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Impact of nutrients
Nutrient availability in natural ecosystems has increased due to anthropogenic activities like spill-over from agricultural ecosystems. In the Netherlands, this has led to the acidification of natural areas for example. At NIOO, we aim to understand the impact of nutrients on natural systems in more detail, to help to bring back the balance. -
Impact van voedingsstoffen
De mens heeft ervoor gezorgd dat tegenwoordig veel meer voedingsstoffen beschikbaar zijn in natuurlijke systemen. Bijvoorbeeld doordat het 'weglekt' uit de landbouw of het verkeer. In Nederland heeft dat geleid tot verzuring van natuurgebieden bijvoorbeeld. Bij het NIOO willen we de impact van voedingsstoffen op natuurlijke systemen beter begrijpen, om zo te helpen de balans terug te vinden. -
Impression of the King's visit to NIOO
Earlier this month, His Royal Highness King Willem-Alexander paid a working visit to the Netherlands Institute of Ecology (NIOO-KNAW). The visit included a tour, an introduction to NIOO's three major research themes, and a number of hands-on ecological measurements and experiments in which the King took part. -
Koning op werkbezoek bij het NIOO
Koning Willem-Alexander bracht vandaag een werkbezoek aan het Nederlands Instituut voor Ecologie (NIOO-KNAW) in Wageningen. Naast een rondleiding kreeg de Koning uitleg over de onderzoeksthema's van het NIOO Ć©n nam hij deel aan een aantal praktische metingen en experimenten. -
King Willem-Alexander to visit NIOO on 6 July
On 6 July,Ā His Majesty King Willem-Alexander will pay a working visit to the Netherlands Institute of Ecology (NIOO-KNAW) in Wageningen. Ā -
Koning bezoekt NIOO op 6 juli
Zijne Majesteit Koning Willem-AlexanderĀ brengt opĀ woensdagmiddag 6 juli een werkbezoek aan het Nederlands Instituut voor Ecologie (NIOO-KNAW) in Wageningen. -
Nature in Production: fish ecology at the Marker Wadden (NiPFish)
Natuur in Productie: visecologie op de Marker Wadden (NiPFish) -
Microbial Farming to increase plant productivity
Plant-growth promoting microbes (PGPM) are a viable alternative to traditional fertilizers for enhancing plant productivity and improving soil quality without environmental pollution. The use of PGPM in agriculture has been hampered by a lack of reproducible results and the difficulty of transferring this technology to the field. This inconsistent success primarily reflects competition or resistance of the original soil microbiome to inoculants, as well as the negative effects of management practices such as fertilization on plant interactions with the soil microbiome and the efficiency of ecosystem services delivered by PGPM. We were the first to circumvent this problem under field conditions by manipulating the soil microbiome to successfully obtain consistent, positive effects of inoculated microbes on plant productivity (Cipriano et al., 2016;https://doi.org/10.1093/femsec/fiw197). However, the influence of the indigenous soil microbiome on plants remains largely unknown. We propose to investigate this tripartite, PGPM-plant-soil microbiome interaction in plant quality and productivity using state-of-the-art āomicsā and bioinformatics approaches to investigate facilitation (positive interactions) and competition (negative interactions) by both microbes and PGPM within the plant realized niche following gradients of both soil diversity and nutrient availability. This research will facilitate the development of innovative methods for agricultural and horticultural starting material production using PGPM for sustainable crop production by combining techniques to reduce nutrient input and enhance the efficiency and long-lasting effects of PGPM. This research proposal will integrate approaches to obtain a fundamental understanding of these tripartite interactions in a smart microbiome engineered plant production system for sustainable high-quality crop production.