The spectral response of Buxus sempervirens to different types of environmental stress, a laboratory experiment
Publication date
2012
Authors
Jong, S.M. de
Addink, E.A.
Hoogenboom, P.
Nijland, W.
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Supervisors
Document Type
Article
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(c) UU Universiteit Utrecht, 2012
Abstract
The European Mediterranean regions are expected to encounter drier summer conditions and warmer
temperatures for the winter of +2 C and of +5 C for the summer in the next six decennia. As a result
the natural vegetation will face harsher conditions due to lower water availability, longer summer
droughts and higher temperatures resulting in plant stress conditions. To monitor vegetation conditions
like stress and leaf area index dynamics in our study area in Mediterranean France we use earth observation
techniques like imaging spectroscopy. To assist image analysis interpretation we carried out a
laboratory experiment to investigate the spectral and visible response of Buxus sempervirens, a common
Mediterranean species, to five different types of stress: drought, drought-and-heat, light deprivation,
total saturation and chlorine poisoning. For 52 days plants were subjected to stress. We collected data
on the visible and spectral signs, and calculated thirteen vegetation indices. The plant’s response time
to different stress types varied from 10 to 32 days. Spectroscopic techniques revealed plant stress up
to 15 days earlier than visual inspection. Visible signs of stress of the plants included curling and shrinking
of the leaves, de-colouring of the leaves, leaves becoming breakable, opening up of the plant’s canopy
and sagging of the branches. Spectral signs of stress occurred first in the water absorption bands at 1450
and 1940 nm, followed by reduced absorption in the visible wavelengths, and next by reduced reflectance
in near infrared. Light deprivation did not result in any stress signs, while drought, drought and heat and
chlorine poisoning resulted in significant stress. The spectral response did not show differences for
different stress types. Analysis of the vegetation indices identified the Carter-2 (R695/R760), the Red–Green
Index (R690/R550) and the Vogelman-2 (R734 - R747)/(R715 + R726) as the best performing ones to identify
stress. The lab experiment shows that spectroscopic techniques are useful to detect stress status of plants
and in an earlier stage than visible signs of stress become apparent, but that spectroscopy does not reveal
the type of plant stress.
Keywords
Plant stress experiments, Spectral plant stress indices, Imaging spectroscopy, Mediterranean, Peyne area