Artefact‐aware Brillouin microscopy framework for root mechanical phenotyping

Plant roots continuously sense and respond to the mechanical signals of their growth environment: root cap function, mucilage secretion, and hormonal regulation jointly adapt root tip mechanics, shaping whether roots penetrate compacted layers or reorient around obstacles. Most current measurements of root mechanical properties require removal of the root from the surrounding medium, triggering mechano-adaptive responses and confounding follow-up observations. Here we present an artefact-aware Brillouin microscopy framework that combines RoPods, a 3D-printed growing and imaging chamber with colocalised Raman microscopy, to enable repeated in situ measurements of root mechanical properties, while retaining growth-induced stresses. As a proof-of-concept application, we show that roots adapt their mechanical properties to different Gelrite concentrations, and characterise methodological biases arising from chamber geometry and sample handling.

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Publication Details

Journal
Journal of Microscopy
Published
2026-09-18
DOI
https://doi.org/10.1111/jmi.70173
Primary Topic
Plant nutrient uptake and metabolism
Type
article
Field-Weighted Citation Impact
0.00

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article

Artefact‐aware Brillouin microscopy framework for root mechanical phenotyping

Ghulam Naseer Ud Din, Dag Heinemann, Luis Alonso Baez, Timm Landes et al.
Journal of Microscopy
Plant nutrient uptake and metabolism
article

Artefact‐aware Brillouin microscopy framework for root mechanical phenotyping

Ghulam Naseer Ud Din, Dag Heinemann, Luis Alonso Baez, Timm Landes, Jacob Morsbach, Leon Pascal Wallentin, Ole Christian Hammerschmidt
article en

Abstract

Plant roots continuously sense and respond to the mechanical signals of their growth environment: root cap function, mucilage secretion, and hormonal regulation jointly adapt root tip mechanics, shaping whether roots penetrate compacted layers or reorient around obstacles. Most current measurements of root mechanical properties require removal of the root from the surrounding medium, triggering mechano-adaptive responses and confounding follow-up observations. Here we present an artefact-aware Brillouin microscopy framework that combines RoPods, a 3D-printed growing and imaging chamber with colocalised Raman microscopy, to enable repeated in situ measurements of root mechanical properties, while retaining growth-induced stresses. As a proof-of-concept application, we show that roots adapt their mechanical properties to different Gelrite concentrations, and characterise methodological biases arising from chamber geometry and sample handling.

Journal of Microscopy
Leibniz University Hannover (DE), Norwegian University of Science and Technology (NO)
Deutsche Forschungsgemeinschaft, Norges Forskningsråd
Life in Land
Openalex Percentile: Top 13%
Plant nutrient uptake and metabolism
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Artefact‐aware Brillouin microscopy framework for root mechanical phenotyping — Ghulam Naseer Ud Din, Dag Heinemann, et al. · Journal of Microscopy (2026) | TGRS Research Map | TGRS