Abstract
The specification of distinct cell types in multicellular organisms is accomplished via establishment of differential gene expression. A major question is the nature of the mechanisms that establish this differential expression in time and space. In plants, the formation of the hair and non-hair cell types in the root epidermis has been used as a model to understand regulation of cell specification. Recent findings show surprising complexity in the number and the types of regulatory interactions between the multiple transcription factor genes/proteins influencing root epidermis cell fate. Here, we describe this regulatory network and the importance of the multiple feedback loops for its establishment and maintenance.
Epidermal cell patterning in the arabidopsis root
The specification of root hair cells and non-hair cells in the Arabidopsis root is a well-studied model for understanding cell fate decisions in plants (Schiefelbein et al., 2009; Tominaga-Wada et al., 2011; Grebe, ). Newly formed epidermal cells located outside the cleft separating two adjacent underlying cortical cells (the “H” cell position) differentiate into root-hair cells, whereas epidermal cells not located over the cleft (the “N” cell position) develop into non-hair cells, due to differential cell-type-specific gene expression (Figure 1) (Cormack, ; Berger et al., ; Bruex et al., ). Genetic and molecular studies over the past 20 years have now provided a fairly clear picture of the transcriptional regulators responsible for establishing this differential cell-type gene expression. What has been surprising is the large number of regulatory mechanisms and interactions by these transcription factors in the process of root epidermal cell specification. In this mini-review, we describe the basic transcription factor components and then we outline the many categories of regulatory mechanisms and their roles in establishing the epidermal cell fates.
Figure 1
The basic components of the network
At its core, cell fate in the root epidermis is dependent on the relative abundance of a transcription factor complex consisting of three types of proteins: the Myb-domain protein WEREWOLF (WER) (Lee and Schiefelbein,
Regulatory mechanisms in the network
Lateral inhibition
The activity of the WER-bHLH-TTG complex is inhibited by a set of small, one-repeat Myb proteins, which includes CAPRICE (CPC), TRIPTYCHON (TRY), and ENHANCER OF TRY AND CPC1 (ETC1) (Wada et al., 1997; Schellmann et al., 2002; Kirik et al.,
Feedback at multiple developmental times
Although the CPC, TRY, and ETC1 genes are all positively regulated by the WER-bHLH-TTG complex, the effect on TRY is indirect because it is downstream of the N-cell regulator GL2 (Figure 1) (Simon et al., 2007). This means that TRY production will be developmentally delayed, relative to CPC and ETC1. Since the CPC/ETC1 and TRY proteins are members of different subtypes and appear to vary in their properties (Pesch and Hulskamp, 2011), this regulatory organization may generate different ratios of subtypes during epidermis development important for pattern establishment.
Positive feedback
The MYB23 protein is the Arabidopsis MYB most closely related to WER, and MYB23 is capable of substituting for WER in root hair development (Kang et al.,
Mutual reinforcing loops
The GL3 and EGL3 bHLH genes were found to be preferentially transcribed, and to have their transcripts preferentially accumulate, in the H cells rather than the N cells of the developing root epidermis, due to negative transcriptional regulation of these genes by the WER-bHLH-TTG complex (Bernhardt et al.,
Molecular trapping
The observed preferential accumulation of CPC (and presumably TRY and ETC1) in the H cells is believed to be necessary for robust pattern formation, though the mechanism responsible for causing these mobile factors to accumulate in H cells has long been a mystery. A possible explanation has recently been provided by the finding that this accumulation is EGL3 dependent (Kang et al.,
Feedback on positional signaling
The position-dependent pattern of hair and non-hair cells is dependent on signaling through the SCRAMBLED (SCM) receptor-like kinase (Kwak and Schiefelbein,
Regulation by hormones
Root hair development is affected by several plant hormones, most commonly reported for auxin and ethylene (Masucci and Schiefelbein,
Regulation by histone modification
The expression of the patterning genes and the arrangement of the root cell types are influenced by histone acetylation. Treatment of roots with trichostatin A (histone deacetylase inhibitor) or mutations in the histone deacetylase gene HDA18 cause N-position cells to become root hair cells (Xu et al., 2005). Because the HDA18 protein does not directly bind to the patterning gene promoters (Liu et al.,
Thoughts on the complexity of the network
In this minireview, we have highlighted the multitude of regulatory mechanisms that are employed to control the relative abundance of the critical transcription factors in epidermal cell specification. Considering these many components and interactions (Figure 1), it is appropriate to wonder why this system has evolved such complexity to control a seemingly simple case of cell fate specification. One possible explanation is that the complex regulatory interactions reflect a requirement for robustness; to ensure that once a cell fate decision is made, that this decision is fully adopted and is not allowed to be altered at any step (Barkai and Leibler,
Conflict of interest statement
The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.
Statements
Acknowledgments
We thank members of our research laboratory for helpful discussions. We apologize to those whose work could not be cited due to space constraints. Research in our group is supported by grants from the National Science Foundation (IOS-0723493 and IOS-1121602).
Conflict of interest
The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.
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Summary
Keywords
root hairs, transcription factors, pattern formation, feedback loops, Arabidopsis thaliana
Citation
Schiefelbein J, Huang L and Zheng X (2014) Regulation of epidermal cell fate in Arabidopsis roots: the importance of multiple feedback loops. Front. Plant Sci. 5:47. doi: 10.3389/fpls.2014.00047
Received
26 December 2013
Accepted
30 January 2014
Published
17 February 2014
Volume
5 - 2014
Edited by
Shucai Wang, Northeast Normal University, China
Reviewed by
Shu-Nong Bai, Peking University, China; Ross Sozzani, North Carolina State Unversity, USA
Copyright
© 2014 Schiefelbein, Huang and Zheng.
This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
*Correspondence: John Schiefelbein, Department of Molecular, Cellular, and Developmental Biology, University of Michigan, 830 North University Avenue, Ann Arbor, MI 48109, USA e-mail: schiefel@umich.edu
This article was submitted to Plant Cell Biology, a section of the journal Frontiers in Plant Science.
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