Abstract
AbstractAuxins are one of the most important and studied phytohormones in nature. Auxin signaling and perception take place in the cytosol, where the auxin is sensed. Then, in the nucleus, the auxin response factors (ARF) promote the expression of early-response genes. It is well known that not all plants respond to the same amount and type of auxins and that the response can be very different even among plants of the same species, as we present here. Here we investigate the behavior of ARF in response to various auxins in Agave angustifolia Haw., A. fourcroydes Lem. and A. tequilana Weber var. Azul. By screening the available database of A. tequilana genes, we have identified 32 ARF genes with high sequence identity in the conserved domains, grouped into three main clades. A phylogenetic tree was inferred from alignments of the 32 Agave ARF protein sequences and the evolutionary relationship with other species was analyzed. AteqARF 4, 15, 21, and 29 were selected as a representative diverse sample coming from each of the different subclades that comprise the two main clades of the inferred phylogenetic reconstruction. These ARFs showed differential species-specific expression patterns in the presence of indole-3-acetic acid (IAA) and 2,4-dichlorophenoxyacetic acid (2,4-D). Interestingly, A. angustifolia showed different phenotypes in the presence and absence of auxins. In the absence of auxin, A. angustifolia produces roots, while shoots are developed in the presence of IAA. However, in the presence of 2,4-D, the plant meristem converts into callus. According to our results, it is likely that AteqARF15 participates in this outcome.
Funder
Consejo Nacional de Ciencia y Tecnología
Fundación Marcos Moshinsky
Publisher
Springer Science and Business Media LLC
Reference85 articles.
1. Bennett, T. & Leyser, O. In Auxin and Its Role in Plant Development (eds. Eva Zažímalová, Jan Petrášek, & Eva Benková) Ch. 1, 3–19 (Springer Vienna, 2014).
2. Napier, R. M. In Auxin and Its Role in Plant Development (eds. Eva Zažímalová, Jan Petrášek, & Eva Benková) Ch. 6, 101–116 (Springer Vienna, 2014).
3. Calderón Villalobos, L. I. A. et al. A combinatorial TIR1/AFB–Aux/IAA co-receptor system for differential sensing of auxin. Nat. Chem. Biol. 8, 477–485, https://doi.org/10.1038/nchembio.926 (2012).
4. Kieffer, M., Neve, J. & Kepinski, S. Defining auxin response contexts in plant development. Current Opinion in Plant Biology 13, 12–20, https://doi.org/10.1016/j.pbi.2009.10.006 (2010).
5. Tan, X. et al. Mechanism of auxin perception by the TIR1 ubiquitin ligase. Nature 446, 640–645, http://www.nature.com/nature/journal/v446/n7136/suppinfo/nature05731_S1.html (2007).
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