scholarly journals The Multiple Roles of Arabinogalactan Proteins in Plant Development

2000 ◽  
Vol 122 (1) ◽  
pp. 3-10 ◽  
Author(s):  
Anna Majewska-Sawka ◽  
Eugene A. Nothnagel
2012 ◽  
Vol 160 (2) ◽  
pp. 978-989 ◽  
Author(s):  
Wei Deng ◽  
Guanqun Chen ◽  
Fred Peng ◽  
Martin Truksa ◽  
Crystal L. Snyder ◽  
...  

Development ◽  
2002 ◽  
Vol 129 (5) ◽  
pp. 1085-1094 ◽  
Author(s):  
Xuemei Chen ◽  
Jun Liu ◽  
Yulan Cheng ◽  
Dongxuan Jia

Four classes of floral homeotic MADS domain proteins specify the identities of the four organ types in an Arabidopsis flower. While the activities of the MADS domain proteins are essentially confined to the flower or to the inflorescence, several genes, such as APETALA2, HUA1 and HUA2, also act outside the flower in addition to their organ identity functions inside the flower. We identified a new gene, HUA ENHANCER 1 (HEN1) from a sensitized genetic screen in the hua1-1 hua2-1 background that is compromised in floral homeotic C function. We showed that HEN1, like the C function gene AGAMOUS, acts to specify reproductive organ identities and to repress A function. HEN1 also shares AG’s non-homeotic function in controlling floral determinacy. HEN1 may achieve these functions by regulating the expression of AG. hen1 single mutants exhibit pleiotropic phenotypes such as reduced organ size, altered rosette leaf shape and increased number of coflorescences, during most stages of development. Therefore, HEN1, like the A function gene AP2, plays multiple roles in plant development as well as acting in organ identity specification in the flower. HEN1 codes for a novel protein and is expressed throughout the plant.


Author(s):  
K. K. Soni ◽  
J. Hwang ◽  
V. P. Dravid ◽  
T. O. Mason ◽  
R. Levi-Setti

ZnO varistors are made by mixing semiconducting ZnO powder with powders of other metal oxides e.g. Bi2O3, Sb2O3, CoO, MnO2, NiO, Cr2O3, SiO2 etc., followed by conventional pressing and sintering. The non-linear I-V characteristics of ZnO varistors result from the unique properties that the grain boundaries acquire as a result of dopant distribution. Each dopant plays important and sometimes multiple roles in improving the properties. However, the chemical nature of interfaces in this material is formidable mainly because often trace amounts of dopants are involved. A knowledge of the interface microchemistry is an essential component in the ‘grain boundary engineering’ of materials. The most important ingredient in this varistor is Bi2O3 which envelopes the ZnO grains and imparts high resistance to the grain boundaries. The solubility of Bi in ZnO is very small but has not been experimentally determined as a function of temperature.In this study, the dopant distribution in a commercial ZnO varistor was characterized by a scanning ion microprobe (SIM) developed at The University of Chicago (UC) which offers adequate sensitivity and spatial resolution.


2014 ◽  
Author(s):  
Jeremy D. Gretton ◽  
Vanessa Sawicki ◽  
Leandre R. Fabrigar ◽  
Duane T. Wegener ◽  
Richard E. Petty ◽  
...  
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