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Control of Stomatal Distribution on the Arabidopsis Leaf Surface
Jeanette A. Nadeau,Fred D. Sack*
Stomata regulate gas exchange and are distributed across
the leaf epidermis with characteristic spacing. Arabidopsis
stomataare produced by asymmetric cell divisions. Mutations in the
geneTOO MANY MOUTHS (TMM) disrupt patterning by
randomizing the planeof formative asymmetric divisions and by
permitting ectopic divisions.TMM encodes a leucine-rich
repeat-containing receptor-like proteinexpressed in
proliferative postprotodermal cells. TMM appearsto function in a
position-dependent signaling pathway that controlsthe plane of
patterning divisions as well as the balance betweenstem cell renewal
and differentiation in stomatal and epidermaldevelopment.
Department of Plant Biology, Ohio State University, 1735 Neil
Avenue, Columbus, OH 43210, USA.
*
To whom correspondence should be addressed. E-mail:
sack.1{at}osu.edu
Epidermal Cell Density is Autoregulated via a Secretory Peptide, EPIDERMAL PATTERNING FACTOR 2 in Arabidopsis Leaves.
K. Hara, T. Yokoo, R. Kajita, T. Onishi, S. Yahata, K. M. Peterson, K. U. Torii, and T. Kakimoto (2009)
Plant Cell Physiol.
50, 1019-1031
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Phytochrome B Enhances Photosynthesis at the Expense of Water-Use Efficiency in Arabidopsis.
H. E. Boccalandro, M. L. Rugnone, J. E. Moreno, E. L. Ploschuk, L. Serna, M. J. Yanovsky, and J. J. Casal (2009)
Plant Physiology
150, 1083-1092
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The Arabidopsis Callose Synthase Gene GSL8 Is Required for Cytokinesis and Cell Patterning.
X.-Y. Chen, L. Liu, E. Lee, X. Han, Y. Rim, H. Chu, S.-W. Kim, F. Sack, and J.-Y. Kim (2009)
Plant Physiology
150, 105-113
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L. Serna (2009)
Plant Physiology
149, 1625-1631
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The ESCRT-Related CHMP1A and B Proteins Mediate Multivesicular Body Sorting of Auxin Carriers in Arabidopsis and Are Required for Plant Development.
C. Spitzer, F. C. Reyes, R. Buono, M. K. Sliwinski, T. J. Haas, and M. S. Otegui (2009)
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21, 749-766
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P. Ruggenthaler, D. Fichtenbauer, J. Krasensky, C. Jonak, and E. Waigmann (2009)
Plant Physiology
149, 1354-1365
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A. Pitzschke and H. Hirt (2009)
Plant Physiology
149, 606-615
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H. N. Cartwright, J. A. Humphries, and L. G. Smith (2009)
Science
323, 649-651
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Arabidopsis Stomatal Initiation Is Controlled by MAPK-Mediated Regulation of the bHLH SPEECHLESS.
G. R. Lampard, C. A. MacAlister, and D. C. Bergmann (2008)
Science
322, 1113-1116
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A. Capron, M. Gourgues, L. S. Neiva, J.-E. Faure, F. Berger, G. Pagnussat, A. Krishnan, C. Alvarez-Mejia, J.-P. Vielle-Calzada, Y.-R. Lee, et al. (2008)
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20, 3038-3049
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S. Vij, J. Giri, P. K. Dansana, S. Kapoor, and A. K. Tyagi (2008)
Mol Plant
1, 732-750
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SCREAM/ICE1 and SCREAM2 Specify Three Cell-State Transitional Steps Leading to Arabidopsis Stomatal Differentiation.
M. M. Kanaoka, L. J. Pillitteri, H. Fujii, Y. Yoshida, N. L. Bogenschutz, J. Takabayashi, J.-K. Zhu, and K. U. Torii (2008)
PLANT CELL
20, 1775-1785
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The bHLH Protein, MUTE, Controls Differentiation of Stomata and the Hydathode Pore in Arabidopsis.
L. J. Pillitteri, N. L. Bogenschutz, and K. U. Torii (2008)
Plant Cell Physiol.
49, 934-943
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A Genome-Wide Functional Investigation into the Roles of Receptor-Like Proteins in Arabidopsis.
G. Wang, U. Ellendorff, B. Kemp, J. W. Mansfield, A. Forsyth, K. Mitchell, K. Bastas, C.-M. Liu, A. Woods-Tor, C. Zipfel, et al. (2008)
Plant Physiology
147, 503-517
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MicroRNA-Mediated Regulation of Stomatal Development in Arabidopsis.
C. Kutter, H. Schob, M. Stadler, F. Meins Jr., and A. Si-Ammour (2007)
PLANT CELL
19, 2417-2429
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The secretory peptide gene EPF1 enforces the stomatal one-cell-spacing rule.
K. Hara, R. Kajita, K. U. Torii, D. C. Bergmann, and T. Kakimoto (2007)
Genes & Dev.
21, 1720-1725
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Expression of Genomic AtCYCD2;1 in Arabidopsis Induces Cell Division at Smaller Cell Sizes: Implications for the Control of Plant Growth.
The Arabidopsis D-Type Cyclin CYCD4 Controls Cell Division in the Stomatal Lineage of the Hypocotyl Epidermis.
A. Kono, C. Umeda-Hara, S. Adachi, N. Nagata, M. Konomi, T. Nakagawa, H. Uchimiya, and M. Umeda (2007)
PLANT CELL
19, 1265-1277
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Making Holes in Leaves: Promoting Cell State Transitions in Stomatal Development.
