Markus M. Geisler
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Markus M. Geisler is a Lecturer at the University of Fribourg, Switzerland. His research focuses on plant auxin transport mechanisms, with recent articles exploring auxin homeostasis, ABC transporter functionality, and plant responses to environmental stressors. His work contributes to a deeper understanding of plant growth and defense mechanisms.
Recent Grants
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Mechanistic and evolutionary insight into chaperon-mediated ABC transporter homeostasis in plants
Open Date: 2021-01-01
Close Date: 2024-12-31
Grant: Close
Multichannel confocal microscope with fluorescence lifetime imaging for life science samples
Open Date: 2020-03-01
Close Date: 2021-02-28
Grant: Close
A GC/Q-TOF for selective detection and accurate identification of key metabolites involved in biological and geological processes
Open Date: 2018-12-01
Close Date: 2019-11-30
Grant: Close
High throughput, Automated Cell Multi-Mode Imaging Reader for the University of Fribourg
Open Date: 2017-12-01
Close Date: 2018-11-30
Grant: Close
Impact of ABCG36 phosphorylation during root-microbe colonization
Open Date: 2017-01-01
Close Date:
Articles (16)
Chloroplast Auxin Efflux Mediated by ABCB28 and ABCB29 Fine-Tunes Salt and Drought Stress Responses in Arabidopsis
Photosynthesis is among the first processes negatively affected by environmental cues and its performance directly determines plant cell fitness and ultimately crop yield. Primarily sites of photosynthesis, chloroplasts are unique sites also for the biosynthesis of precursors of the growth regulator auxin and for sensing environmental stress, but their role in intracellular auxin homeostasis, vital for plant growth and survival in changing environments, remains poorly understood. Here, we identified two ATP-binding cassette (ABC) subfamily B transporters, ABCB28 and ABCB29, which export auxin across the chloroplast envelope to the cytosol in a concerted action in vivo. Moreover, we provide evidence for an auxin biosynthesis pathway in Arabidopsis thaliana chloroplasts. The overexpression of ABCB28 and ABCB29 influenced stomatal regulation and resulted in significantly improved water use efficiency and survival rates during salt and drought stresses. Our results suggest that chloroplast auxin production and transport contribute to stomata regulation for conserving water upon salt stress. ABCB28 and ABCB29 integrate photosynthesis and auxin signals and as such hold great potential to improve the adaptation potential of crops to environmental cues.
Year:
2023
GH3‐mediated auxin inactivation attenuates multiple stages of lateral root development
Summary Lateral root (LR) positioning and development rely on the dynamic interplay between auxin production, transport but also inactivation. Nonetheless, how the latter affects LR organogenesis remains largely uninvestigated. Here, we systematically analyze the impact of the major auxin inactivation pathway defined by GRETCHEN HAGEN3‐type (GH3) auxin conjugating enzymes and DIOXYGENASE FOR AUXIN OXIDATION1 (DAO1) in all stages of LR development using reporters, genetics and inhibitors in Arabidopsis thaliana . Our data demonstrate that the gh3 . 1/2/3/4/5/6 hextuple ( gh3hex ) mutants display a higher LR density due to increased LR initiation and faster LR developmental progression, acting epistatically over dao1‐1 . Grafting and local inhibitor applications reveal that root and shoot GH3 activities control LR formation. The faster LR development in gh3hex is associated with GH3 expression domains in and around developing LRs. The increase in LR initiation is associated with accelerated auxin response oscillations coinciding with increases in apical meristem size and LR cap cell death rates. Our research reveals how GH3‐mediated auxin inactivation attenuates LR development. Local GH3 expression in LR primordia attenuates development and emergence, whereas GH3 effects on pre‐initiation stages are indirect, by modulating meristem activities that in turn coordinate root growth with LR spacing.
Year:
2023
Collaborators (13)
Vanesa Beatriz Tognetti
Masaryk University
Clara Sanchez-Rodriguez
Assistant Professor
Eidgenössische Technische Hochschule Zürich
Steffen Vanneste
-
Anthony Bishopp
Assoc. Prof
University of Nottingham
Marcin Radom
Associate professor
Institute of Bioorganic Chemistry Polish Academy of Sciences
Christian Luschnig
-
Katarzyna Retzer
University of Natural Resources and Life Sciences
Michał Jasiński
Lecturer / Reader
University of Life Sciences in Poznań
Leah R Band
University of Nottingham
Tomasz Jamruszka
assistant professor
University of Life Sciences in Poznań
Jan Brezovsky
Professor - laboratory head
International Institute of Molecular and Cell Biology in Warsaw
Malcolm J Bennett
University of Nottingham
Yoichiro Fukao
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