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Multifaceted Roles of Transcription Factors During Plant Embryogenesis

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Journal Front Plant Sci
Date 2024 Jan 18
PMID 38235196
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Abstract

Transcription factors (TFs) are diverse groups of regulatory proteins. Through their specific binding domains, TFs bind to their target genes and regulate their expression, therefore TFs play important roles in various growth and developmental processes. Plant embryogenesis is a highly regulated and intricate process during which embryos arise from various sources and undergo development; it can be further divided into zygotic embryogenesis (ZE) and somatic embryogenesis (SE). TFs play a crucial role in the process of plant embryogenesis with a number of them acting as master regulators in both ZE and SE. In this review, we focus on the master TFs involved in embryogenesis such as BABY BOOM (BBM) from the APETALA2Ethylene-Responsive Factor (AP2/ERF) family, WUSCHEL and WUSCHEL-related homeobox (WOX) from the homeobox family, LEAFY COTYLEDON 2 (LEC2) from the B3 family, AGAMOUS-Like 15 (AGL15) from the MADS family and LEAFY COTYLEDON 1 (LEC1) from the Nuclear Factor Y (NF-Y) family. We aim to present the recent progress pertaining to the diverse roles these master TFs play in both ZE and SE in Arabidopsis, as well as other plant species including crops. We also discuss future perspectives in this context.

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References
1.
Debernardi J, Tricoli D, Ercoli M, Hayta S, Ronald P, Palatnik J . A GRF-GIF chimeric protein improves the regeneration efficiency of transgenic plants. Nat Biotechnol. 2020; 38(11):1274-1279. PMC: 7642171. DOI: 10.1038/s41587-020-0703-0. View

2.
Wendrich J, Weijers D . The Arabidopsis embryo as a miniature morphogenesis model. New Phytol. 2013; 199(1):14-25. DOI: 10.1111/nph.12267. View

3.
de Vries S, Weijers D . Plant embryogenesis. Curr Biol. 2017; 27(17):R870-R873. DOI: 10.1016/j.cub.2017.05.026. View

4.
Kong J, Martin-Ortigosa S, Finer J, Orchard N, Gunadi A, Batts L . Overexpression of the Transcription Factor Improves Transformation of Dicot and Monocot Species. Front Plant Sci. 2020; 11:572319. PMC: 7585916. DOI: 10.3389/fpls.2020.572319. View

5.
Mozgova I, Kohler C, Hennig L . Keeping the gate closed: functions of the polycomb repressive complex PRC2 in development. Plant J. 2015; 83(1):121-32. DOI: 10.1111/tpj.12828. View