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Shaping of a three-dimensional carnivorous trap through modulation of a planar growth mechanism.
PLoS biology·2019
Related Experiment Video
Updated: Jul 10, 2025

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Air spaces bend light in plant stems.
1Sainsbury Laboratory, University of Cambridge, Cambridge, UK.
Summary
Intercellular air spaces are essential for phototropism in Arabidopsis thaliana. These air spaces facilitate the signaling pathways required for the plant
Area of Science:
- Plant biology
- Plant physiology
- Plant development
Background:
- Phototropism is a key growth response in plants, enabling them to optimize light capture.
- Intercellular air spaces, also known as aerenchyma, are traditionally associated with gas exchange and mechanical support.
Purpose of the Study:
- To investigate the role of intercellular air spaces in mediating phototropism in Arabidopsis thaliana.
- To determine if the presence and structure of air spaces are critical for directional growth towards light.
Main Methods:
- Utilizing genetic mutants of Arabidopsis thaliana with altered air space development.
- Employing microscopy techniques to visualize and quantify intercellular air space morphology.
- Conducting phototropism assays under controlled light conditions.
Main Results:
- Plants with reduced or absent intercellular air spaces exhibited significantly impaired phototropic responses.
- Specific mutations affecting aerenchyma formation correlated with defects in phototropism.
- Correlation observed between the extent of intercellular air spaces and the efficiency of phototropic bending.
Conclusions:
- Intercellular air spaces are not only crucial for gas exchange but also play a vital, previously unrecognized role in phototropism.
- The structural integrity provided by air spaces may be essential for the proper transmission of light-induced signals.
- Targeting air space development could offer novel strategies for modulating plant growth and architecture.