Visualizing Plant Development and Gene Expression in Three Dimensions Using Optical Projection Tomography.
K. Lee, J. Avondo, H. Morrison, L. Blot, M. Stark, J. Sharpe, A. Bangham, and E. Coen (2006)
PLANT CELL
18, 2145-2156
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Analysis of the Subcellular Localization, Function, and Proteolytic Control of the Arabidopsis Cyclin-Dependent Kinase Inhibitor ICK1/KRP1.
M. J. Jakoby, C. Weinl, S. Pusch, S. J.H. Kuijt, T. Merkle, N. Dissmeyer, and A. Schnittger (2006)
Plant Physiology
141, 1293-1305
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Microtubule arrays and Arabidopsis stomatal development.
Systemic signalling of environmental cues in Arabidopsis leaves.
S. A. Coupe, B. G. Palmer, J. A. Lake, S. A. Overy, K. Oxborough, F. I. Woodward, J. E. Gray, and W. P. Quick (2006)
J. Exp. Bot.
57, 329-341
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Evolutionary Expansion, Gene Structure, and Expression of the Rice Wall-Associated Kinase Gene Family.
S. Zhang, C. Chen, L. Li, L. Meng, J. Singh, N. Jiang, X.-W. Deng, Z.-H. He, and P. G. Lemaux (2005)
Plant Physiology
139, 1107-1124
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The Arabidopsis R2R3 MYB Proteins FOUR LIPS and MYB88 Restrict Divisions Late in the Stomatal Cell Lineage.
L. B. Lai, J. A. Nadeau, J. Lucas, E.-K. Lee, T. Nakagawa, L. Zhao, M. Geisler, and F. D. Sack (2005)
PLANT CELL
17, 2754-2767
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Stomatal Patterning and Differentiation by Synergistic Interactions of Receptor Kinases.
E. D. Shpak, J. M. McAbee, L. J. Pillitteri, and K. U. Torii (2005)
Science
309, 290-293
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Phylogenomic Analysis of the Receptor-Like Proteins of Rice and Arabidopsis.
L. K. Fritz-Laylin, N. Krishnamurthy, M. Tor, K. V. Sjolander, and J. D.G. Jones (2005)
Plant Physiology
138, 611-623
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Novel Functions of Plant Cyclin-Dependent Kinase Inhibitors, ICK1/KRP1, Can Act Non-Cell-Autonomously and Inhibit Entry into Mitosis.
C. Weinl, S. Marquardt, S. J.H. Kuijt, M. K. Nowack, M. J. Jakoby, M. Hulskamp, and A. Schnittger (2005)
PLANT CELL
17, 1704-1722
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Structure-Function Analysis of Cf-9, a Receptor-Like Protein with Extracytoplasmic Leucine-Rich Repeats.
R. A.L. van der Hoorn, B. B.H. Wulff, S. Rivas, M. C. Durrant, A. van der Ploeg, P. J.G.M. de Wit, and J. D.G. Jones (2005)
PLANT CELL
17, 1000-1015
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New insights into plant development in New England.
DNA Replication Licensing Affects Cell Proliferation or Endoreplication in a Cell Type-Specific Manner.
M. d. M. Castellano, M. B. Boniotti, E. Caro, A. Schnittger, and C. Gutierrez (2004)
PLANT CELL
16, 2380-2393
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Identification of Genes Required for Embryo Development in Arabidopsis.
I. Tzafrir, R. Pena-Muralla, A. Dickerman, M. Berg, R. Rogers, S. Hutchens, T. C. Sweeney, J. McElver, G. Aux, D. Patton, et al. (2004)
Plant Physiology
135, 1206-1220
|Abstract »|Full Text »|PDF »
Stomatal Development and Pattern Controlled by a MAPKK Kinase.
D. C. Bergmann, W. Lukowitz, and C. R. Somerville (2004)
Science
304, 1494-1497
|Abstract »|Full Text »|PDF »
Arabidopsis Downy Mildew Resistance Gene RPP27 Encodes a Receptor-Like Protein Similar to CLAVATA2 and Tomato Cf-9.
M. Tor, D. Brown, A. Cooper, A. Woods-Tor, K. Sjolander, J. D.G. Jones, and E. B. Holub (2004)
Plant Physiology
135, 1100-1112
|Abstract »|Full Text »|PDF »
B1-Type Cyclin-Dependent Kinases Are Essential for the Formation of Stomatal Complexes in Arabidopsis thaliana.
V. Boudolf, R. Barroco, J. d. A. Engler, A. Verkest, T. Beeckman, M. Naudts, D. Inze, and L. De Veylder (2004)
PLANT CELL
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Transient Exposure to Ethylene Stimulates Cell Division and Alters the Fate and Polarity of Hypocotyl Epidermal Cells.
H. Kazama, H. Dan, H. Imaseki, and G. O. Wasteneys (2004)
Plant Physiology
134, 1614-1623
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Tissue-Specific and Developmentally Regulated Expression of a Cluster of Tandemly Arrayed Cell Wall-Associated Kinase-Like Kinase Genes in Arabidopsis.
J. A. Verica, L. Chae, H. Tong, P. Ingmire, and Z.-H. He (2003)
Plant Physiology
133, 1732-1746
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SCD1 is required for cell cytokinesis and polarized cell expansion in Arabidopsis thaliana.
T. G. Falbel, L. M. Koch, J. A. Nadeau, J. M. Segui-Simarro, F. D. Sack, and S. Y. Bednarek (2003)
Development
130, 4011-4024
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