FP6Индивидуална стипендия2007–2009

AD_COMPOCHÌP · Design and evaluation of an oligonucleotide microarray for the detection of signature microorganisms in composts from anaerobic digestion of biowastes

6РП — Действия „Мария Кюри“

Период
2007-04-01 → 2009-03-31
Финансиране от ЕС
149 396 €
Участници
1
Схема
EIF

Линиите свързват координатора с партньорите. За проекти отпреди 2014 г. CORDIS не винаги дава точни координати. Тези точки са на ниво град или държава.

Накратко на български

Микроорганизмите, които разграждат органични отпадъци без кислород, се анализират чрез специален ДНК чип (AnaeroChip). Това помага за оптимизиране на производството на биогаз, който се използва за топлина и електричество.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Final Activity Report Summary - AD_COMPOCHIP (Design and evaluation of an oligonucleotide microarray for the detection of signature microorganisms in composts from anaerobic digestion of biowastes)

Anaerobic digestion is the biotechnological process by which the organic matter contained in organic waste is degraded in the absence of oxygen. The anaerobic microorganisms that drive this process produce biogas, which is mainly composed by methane and carbon dioxide, and can be transformed into heat and electricity. Therefore, anaerobic digestion is both an alternative source of renewable energy from biomass and a means of recycling organic wastes. Unravelling the prokaryotic diversity and dynamics in methane-producing bioreactors is among the challenges to optimise the production of biogas from wastes. To help accomplishing this purpose, we have developed the AnaeroChip, a microarray targeting the 16S rRNA gene of prokaryotes involved in the process of anaerobic digestion. Microarrays consist of a solid matrix to which up to tens of thousands of DNA probes targeting complementary known sequences are attached in a precise location, allowing the simultaneous hybridisation with DNA from complex samples. This molecular tool offers the possibility to screen for the presence of an entire array of microorganisms from a particular sample in a single assay. The prototype AnaeroChip holds 103 probes, each printed in triplicate: a universal probe for archaea; 98 probes for methanogenic archaea (2 probes at family level, 4 probes targeting multiple genera, 79 probes at genus level and 13 probes at species level); two negative controls (bacterial probes) and two hybridisation controls (a positive control and a blank). The specificity of the probes was tested with pure cultures, and from the total of 1854 individual probe-target hybridisation reactions performed, there were only 43 false positive (2.3 %) and 16 false negative signals (0.86 %). The exclusion of two probes from the array resulted in a reduction of the false positive rate to 1.1 %. The sensitivity of the array was also tested, and it was found that 0.4 pg of DNA from a pure culture subjected to PCR (polymerase chain reaction) amplification gave signals above the detection limit. Also, the application of 25 ng of PCR product from a pure culture to an array resulted in detectable signals. The information generated by the microarrays (presence/absence) can be used as a basis for conducting quantitative assays for specific targets. We have designed primers and optimised real-time quantitative PCR assays for most lineages of methanogenic archaea involved in anaerobic digestion under mesophilic and thermophilic conditions, which are detectable with the AnaeroChip. Combining both techniques we have investigated the diversity and dynamics of the methanogenic communities during the start-up of laboratory-scale bioreactors, which permitted us optimising the most efficient strategy to start-up a full-scale manure-fed biogas plant in Tyrol (Austria). We have also applied the newly developed molecular strategy to follow the methanogens during a co-digestion assay of cattle manure and two-phase olive mill wastes. This led us to conclude that Methanosarcina, metabolically the most versatile methanogens, were responsible for an increase in biogas production by 337% of reactors co-digesting both residues as compared to reactors digesting only cattle manure. The future development of the AnaeroChip will broaden the spectrum of target microorganisms, including also bacteria involved in the food chain leading to methane production, as well as other organisms that reduce the efficiency of the process (e.g. sulphate-reducing bacteria).

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

The European Community produces every year 200 million tonnes of biodegradable wastes, which have to be diverted from land-filling according to European laws. Biological digestion, either aerobic or anaerobic, is the most environmentally favourable option f or the recycling of biowastes. Composts resulting from these processes are used as soil improvers, which, among other benefits, exert plant disease supressiveness due to the presence of microorganisms that are antagonists to pathogens. However, improperly treated composts may spread pathogenic microorganisms, thus damaging the environment and posing risks to human health. This causes concern among the general public, especially after the food alerts during the last decade, and constitutes a priority issue within the European Research Area.Therefore, a tool that allows the quick analysis of compost microbiota is needed to safeguarde its agronomic value. DNA biochip technology offers the possibility to simultaneously detect an entire array of micro-organisms. The host group has recently designed a micro-array addressed towards compost microbiota. This proposal aims to design an oligonucleotide micro-array to detect signature microorganisms in composts from anaerobic digestion. Micro-organisms that will be isolated from compost will be targeted. Additional probes will be selected on basis of sequences determined from bands in DGGE gels run with compost DNA. Oligonucleotide probes will be designed using sequence differences in the 16S rDNA gene and printed onto the arrays.Fluorescently labelled DNA will be prepared and hybridised, and the arrays analysed by fluorescent screening. The validation of the micro-array will be mainly conducted through spiking experiments and through their wide application to already characterised compost samples. If successful, the micro-array might permit assessing whether soil improvers meet hygiene demands, thus increasing their marketability and promoting confidence among European consumers

Оригинален текст от CORDIS (на английски).

Участници

  • LEOPOLD-FRANZENS-UNIVERSITÄT INNSBRUCK · INNSBRUCKКоординаторНиво градАвстрия

Връзки

Данни: CORDIS, © Европейски съюз