we have isolated orthologous MYB genes from all the commercially important rosaceous species. Results We use gene specific primers to show that the three MYB activators of apple anthocyanin (MYB10/MYB1/MYBA) are likely alleles of each other. MYB transcription factors, with high sequence identity to the apple gene were isolated from across the rosaceous family (e.g. apples, pears, plums, cherries, peaches, raspberries, rose, strawberry). Key identifying amino acid residues were found in both the DNA-binding and C-terminal domains of these MYBs. The expression of these MYB10 genes correlates with fruit and flower anthocyanin levels. Their function was tested in tobacco and strawberry. In tobacco, these MYBs were shown to induce the anthocyanin pathway when co-expressed with bHLHs, while over-expression of strawberry and apple genes in the crop of origin elevates anthocyanins. Conclusions This family-wide study of rosaceous R2R3 MYBs provides insight into the evolution of this plant trait. It has implications for the development of new coloured fruit and flowers, as well as aiding the understanding of temporal-spatial colour change.

Makaleyi görüntüle
It would be desirable to establish and standardize methods that can measure the total antioxidant capacity level directly from vegetable extracts containing phenolics. Antioxidant capacity assays may be broadly classified as electron transfer (ET)- and hydrogen atom transfer (HAT)-based assays. The majority of HAT assays are kinetics-based, and involve a competitive reaction scheme in which antioxidant and substrate compete for peroxyl radicals thermally generated through the decomposition of azo compounds. ET-based assays measure the capacity of an antioxidant in the reduction of an oxidant, which changes colour when reduced. ET assays include the ABTS/TEAC, CUPRAC, DPPH, Folin-Ciocalteu and FRAP methods, each using different chromogenic redox reagents with different standard potentials. This review intends to offer a critical evaluation of existing antioxidant assays applied to phenolics, and reports the development by our research group of a simple and low-cost antioxidant capacity assay for dietary polyphenols, vitamins C and E, and human serum antioxidants, utilizing the copper(II)-neocuproine reagent as the chromogenic oxidizing agent, which we haved named the CUPRAC (cupric ion reducing antioxidant capacity) method. This method offers distinct advantages over other ET-based assays, namely the selection of working pH at physiological pH (as opposed to the Folin and FRAP methods, which work at alkaline and acidic pHs, respectively), applicability to both hydrophilic and lipophilic antioxidants (unlike Folin and DPPH), completion of the redox reactions for most common flavonoids (unlike FRAP), selective oxidation of antioxidant compounds without affecting sugars and citric acid commonly contained in foodstuffs and the capability to assay -SH bearing antioxidants (unlike FRAP). Other similar ET-based antioxidant assays that we have developed or modified for phenolics are the Fe(III)- and Ce(IV)-reducing capacity methods.

Makaleyi görüntüle
The use of and search for drugs and dietary supplements derived from plants have accelerated in recent years. Ethnopharmacologists, botanists, microbiologists, and natural-products chemists are combing the Earth for phytochemicals and "leads" which could be developed for treatment of infectious diseases. While 25 to 50% of current pharmaceuticals are derived from plants, none are used as antimicrobials. Traditional healers have long used plants to prevent or cure infectious conditions; Western medicine is trying to duplicate their successes. Plants are rich in a wide variety of secondary metabolites, such as tannins, terpenoids, alkaloids, and flavonoids, which have been found in vitro to have antimicrobial properties. This review attempts to summarize the current status of botanical screening efforts, as well as in vivo studies of their effectiveness and toxicity. The structure and antimicrobial properties of phytochemicals are also addressed. Since many of these compounds are currently available as unregulated botanical preparations and their use by the public is increasing rapidly, clinicians need to consider the consequences of patients self-medicating with these preparations.

Makaleyi görüntüle
L-[U-(14)C]Methionine fed to apple tissue was efficiently converted to ethylene when the tissue was incubated in air. In nitrogen, however, it was not metabolized to ethylene but was instead converted to 1-aminocyclopropane-1-carboxylic acid (ACC). When apple tissues were fed with L-[methyl-(14)C]methionine or L-[(35)S]methionine and incubated in nitrogen, radioactivity was found subsequently in methylthioribose. This suggests that methionine is first converted to S-adenosylmethionine which is in turn fragmented to ACC and methylthioadenosine. Methylthioadenosine is then hydrolyzed to methylthioribose. The conclusion that ACC is an intermediate in the conversion of methionine to ethylene is based on the following observations: Labeled ACC was efficiently converted to ethylene by apple tissue incubated in air; the conversion of labeled methionine to ethylene was greatly decreased in the presence of unlabeled ACC, but the conversion of labeled ACC to ethylene was little affected by the presence of unlabeled methionine; and 2-amino-4-(2'-aminoethoxy)trans-3-butenoic acid, a potent inhibitor of pyridoxal phosphate-mediated enzyme reactions, greatly inhibited the conversion of methionine to ethylene but did not inhibit conversion of ACC to ethylene. These data indicate the following sequence for the pathway of ethylene biosynthesis in apple tissue: methionine --> S-adenosylmethionine --> ACC --> ethylene. A possible mechanism accounting for these reactions is presented.

Makaleyi görüntüle

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