Dual-flow-RootChip reveals local adaptations of roots towards environmental asymmetry at the physiological and genetic levels
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Accepted version
Author(s)
Type
Journal Article
Abstract
Roots grow in highly dynamic and heterogeneous environments. Biological activity as well as uneven nutrient availability or localized stress factors result in diverse microenvironments. Plants adapt their root morphology in response to changing environmental conditions, yet it remains largely unknown to what extent developmental adaptations are based on systemic or cell‐autonomous responses.
We present the dual‐flow‐RootChip, a microfluidic platform for asymmetric perfusion of Arabidopsis roots to investigate root–environment interactions under simulated environmental heterogeneity. Applications range from investigating physiology, root hair development and calcium signalling upon selective exposure to environmental stresses to tracing molecular uptake, performing selective drug treatments and localized inoculations with microbes.
Using the dual‐flow‐RootChip, we revealed cell‐autonomous adaption of root hair development under asymmetric phosphate (Pi) perfusion, with unexpected repression in root hair growth on the side exposed to low Pi and rapid tip‐growth upregulation when Pi concentrations increased. The asymmetric root environment further resulted in an asymmetric gene expression of RSL4, a key transcriptional regulator of root hair growth.
Our findings demonstrate that roots possess the capability to locally adapt to heterogeneous conditions in their environment at the physiological and transcriptional levels. Being able to generate asymmetric microenvironments for roots will help further elucidate decision‐making processes in root–environment interactions.
We present the dual‐flow‐RootChip, a microfluidic platform for asymmetric perfusion of Arabidopsis roots to investigate root–environment interactions under simulated environmental heterogeneity. Applications range from investigating physiology, root hair development and calcium signalling upon selective exposure to environmental stresses to tracing molecular uptake, performing selective drug treatments and localized inoculations with microbes.
Using the dual‐flow‐RootChip, we revealed cell‐autonomous adaption of root hair development under asymmetric phosphate (Pi) perfusion, with unexpected repression in root hair growth on the side exposed to low Pi and rapid tip‐growth upregulation when Pi concentrations increased. The asymmetric root environment further resulted in an asymmetric gene expression of RSL4, a key transcriptional regulator of root hair growth.
Our findings demonstrate that roots possess the capability to locally adapt to heterogeneous conditions in their environment at the physiological and transcriptional levels. Being able to generate asymmetric microenvironments for roots will help further elucidate decision‐making processes in root–environment interactions.
Date Issued
2018-02-01
Date Acceptance
2017-10-11
Citation
New Phytologist, 2018, 217 (3), pp.1357-1369
ISSN
0028-646X
Publisher
Wiley
Start Page
1357
End Page
1369
Journal / Book Title
New Phytologist
Volume
217
Issue
3
Copyright Statement
© 2017 The Authors. New Phytologist © 2017 New Phytologist Trust. This is the peer reviewed version of the following article, which has been published in final form at https://nph.onlinelibrary.wiley.com/doi/full/10.1111/nph.14887. This article may be used for non-commercial purposes in accordance with Wiley Terms and Conditions for Use of Self-Archived Versions.
Sponsor
Swiss National Science Foundation
Identifier
https://nph.onlinelibrary.wiley.com/doi/full/10.1111/nph.14887
Grant Number
PZ00P2_168005
Subjects
Plant Biology & Botany
06 Biological Sciences
07 Agricultural and Veterinary Sciences
Publication Status
Published
Date Publish Online
2017-11-10