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PIN2-mediated self-organizing transient auxin flow contributes to auxin maxima at the tip of Arabidopsis cotyledons.

Publication ,  Journal Article
Pérez-Henríquez, P; Nagawa, S; Liu, Z; Pan, X; Michniewicz, M; Tang, W; Rasmussen, C; Van Norman, J; Strader, L; Yang, Z
Published in: bioRxiv
June 28, 2024

Directional auxin transport and formation of auxin maxima are critical for embryogenesis, organogenesis, pattern formation, and growth coordination in plants, but the mechanisms underpinning the initiation and establishment of these auxin dynamics are not fully understood. Here we show that a self-initiating and -terminating transient auxin flow along the marginal cells (MCs) contributes to the formation of an auxin maximum at the tip of Arabidopsis cotyledon that globally coordinates the interdigitation of puzzle-shaped pavement cells in the cotyledon epidermis. Prior to the interdigitation, indole butyric acid (IBA) is converted to indole acetic acid (IAA) to induce PIN2 accumulation and polarization in the marginal cells, leading to auxin flow toward and accumulation at the cotyledon tip. When IAA levels at the cotyledon tip reaches a maximum, it activates pavement cell interdigitation as well as the accumulation of the IBA transporter TOB1 in MCs, which sequesters IBA to the vacuole and reduces IBA availability and IAA levels. The reduction of IAA levels results in PIN2 down-regulation and cessation of the auxin flow. Hence, our results elucidate a self-activating and self-terminating transient polar auxin transport system in cotyledons, contributing to the formation of localized auxin maxima that spatiotemporally coordinate pavement cell interdigitation.

Duke Scholars

Published In

bioRxiv

DOI

EISSN

2692-8205

Publication Date

June 28, 2024

Location

United States
 

Citation

APA
Chicago
ICMJE
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Pérez-Henríquez, P., Nagawa, S., Liu, Z., Pan, X., Michniewicz, M., Tang, W., … Yang, Z. (2024). PIN2-mediated self-organizing transient auxin flow contributes to auxin maxima at the tip of Arabidopsis cotyledons. BioRxiv. https://doi.org/10.1101/2024.06.24.599792
Pérez-Henríquez, Patricio, Shingo Nagawa, Zhongchi Liu, Xue Pan, Marta Michniewicz, Wenxin Tang, Carolyn Rasmussen, Jaimie Van Norman, Lucia Strader, and Zhenbiao Yang. “PIN2-mediated self-organizing transient auxin flow contributes to auxin maxima at the tip of Arabidopsis cotyledons.BioRxiv, June 28, 2024. https://doi.org/10.1101/2024.06.24.599792.
Pérez-Henríquez P, Nagawa S, Liu Z, Pan X, Michniewicz M, Tang W, et al. PIN2-mediated self-organizing transient auxin flow contributes to auxin maxima at the tip of Arabidopsis cotyledons. bioRxiv. 2024 Jun 28;
Pérez-Henríquez, Patricio, et al. “PIN2-mediated self-organizing transient auxin flow contributes to auxin maxima at the tip of Arabidopsis cotyledons.BioRxiv, June 2024. Pubmed, doi:10.1101/2024.06.24.599792.
Pérez-Henríquez P, Nagawa S, Liu Z, Pan X, Michniewicz M, Tang W, Rasmussen C, Van Norman J, Strader L, Yang Z. PIN2-mediated self-organizing transient auxin flow contributes to auxin maxima at the tip of Arabidopsis cotyledons. bioRxiv. 2024 Jun 28;

Published In

bioRxiv

DOI

EISSN

2692-8205

Publication Date

June 28, 2024

Location

United States