Very-long-chain fatty acids restrict regeneration capacity by confining pericycle competence for callus formation in Arabidopsis. 2016

Baoshuan Shang, and Chongyi Xu, and Xixi Zhang, and Huifen Cao, and Wei Xin, and Yuxin Hu
Key Laboratory of Plant Molecular Physiology, CAS Center for Excellence in Molecular Plant Sciences, Institute of Botany, Chinese Academy of Sciences, Beijing 100093, China; University of the Chinese Academy of Sciences, Beijing 100049, China;

The already differentiated organs in plants have a remarkable capacity to regenerate new individuals under culture conditions. Plant in vitro regeneration practically starts with the induction of a pluripotent cell mass, the callus, from detached organs on auxin-rich callus-inducing medium (CIM), which is generally required for subsequent regeneration of new bodies. Recent studies show that CIM-induced callus formation occurs from the pericycle or pericycle-like cells through a root developmental pathway, whereas the signals involved in governing callus-forming capacity of pericycle cells remain unknown. Here we report that very-long-chain fatty acids (VLCFAs) play a critical role in confining the pericycle competence for callus formation and thus the regeneration capacity of Arabidopsis By genetic screening, we identified the callus formation-related 1 (cfr1) mutant, which bypasses the inhibition of callus-forming capacity in roots by solitary-root (slr/iaa14). We show that CFR1 encodes 3-ketoacyl-CoA synthase 1 (KCS1), which catalyzes a rate-limiting step of VLCFA biosynthesis. Our biochemical and genetic analyses demonstrate that VLCFAs restrict the pericycle competence for callus formation, at least in part, by regulating the transcription of Aberrant Lateral Root Formation 4 (ALF4). Moreover, we provide evidence that VLCFAs act as cell layer signals to mediate the pericycle competence for callus formation. Taken together, our results identify VLCFAs or their derivatives as the confining signals for mediating the pericycle competence for callus formation and thus the regeneration capacity of plant organs.

UI MeSH Term Description Entries
D005227 Fatty Acids Organic, monobasic acids derived from hydrocarbons by the equivalent of oxidation of a methyl group to an alcohol, aldehyde, and then acid. Fatty acids are saturated and unsaturated (FATTY ACIDS, UNSATURATED). (Grant & Hackh's Chemical Dictionary, 5th ed) Aliphatic Acid,Esterified Fatty Acid,Fatty Acid,Fatty Acids, Esterified,Fatty Acids, Saturated,Saturated Fatty Acid,Aliphatic Acids,Acid, Aliphatic,Acid, Esterified Fatty,Acid, Saturated Fatty,Esterified Fatty Acids,Fatty Acid, Esterified,Fatty Acid, Saturated,Saturated Fatty Acids
D017360 Arabidopsis A plant genus of the family BRASSICACEAE that contains ARABIDOPSIS PROTEINS and MADS DOMAIN PROTEINS. The species A. thaliana is used for experiments in classical plant genetics as well as molecular genetic studies in plant physiology, biochemistry, and development. Arabidopsis thaliana,Cress, Mouse-ear,A. thaliana,A. thalianas,Arabidopses,Arabidopsis thalianas,Cress, Mouse ear,Cresses, Mouse-ear,Mouse-ear Cress,Mouse-ear Cresses,thaliana, A.,thaliana, Arabidopsis,thalianas, A.
D018517 Plant Roots The usually underground portions of a plant that serve as support, store food, and through which water and mineral nutrients enter the plant. (From American Heritage Dictionary, 1982; Concise Dictionary of Biology, 1990) Plant Bulbs,Plant Root,Bulb, Plant,Bulbs, Plant,Plant Bulb,Root, Plant,Roots, Plant
D029681 Arabidopsis Proteins Proteins that originate from plants species belonging to the genus ARABIDOPSIS. The most intensely studied species of Arabidopsis, Arabidopsis thaliana, is commonly used in laboratory experiments. Arabidopsis thaliana Proteins,Thale Cress Proteins,Proteins, Arabidopsis thaliana,thaliana Proteins, Arabidopsis

Related Publications

Baoshuan Shang, and Chongyi Xu, and Xixi Zhang, and Huifen Cao, and Wei Xin, and Yuxin Hu
October 2011, Journal of cell science,
Baoshuan Shang, and Chongyi Xu, and Xixi Zhang, and Huifen Cao, and Wei Xin, and Yuxin Hu
July 2022, Progress in lipid research,
Baoshuan Shang, and Chongyi Xu, and Xixi Zhang, and Huifen Cao, and Wei Xin, and Yuxin Hu
July 1973, Journal of bacteriology,
Baoshuan Shang, and Chongyi Xu, and Xixi Zhang, and Huifen Cao, and Wei Xin, and Yuxin Hu
July 2019, Proceedings of the National Academy of Sciences of the United States of America,
Baoshuan Shang, and Chongyi Xu, and Xixi Zhang, and Huifen Cao, and Wei Xin, and Yuxin Hu
August 2012, Genes to cells : devoted to molecular & cellular mechanisms,
Baoshuan Shang, and Chongyi Xu, and Xixi Zhang, and Huifen Cao, and Wei Xin, and Yuxin Hu
August 2018, Molecular plant,
Baoshuan Shang, and Chongyi Xu, and Xixi Zhang, and Huifen Cao, and Wei Xin, and Yuxin Hu
October 2022, Journal of experimental botany,
Baoshuan Shang, and Chongyi Xu, and Xixi Zhang, and Huifen Cao, and Wei Xin, and Yuxin Hu
January 1992, Advances in experimental medicine and biology,
Baoshuan Shang, and Chongyi Xu, and Xixi Zhang, and Huifen Cao, and Wei Xin, and Yuxin Hu
March 1999, European journal of pediatrics,
Baoshuan Shang, and Chongyi Xu, and Xixi Zhang, and Huifen Cao, and Wei Xin, and Yuxin Hu
October 2019, ACS chemical biology,
Copied contents to your clipboard!