Literature DB >> 21421413

Molecular cloning and expression of heteromeric ACCase subunit genes from Jatropha curcas.

Keyu Gu1, Huihui Chiam, Dongsheng Tian, Zhongchao Yin.   

Abstract

Acetyl-CoA carboxylase (ACCase) catalyzes the biotin-dependent carboxylation of acetyl-CoA to produce malonyl-CoA, which is the essential first step in the biosynthesis of long-chain fatty acids. ACCase exists as a multi-subunit enzyme in most prokaryotes and the chloroplasts of most plants and algae, while it is present as a multi-domain enzyme in the endoplasmic reticulum of most eukaryotes. The heteromeric ACCase of higher plants consists of four subunits: an α-subunit of carboxyltransferase (α-CT, encoded by accA gene), a biotin carboxyl carrier protein (BCCP, encoded by accB gene), a biotin carboxylase (BC, encoded by accC gene) and a β-subunit of carboxyltransferase (β-CT, encoded by accD gene). In this study, we cloned and characterized the genes accA, accB1, accC and accD that encode the subunits of heteromeric ACCase in Jatropha (Jatropha curcas), a potential biofuel plant. The full-length cDNAs of the four subunit genes were isolated from a Jatropha cDNA library and by using 5' RACE, whereas the genomic clones were obtained from a Jatropha BAC library. They encode a 771 amino acid (aa) α-CT, a 286-aa BCCP1, a 537-aa BC and a 494-aa β-CT, respectively. The single-copy accA, accB1 and accC genes are nuclear genes, while the accD gene is located in chloroplast genome. Jatropha α-CT, BCCP1, BC and β-CT show high identity to their homologues in other higher plants at amino acid level and contain all conserved domains for ACCase activity. The accA, accB1, accC and accD genes are temporally and spatially expressed in the leaves and endosperm of Jatropha plants, which are regulated by plant development and environmental factors.
Copyright © 2011 Elsevier Ireland Ltd. All rights reserved.

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Year:  2011        PMID: 21421413     DOI: 10.1016/j.plantsci.2011.01.007

Source DB:  PubMed          Journal:  Plant Sci        ISSN: 0168-9452            Impact factor:   4.729


  13 in total

1.  The rice TAL effector-dependent resistance protein XA10 triggers cell death and calcium depletion in the endoplasmic reticulum.

Authors:  Dongsheng Tian; Junxia Wang; Xuan Zeng; Keyu Gu; Chengxiang Qiu; Xiaobei Yang; Zhiyun Zhou; Meiling Goh; Yanchang Luo; Maki Murata-Hori; Frank F White; Zhongchao Yin
Journal:  Plant Cell       Date:  2014-01-31       Impact factor: 11.277

2.  Expression of fatty acid and lipid biosynthetic genes in developing endosperm of Jatropha curcas.

Authors:  Keyu Gu; Chengxin Yi; Dongsheng Tian; Jatinder Singh Sangha; Yan Hong; Zhongchao Yin
Journal:  Biotechnol Biofuels       Date:  2012-07-18       Impact factor: 6.040

3.  A first generation microsatellite- and SNP-based linkage map of Jatropha.

Authors:  Chun Ming Wang; Peng Liu; Chengxin Yi; Keyu Gu; Fei Sun; Lei Li; Loong Chueng Lo; Xiaokun Liu; Felicia Feng; Grace Lin; Suying Cao; Yan Hong; Zhongchao Yin; Gen Hua Yue
Journal:  PLoS One       Date:  2011-08-25       Impact factor: 3.240

4.  Transcriptome of the inflorescence meristems of the biofuel plant Jatropha curcas treated with cytokinin.

Authors:  Bang-Zhen Pan; Mao-Sheng Chen; Jun Ni; Zeng-Fu Xu
Journal:  BMC Genomics       Date:  2014-11-17       Impact factor: 3.969

5.  Genome-Wide Identification and Expression Analysis of the Biotin Carboxyl Carrier Subunits of Heteromeric Acetyl-CoA Carboxylase in Gossypium.

Authors:  Yupeng Cui; Yanpeng Zhao; Yumei Wang; Zhengjie Liu; Babar Ijaz; Yi Huang; Jinping Hua
Journal:  Front Plant Sci       Date:  2017-05-01       Impact factor: 5.753

6.  Legume Cytosolic and Plastid Acetyl-Coenzyme-A Carboxylase Genes Differ by Evolutionary Patterns and Selection Pressure Schemes Acting before and after Whole-Genome Duplications.

Authors:  Anna Szczepaniak; Michał Książkiewicz; Jan Podkowiński; Katarzyna B Czyż; Marek Figlerowicz; Barbara Naganowska
Journal:  Genes (Basel)       Date:  2018-11-21       Impact factor: 4.096

7.  Development of marker-free transgenic Jatropha curcas producing curcin-deficient seeds through endosperm-specific RNAi-mediated gene silencing.

Authors:  Keyu Gu; Dongsheng Tian; Huizhu Mao; Lifang Wu; Zhongchao Yin
Journal:  BMC Plant Biol       Date:  2015-10-08       Impact factor: 4.215

Review 8.  Jatropha curcas, a biofuel crop: functional genomics for understanding metabolic pathways and genetic improvement.

Authors:  Fatemeh Maghuly; Margit Laimer
Journal:  Biotechnol J       Date:  2013-10       Impact factor: 4.677

9.  Production of marker-free transgenic Jatropha curcas expressing hybrid Bacillus thuringiensis δ-endotoxin Cry1Ab/1Ac for resistance to larvae of tortrix moth (Archips micaceanus).

Authors:  Keyu Gu; Huizhu Mao; Zhongchao Yin
Journal:  Biotechnol Biofuels       Date:  2014-05-03       Impact factor: 6.040

Review 10.  Metabolic Engineering of Microalgal Based Biofuel Production: Prospects and Challenges.

Authors:  Chiranjib Banerjee; Kashyap K Dubey; Pratyoosh Shukla
Journal:  Front Microbiol       Date:  2016-03-31       Impact factor: 5.640

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