Literature DB >> 29119309

Localization and transport of indole-3-acetic acid during somatic embryogenesis in Coffea canephora.

Ruth E Márquez-López1, Cleyre Pérez-Hernández1, Ángela Ku-González1, Rosa María Galaz-Ávalos1, Víctor Manuel Loyola-Vargas2.   

Abstract

Auxin and polar auxin transport have been implicated in controlling zygotic embryo development, but less is known about their role in the development of somatic embryos. The aim of this study was to determine if indole-3-acetic acid (IAA) and the PIN1 transporter participate in the induction of somatic embryogenesis (SE) and the development of somatic embryos. The results show that IAA levels gradually increase during pre-treatment and accumulate in the chloroplast. During pre-treatment and the globular stage of SE in C. canephora, auxin is distributed uniformly in all of the cells of the somatic embryo. During the subsequent stages of development, auxins are mobilized to the cells that will form the cotyledons and the root meristem. The location of the PIN transporters shifts from the plasmalemma of the protoderm cells during the globular stage to the plasmalemma of the cells that will give rise to the cotyledons and the vascular tissue in the late stages of somatic embryogenesis. The incubation of the explants in the presence of 2,3,5-triiodobenzoic acid (TIBA) produced aberrant somatic embryos, suggesting that PIN1 mediates the transport of IAA.

Entities:  

Keywords:  Auxins; Coffea canephora Pierre ex Froehner; Indole-3-acetic acid; Inhibition; Polar auxin transport; Somatic embryogenesis

Mesh:

Substances:

Year:  2017        PMID: 29119309     DOI: 10.1007/s00709-017-1181-1

Source DB:  PubMed          Journal:  Protoplasma        ISSN: 0033-183X            Impact factor:   3.356


  11 in total

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3.  In Vitro Stress-Mediated Somatic Embryogenesis in Plants.

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4.  Internal and External Regulatory Elements Controlling Somatic Embryogenesis in Catharanthus: A Model Medicinal Plant.

Authors:  A Mujib; Yashika Bansal; Moien Qadir Malik; Rukaya Syeed; Jyoti Mamgain; Bushra Ejaz
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5.  YUCCA-Mediated Biosynthesis of the Auxin IAA Is Required during the Somatic Embryogenic Induction Process in Coffea canephora.

Authors:  Miguel A Uc-Chuc; Cleyre Pérez-Hernández; Rosa M Galaz-Ávalos; Ligia Brito-Argaez; Víctor Aguilar-Hernández; Víctor M Loyola-Vargas
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Review 6.  Advanced Proteomic Approaches to Elucidate Somatic Embryogenesis.

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7.  Genome-wide analysis, transcription factor network approach and gene expression profile of GH3 genes over early somatic embryogenesis in Coffea spp.

Authors:  Renan Terassi Pinto; Natália Chagas Freitas; Wesley Pires Flausino Máximo; Thiago Bergamo Cardoso; Débora de Oliveira Prudente; Luciano Vilela Paiva
Journal:  BMC Genomics       Date:  2019-11-06       Impact factor: 3.969

8.  Full-Length Transcriptome Analysis of the ABCB, PIN/PIN-LIKES, and AUX/LAX Families Involved in Somatic Embryogenesis of Lilium pumilum DC. Fisch.

Authors:  Shengli Song; Zhiping Wang; Yamin Ren; Hongmei Sun
Journal:  Int J Mol Sci       Date:  2020-01-10       Impact factor: 5.923

9.  Improvement of a Genetic Transformation System and Preliminary Study on the Function of LpABCB21 and LpPILS7 Based on Somatic Embryogenesis in Lilium pumilum DC. Fisch.

Authors:  Shengli Song; Rui Yan; Chunxia Wang; Jinxia Wang; Hongmei Sun
Journal:  Int J Mol Sci       Date:  2020-09-16       Impact factor: 5.923

10.  Direct and Indirect Somatic Embryogenesis Induction in Camellia oleifera Abel.

Authors:  Ming Zhang; Aibin Wang; Mou Qin; Xuejing Qin; Shiwen Yang; Shuchai Su; Yongjiang Sun; Lingyun Zhang
Journal:  Front Plant Sci       Date:  2021-03-26       Impact factor: 5.753

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