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1.
Prep Biochem Biotechnol ; 54(7): 882-895, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38170207

ABSTRACT

In growing plant population, effect of stress is a perturb issue affecting its physiological, biochemical, yield loss and developmental growth. Protein-L-isoaspartate-O-methyltransferase (PIMT) is a broadly distributed protein repair enzyme which actuate under stressful environment or aging. Stress can mediate damage converting protein bound aspartate (Asp) residues to isoaspartate (iso-Asp). This spontaneous and deleterious conversion occurs at an elevated state of stress and aging. Iso-Asp formation is associated with protein inactivation and compromised cellular survival. PIMT can convert iso-Asp back to Asp, thus repairing and contributing to cellular survival. The present work describes the isolation, cloning, sequencing and expression of PIMT genes of Carica papaya (Cp pimt) and Ricinus communis (Rc pimt) Using gene specific primers, both the pimts were amplified from their respective cDNAs and subsequently cloned in prokaryotic expression vector pProEXHTa. BL21(DE3) strain of E. coli cells were used as expression host. The expression kinetics of both the PIMTs were studied with various concentrations of IPTG and at different time points. Finally, the PIMT supplemented BL21(DE3) cells were evaluated against different stresses in comparison to their counterparts with the empty vector control.


Subject(s)
Carica , Plant Proteins , Protein D-Aspartate-L-Isoaspartate Methyltransferase , Ricinus , Carica/genetics , Carica/enzymology , Cloning, Molecular , Escherichia coli/genetics , Escherichia coli/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism , Protein D-Aspartate-L-Isoaspartate Methyltransferase/genetics , Protein D-Aspartate-L-Isoaspartate Methyltransferase/metabolism , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Ricinus/enzymology , Ricinus/genetics , Stress, Physiological
2.
Sci Rep ; 11(1): 6913, 2021 03 25.
Article in English | MEDLINE | ID: mdl-33767251

ABSTRACT

The hydrolysis properties of lipase in castor was evaluated using two different substrate forms (tripalmitic glycerides and trioleic glycerides) to catalyze the reaction under different operational conditions. RcLipase was obtained from castor seeds and results show that RcLipase is a conservative serine lipase with a conserved catalytic center (SDH) and a conserved pentapeptide (GXSXG). This enzyme exhibited the greatest activity and tolerance to chloroform and toluene when it was expressed in Pichia pastoris GS115 at 40 ℃ and pH 8.0. Zn and Cu ions exerted obvious inhibitory effects on the enzyme, and displayed good hydrolytic activity for long-chain natural and synthetic lipids. HPLC analysis showed that this enzyme has 1,3 regioselectivity when glycerol tripalmitate and oleic acid are used as substrates. The fatty acid composition in the reaction product was 21.3% oleic acid and 79.1% sn-2 palmitic acid.


Subject(s)
Lipase/metabolism , Ricinus/enzymology , Amino Acid Sequence , Hydrolysis , Lipase/chemistry , Lipase/genetics , Lipase/isolation & purification , Oleic Acids/biosynthesis , Palmitic Acid/metabolism , Plant Proteins/chemistry , Plant Proteins/genetics , Plant Proteins/isolation & purification , Plant Proteins/metabolism , Ricinus/genetics , Saccharomycetales , Substrate Specificity
3.
Plant J ; 105(1): 182-196, 2021 01.
Article in English | MEDLINE | ID: mdl-33107656

ABSTRACT

Production of hydroxy fatty acids (HFAs) in transgenic crops represents a promising strategy to meet our demands for specialized plant oils with industrial applications. The expression of Ricinus communis (castor) OLEATE 12-HYDROXYLASE (RcFAH12) in Arabidopsis has resulted in only limited accumulation of HFAs in seeds, which probably results from inefficient transfer of HFAs from their site of synthesis (phosphatidylcholine; PC) to triacylglycerol (TAG), especially at the sn-1/3 positions of TAG. Phospholipase As (PLAs) may be directly involved in the liberation of HFAs from PC, but the functions of their over-expression in HFA accumulation and distribution at TAG in transgenic plants have not been well studied. In this work, the functions of lecithin:cholesterol acyltransferase-like PLAs (LCAT-PLAs) in HFA biosynthesis were characterized. The LCAT-PLAs were shown to exhibit homology to LCAT and mammalian lysosomal PLA2 , and to contain a conserved and functional Ser/His/Asp catalytic triad. In vitro assays revealed that LCAT-PLAs from the HFA-accumulating plant species Physaria fendleri (PfLCAT-PLA) and castor (RcLCAT-PLA) could cleave acyl chains at both the sn-1 and sn-2 positions of PC, and displayed substrate selectivity towards sn-2-ricinoleoyl-PC over sn-2-oleoyl-PC. Furthermore, co-expression of RcFAH12 with PfLCAT-PLA or RcLCAT-PLA, but not Arabidopsis AtLCAT-PLA, resulted in increased occupation of HFA at the sn-1/3 positions of TAG as well as small but insignificant increases in HFA levels in Arabidopsis seeds compared with RcFAH12 expression alone. Therefore, PfLCAT-PLA and RcLCAT-PLA may contribute to HFA turnover on PC, and represent potential candidates for engineering the production of unusual fatty acids in crops.


