Regulation of differential growth in the apical hook of Arabidopsis

Development ◽  
1999 ◽  
Vol 126 (16) ◽  
pp. 3661-3668 ◽  
Author(s):  
V. Raz ◽  
J.R. Ecker

Arabidopsis seedlings develop a hook-like structure at the apical part of the hypocotyl when grown in darkness. Differential cell growth processes result in the curved hypocotyl hook. Time-dependent analyses of the hypocotyl showed that the apical hook is formed during an early phase of seedling growth and is maintained in a sequential phase by a distinct process. Based on developmental genetic analyses of hook-affected mutants, we show that the hookless mutants (hls1, cop2) are involved in an early aspect of hook development. From time-dependent analyses of ethylene-insensitive mutants, later steps in hook maintenance were found to be ethylene sensitive. Regulation of differential growth was further studied through examination of the spatial pattern of expression of two hormone-regulated genes: an ethylene biosynthetic enzyme and the ethylene receptor ETR1. Accumulation of mRNA for AtACO2, a novel ACC (1-aminocyclopropane-1-carboxylic acid) oxidase gene, occurred within cells predominantly located on the outer-side of the hook and was tightly correlated with ethylene-induced exaggeration in the curvature of the hook. ETR1 expression in the apical hook, however, was reduced by ethylene treatment. Based on the expression pattern of ETR1 and AtACO2 in the hook-affected mutants, a model for hook development and maintenance is proposed.

2021 ◽  
Author(s):  
Jia Deng ◽  
Xiangfeng Wang ◽  
Ziqiang Liu ◽  
Tonglin Mao

AbstractThe unique apical hook in dicotyledonous plants protects the shoot apical meristem and cotyledons when seedlings emerge through the soil. Its formation involves differential cell growth under the coordinated control of plant hormones, especially ethylene and auxin. Microtubules are essential players in plant cell growth that are regulated by multiple microtubule-associated proteins (MAPs). However, the role and underlying mechanisms of MAP-microtubule modules in differential cell growth are poorly understood. In this study, we found that the previously uncharacterized Arabidopsis MAP WAVE-DAMPENED2-LIKE4 (WDL4) protein plays a positive role in apical hook opening. WDL4 exhibits a temporal expression pattern during hook development in dark-grown seedlings that is directly regulated by ethylene signaling. WDL4 mutants showed a delayed hook opening phenotype while overexpression of WDL4 resulted in enhanced hook opening. In particular, wdl4-1 mutants exhibited stronger auxin accumulation in the concave side of the apical hook. Furthermore, the regulation of the auxin maxima and trafficking of the auxin efflux carriers PIN-FORMED1 (PIN1) and PIN7 in the hook region is critical for WDL4-mediated hook opening. Together, our study demonstrates that WDL4 positively regulates apical hook opening by modulating auxin distribution, thus unraveling a mechanism for MAP-mediated differential plant cell growth.


Nature ◽  
2019 ◽  
Vol 568 (7751) ◽  
pp. 240-243 ◽  
Author(s):  
Min Cao ◽  
Rong Chen ◽  
Pan Li ◽  
Yongqiang Yu ◽  
Rui Zheng ◽  
...  

Zootaxa ◽  
2016 ◽  
Vol 4205 (6) ◽  
pp. 593
Author(s):  
CHENG-QUAN CAO ◽  
JIAN-PING SHI ◽  
ZHAN YIN

Two new species of the genus Sphingonotus Fieber, 1852, namely Sphingonotus taiwanensis sp. nov. and Sphingonotus zhongningensis sp. nov. are described in this paper from China. The new species Sphingonotus taiwanensis sp. nov. is similar to Sphingonotus nebulosus (Fiescher-Waldheim, 1846), but differs from the latter by interspace of mesosternum wider, width 1.8 times the length; hind femur pale red on inner side; hind tibia pale red, with 13 spines on inner side and 10 spines on outer side; hind wing pale yellow at base. The new species Sphingonotus zhongningensis sp. nov. is similar to Sphingonotus salinus (Pallas, 1773), but differs from the latter in: vertical diameter of eye 1.3 times horizontal diameter; metazona of pronotum is 2.0 times prozona in length; hind tibiae with 13 spines on inner side and 12 spines on outer side; black band of hind wing wider in the middle, apical part not narrowed; black band of hind wing in the apical part larger, not divided into two.        The type specimens are deposited in the Taiwan Agricultural Research of Institute (TARI), Taichung Taiwan, China and in the College of Plant Protection, China Agricultural University, Beijing, China respectively. 


2020 ◽  
Vol 21 (17) ◽  
pp. 6438
Author(s):  
Miriam Führer ◽  
Angelika Gaidora ◽  
Peter Venhuizen ◽  
Jedrzej Dobrogojski ◽  
Chloé Béziat ◽  
...  

Plants adjust their architecture to a constantly changing environment, requiring adaptation of differential growth. Despite their importance, molecular switches, which define growth transitions, are largely unknown. Apical hook development in dark grown Arabidopsis thaliana (A. thaliana) seedlings serves as a suitable model for differential growth transition in plants. Here, we show that the phytohormone auxin counteracts the light-induced growth transition during apical hook opening. We, subsequently, identified genes which are inversely regulated by light and auxin. We used in silico analysis of the regulatory elements in this set of genes and subsequently used natural variation in gene expression to uncover correlations between underlying transcription factors and the in silico predicted target genes. This approach uncovered that MADS box transcription factor AGAMOUS-LIKE 8 (AGL8)/FRUITFULL (FUL) modulates apical hook opening. Our data shows that transient FUL expression represses the expression of growth stimulating genes during early phases of apical hook development and therewith guards the transition to growth promotion for apical hook opening. Here, we propose a role for FUL in setting tissue identity, thereby regulating differential growth during apical hook development.


2013 ◽  
pp. 337-343
Author(s):  
B.G. Defilippi ◽  
P. Muñoz-Robredo ◽  
M. Madariaga ◽  
O. Gudenschwager ◽  
M. González-Agüero

2013 ◽  
Vol 4 ◽  
Author(s):  
Mohamad Abbas ◽  
David Alabadí ◽  
Miguel A. Blázquez

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