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Updated: Dec 27, 2025

Lateral Root Inducible System in Arabidopsis and Maize
Published on: January 14, 2016
Auxin efflux carriers, MiPINs, are involved in adventitious root formation of mango cotyledon segments
Yun-He Li1, Yi-Wei Mo2, Song-Biao Wang1
1Key Laboratory of Tropical Fruit Biology, Ministry of Agriculture, South Subtropical Crop Research Institute, Chinese Academy of Tropical Agricultural Sciences, Zhanjiang, 524091, China.
Abstract:
Adventitious roots form only at the proximal cut surface (PCS) but not at the distal cut surface (DCS) of mango cotyledon segments. In this study, mango embryos treated with indole-3-butyric acid (IBA) showed significantly increased adventitious root formation, while those treated with 2, 3, 5-triiodobenzoic acid (TIBA) demonstrated complete inhibition of adventitious rooting. Mango embryos treated with auxin influx inhibitors demonstrated lower inhibition of adventitious roots than those treated with TIBA. The endogenous indol-3-acetic acid (IAA) content on the PCS and DCS was similar at 0 h, then increased on both surfaces after 6 h, and IAA content on the PCS were always higher than those on the DCS. We cloned three genes encoding auxin efflux carriers (i.e., MiPIN2-4) and examined their temporal and spatial expression patterns under different treatments. Relative expression of all MiPINs studied was very low at 0 h but significantly increased on both PCS and DCS from 1 d to 10 d, to varying degrees. We overexpressed MiPIN1-4 in Arabidopsis plants and found a significant increase in adventitious root quantity in MiPIN1 and MiPIN3 transgenic lines. Immunofluorescence results showed that MiPIN1 and MiPIN3 are primarily localized in the vascular tissues and the cells adjacent to abaxial surface. In conclusion, we propose that in mango cotyledon segments, wounding stimulates IAA biosynthesis, the transcription levels of PIN genes were significantly increased in different magnitudes on the PCS and DCS, resulting in polar IAA transport from the DCS to PCS via the vascular tissues, thereby triggering adventitious root formation.
Insights
Adventitious root formation in mango cotyledon segments is stimulated by wounding, leading to increased auxin biosynthesis and polar transport via PIN genes from the distal to proximal cut surface.
Area of Science:
- Plant biology
- Molecular biology
- Horticulture
Background:
- Adventitious roots are crucial for plant propagation and development.
- Understanding the molecular mechanisms of adventitious rooting is vital for improving crop yields.
Purpose of the Study:
- To investigate the role of auxin and auxin efflux carriers in adventitious root formation in mango cotyledon segments.
- To identify key genes and pathways involved in polar auxin transport during rooting.
Main Methods:
- Treatment of mango embryos with auxins (indole-3-butyric acid) and auxin transport inhibitors (2,3,5-triiodobenzoic acid).
- Cloning and expression analysis of auxin efflux carrier genes (MiPINs).
- Overexpression of MiPIN genes in Arabidopsis and immunofluorescence localization studies.
Main Results:
- Indole-3-butyric acid significantly increased adventitious rooting, while 2,3,5-triiodobenzoic acid inhibited it.
- Endogenous indol-3-acetic acid levels were higher at the proximal cut surface.
- Expression of MiPIN genes increased post-wounding, and MiPIN1/MiPIN3 overexpression enhanced rooting in Arabidopsis.
Conclusions:
- Wounding induces auxin biosynthesis and polar transport via PIN proteins in mango cotyledons.
- Polar auxin flow from distal to proximal cut surfaces, facilitated by MiPINs, triggers adventitious root formation.
- This study elucidates a novel mechanism of adventitious rooting in fruit trees.
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