Multilab EcoFAB study shows highly reproducible physiology and depletion of soil metabolites by a model grass.

Joelle Sasse, Josefine Kant, Benjamin J Cole, Andrew P Klein, Borjana Arsova, Pascal Schlaepfer, Jian Gao, Kyle Lewald, Kateryna Zhalnina, Suzanne Kosina, Benjamin P Bowen, Daniel Treen, John Vogel, Axel Visel, Michelle Watt, Jeffery L Dangl, Trent R Northen

Journal: The New phytologist 2020;222(2):1149-1160

PMID: 30585637

Abstract

There is a dynamic reciprocity between plants and their environment: soil physiochemical properties influence plant morphology and metabolism, and root morphology and exudates shape the environment surrounding roots. Here, we investigate the reproducibility of plant trait changes in response to three growth environments. We utilized fabricated ecosystem (EcoFAB) devices to grow the model grass Brachypodium distachyon in three distinct media across four laboratories: phosphate-sufficient and -deficient mineral media allowed assessment of the effects of phosphate starvation, and a complex, sterile soil extract represented a more natural environment with yet uncharacterized effects on plant growth and metabolism. Tissue weight and phosphate content, total root length, and root tissue and exudate metabolic profiles were consistent across laboratories and distinct between experimental treatments. Plants grown in soil extract were morphologically and metabolically distinct, with root hairs four times longer than with other growth conditions. Further, plants depleted half of the metabolites investigated from the soil extract. To interact with their environment, plants not only adapt morphology and release complex metabolite mixtures, but also selectively deplete a range of soil-derived metabolites. The EcoFABs utilized here generated high interlaboratory reproducibility, demonstrating their value in standardized investigations of plant traits.

© 2018 The Authors. New Phytologist © 2018 New Phytologist Trust.

Address: Lawrence Berkeley National Laboratory, 1 Cyclotron Road, Berkeley, CA, 94720, USA.; Joint Genome Institute, 2800 Mitchell Drive, Walnut Creek, CA, 94598, USA.; Institut für Bio- & Geowissenschaften, Forschungszentrum Jülich, Wilhelm-Johnen-Straße, 52428, Jülich, Germany.; Department of Biology, Howard Hughes Medical Institute, University of North Carolina Chapel Hill, 250 Bell Tower Drive, Chapel Hill, NC, 27599, USA.; Institute of Molecular Plant Biology, ETH Zürich, Universitätsstrasse 2, 8092, Zürich, Switzerland.; Lawrence Berkeley National Laboratory, 1 Cyclotron Road, Berkeley, CA, 94720, USA.; Joint Genome Institute, 2800 Mitchell Drive, Walnut Creek, CA, 94598, USA.; School of Natural Sciences, University of California, Merced, CA, 95343, USA.
Bant logo

© Copyright 2026, Nutrition Evidence

NED wishes to thank the following organisations for their support:

We use cookies to improve your experience and analyze site traffic with Google Analytics. By continuing to use our site, you agree to our use of cookies. Learn more.