Gravitropism

Gravitropism is the directional growth of an organism in response to gravity, a biological process that helps plants orient roots and shoots for efficient growth. In plants, specialized cells sense gravity through sedimenting statoliths, which redistribute the hormone auxin across the organ; unequal auxin concentrations then alter cell elongation, producing downward root growth and upward shoot growth. Studying gravitropism reveals how plants integrate environmental signals with hormone-controlled development and provides insight into root architecture, seedling establishment, and plant adaptation in changing environments. This process also informs research on crop performance and plant growth in spaceflight, where gravity cues are reduced or absent.

Gravitropism - Related Videos

Research

JoVE Journal - Biology
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Using Flatbed Scanners to Collect High-resolution Time-lapsed Images of the Arabidopsis Root Gravitropic Response

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Cited by 6 •

2014

This protocol describes a process for rapid collection of images of Arabidopsis seedlings responding to a gravity stimulus using commercially-available flatbed scanners. The method allows for inexpensive, high-volume capture of high-resolution images amenable for downstream analysis algorithms.

Education

JoVE Core - Biology

Responses to Gravity and Touch

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2020

Gravitropism: Plant Responses to Gravity Higher plants sense gravity using statocytes, cells found near the vascular tissue in shoots, and in the root cap columella in roots. Statocytes contain starch-filled organelles called statoliths. The statoliths settle, or sediment, at the bottom of the statocyte in the direction of gravity. Statolith sedimentation triggers a signaling cascade, resulting in the asymmetrical distribution of the plant hormone auxin across root and shoot tips. This...

A Strategy to Validate the Role of Callose-mediated Plasmodesmal Gating in the Tropic Response

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Cited by 7 •

2016

This article describes the methods for screening the genes controlling plasmodesmal permeability and hence auxin gradient during tropic response. This includes the measurement of the degree of tropic response in hypocotyl of Arabidopsis thaliana and checking plasmodesmal permeability by 8-hydroxypyrene-1,3,6-trisulfonic acid (HPTS) loading and finally callose level assessment.

A Simple Chamber for Long-term Confocal Imaging of Root and Hypocotyl Development

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Cited by 25 •

2017

Presented here is a simple technique for high-resolution confocal time-lapse imaging of root and hypocotyl development for up to 3 days using high numerical-aperture objectives and perfluorodecalin as an immersion medium.

Research

JoVE Journal - Environment
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RGB and Spectral Root Imaging for Plant Phenotyping and Physiological Research: Experimental Setup and Imaging Protocols

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Cited by 36 •

2017

An experimental protocol is presented for assessment of soil grown plant root systems with RGB and hyperspectral imaging. Combination of RGB image time series with chemometric information from hyperspectral scans optimizes insights into plant root dynamics.

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