NEW ANTIBIOTICS · New Inhibitors of Bacterial and Fungal Cell Wall Biosynthesis
6РП — Действия „Мария Кюри“
- Период
- 2005-11-01 → 2007-10-31
- Финансиране от ЕС
- 168 799 €
- Участници
- 1
- Схема
- EIF
Линиите свързват координатора с партньорите.
Накратко на български
Синтезирани модифицирани захари се тестват за спиране на изграждането на клетните стени при гъбички и бактерии. Това помага за разработването на нови антибиотици, които блокират растежа на тези микроорганизми.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Final Activity Report Summary - NEW ANTIBIOTICS (New inhibitors of bacterial and fungal cell wall biosynthesis)
The fungal cell wall consists of large sections of oligosaccharide materials, the most abundant being beta-glucan, a polymer made up of beta-(1-3)glucose with a variable degree of beta-(1-6)glucose branching. Chitin, a polymer of beta(1-4)N-acetylglucosamine (GlcNAc), forms another main part of the fungal cell wall. The present study focused on the attempted inhibition of both of these non-mammalian oligosaccharides' biosynthesis. Chitin is assembled stepwise by the enzyme chitin synthase, which transfers single GlcNAc residues to a growing oligomeric chain, the donor substrate for the enzyme being uridine diphosphate-GlcNAc (UDP-GlcNAc). The elongation step in glucan biosynthesis is catalysed by the glucan synthase, the donor substrate for the enzyme being uridine diphosphate glucose UDPG. This research program proposes a new strategy to inhibit this biosynthetic pathway, namely a chain termination approach. This strategy involves the use of a monomeric carbohydrate building block that has been modified at the hydroxyl group at which further carbohydrate units would be added after this unit is incorporated into the growing oligosaccharide chain. Potential chain terminators of chitin and glucan biosyntheses are therefore GlcNAc residues in which the 4-hydroxyl has been modified and glucose derivatives in which the 3-hydroxyl has been replaced (in both cases, groups such as: H, OMe, F, NHAc and N3 have been used to replace OH group). If such materials are processed by enzymes, then their transfer to the terminus of the growing chitin and glucan chains would result in a chain termination step since the required 4-hydroxyl of GlcNAc and 3-hydroxyl of glucose, at which subsequent units would be added, will now be lacking. The most obvious approach was that of synthesising and testing the modified UDP donors themselves, since these are the actual substrates processed by the enzymes. In parallel, selected intermediates from the reaction sequence were tested in view of their potential as pro-drugs (they may be converted to the active UDP donor once inside the cell). From previous experience on the use of oxazolines as transition-state mimics that are readily processed by hexosaminidases, it was reasoned that such oxazolines may themselves serve as activated substrates for chitin synthase. Therefore, after the synthesis and the antifungal testing of the 4-modified UDP-GlcNAc derivatives, another target was the synthesis and testing of a selection of GlcNAc derived oxazolines in which the key 4-hydroxyl was replaced with groups such as: H, OMe, F, NHAc and N3. The antifungal action of the putative chain termination compounds was assessed using two assays on microconidia and germlings of the dermatophyte Trichophyton rubrum. The assays measured the effects of the modified compounds on adhesion and germination of fungal spores/germlings versus the control compounds. None of the UDP derivatives or the precursors tested displayed any significant anti-fungal activity in cell adhesion or germination assays, while putative chain-terminating benzoylated oxazolines and their precursors (anomeric acetates) all significantly inhibited T. rubrum germination at concentrations of 1 mM, whereas the control had no effect. One rationalisation of these results is the better compound polarity profile of the benzoate esters, which are probably more able to penetrate into cells and, therefore, probably act as prodrugs. Direct proof of the precise mode of action will require substantial further investigation. However, whatever the precise molecular mode of action, this work has demonstrated that novel antifungal carbohydrates can be rationally designed by using a chain-termination approach.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Oligomeric materials consisting of repeat units of carbohydrate monomers frequently represent crucial cell components that are essential for the viability of a whole host of different organisms. For example the mycobacterial cell wall contains several uniq ue carbohydrate structures, such as the arabinogalactan and arabinomannan portions, that do not appear in mammalian biology. It has previously been demonstrated that the correct biosynthesis of these structures is essential for bacterial survival. Therefore inhibition of the biosynthesis of these types of oligosaccharides represents a new and attractive therapeutic strategy against mycobacteria and in particular against tuberculosis. Similarly chitin, which is a (1-4) linked polymer of N-acetylglucosamine, is a major constituent of both fungal cell walls and insect exoskeletons. However chitin also does not appear in mammalian systems, and therefore inhibition of chitin biosynthesis represents a selective strategy for the development of novel fungicides and insecticidal agents.This research program aims to develop a new strategy for the inhibition of such bacterial and fungal poly- and oligosaccharide biosynthesis by a completely novel mode of action. This research proposal concerns investigations into the feasibility of using this strategy as a method for inhibition of mycobacterial cell wall biosynthesis, and also for the inhibition of fungal cell wall biosynthesis. These studies are designed to investigate the general feasibility of this approach, and hopefully to provide a demonstration of and proof of concept" for a new approach to the inhibition of oligosaccharide biosynthesis, which may in the near future represent a novel and general therapeutic opportunity against infective organisms, particularly those which have developed resistance to current treatments."
Оригинален текст от CORDIS (на английски).
Участници
- THE CHANCELLOR, MASTERS AND SCHOLARS OF THE UNIVERSITY OF OXFORD · OXFORDКоординаторОбединеното кралство
Връзки
Данни: CORDIS, © Европейски съюз