Subject(s)
Brassicaceae/enzymology , Phosphatidylcholine-Sterol O-Acyltransferase/metabolism , Phosphatidylcholines/metabolism , Plant Proteins/metabolism , Ricinus/enzymology , Arabidopsis/metabolism , Brassicaceae/genetics , Fatty Acids/metabolism , Lysophospholipids , Phosphatidylcholine-Sterol O-Acyltransferase/genetics , Plant Proteins/genetics , Plant Roots/metabolism , Plants, Genetically Modified , Protein Structure, Tertiary , Ricinus/genetics , Seeds/metabolism , Substrate Specificity
4.
Planta ; 252(6): 100, 2020 Nov 10.
Article in English | MEDLINE | ID: mdl-33170407

ABSTRACT

MAIN CONCLUSION: The biochemical characterization of glycolate oxidase in Ricinus communis hints to different physiological functions of the enzyme depending on the organ in which it is active. Enzymatic activities of the photorespiratory pathway are not restricted to green tissues but are present also in heterotrophic organs. High glycolate oxidase (GOX) activity was detected in the endosperm of Ricinus communis. Phylogenetic analysis of the Ricinus L-2-hydroxy acid oxidase (Rc(L)-2-HAOX) family indicated that Rc(L)-2-HAOX1 to Rc(L)-2-HAOX3 cluster with the group containing streptophyte long-chain 2-hydroxy acid oxidases, whereas Rc(L)-2-HAOX4 clusters with the group containing streptophyte GOX. Rc(L)-2-HAOX4 is the closest relative to the photorespiratory GOX genes of Arabidopsis. We obtained Rc(L)-2-HAOX4 as a recombinant protein and analyze its kinetic properties in comparison to the Arabidopsis photorespiratory GOX. We also analyzed the expression of all Rc(L)-2-HAOXs and conducted metabolite profiling of different Ricinus organs. Phylogenetic analysis indicates that Rc(L)-2-HAOX4 is the only GOX encoded in the Ricinus genome (RcGOX). RcGOX has properties resembling those of the photorespiratory GOX of Arabidopsis. We found that glycolate, the substrate of GOX, is highly abundant in non-green tissues, such as roots, embryo of germinating seeds and dry seeds. We propose that RcGOX fulfills different physiological functions depending on the organ in which it is active. In autotrophic organs it oxidizes glycolate into glyoxylate as part of the photorespiratory pathway. In fast growing heterotrophic organs, it is most probably involved in the production of serine to feed the folate pathway for special demands of those tissues.


Subject(s)
Alcohol Oxidoreductases , Genome, Plant , Photosynthesis , Ricinus , Alcohol Oxidoreductases/genetics , Genome, Plant/genetics , Photosynthesis/genetics , Phylogeny , Ricinus/classification , Ricinus/enzymology , Ricinus/genetics
5.
Plant Physiol ; 182(2): 730-738, 2020 02.
Article in English | MEDLINE | ID: mdl-31806737

ABSTRACT

In previous work, we identified a triple mutant of the castor (Ricinus communis) stearoyl-Acyl Carrier Protein desaturase (T117R/G188L/D280K) that, in addition to introducing a double bond into stearate to produce oleate, performed an additional round of oxidation to convert oleate to a trans allylic alcohol acid. To determine the contributions of each mutation, in this work we generated individual castor desaturase mutants carrying residue changes corresponding to those in the triple mutant and investigated their catalytic activities. We observed that T117R, and to a lesser extent D280K, accumulated a novel product, namely erythro-9,10-dihydroxystearate, that we identified via its methyl ester through gas chromatography-mass spectrometry and comparison with authentic standards. The use of 18O2 labeling showed that the oxygens of both hydroxyl moieties originate from molecular oxygen rather than water. Incubation with an equimolar mixture of 18O2 and 16O2 demonstrated that both hydroxyl oxygens originate from a single molecule of O2, proving the product is the result of dioxygenase catalysis. Using prolonged incubation, we discovered that wild-type castor desaturase is also capable of forming erythro-9,10-dihydroxystearate, which presents a likely explanation for its accumulation to ∼0.7% in castor oil, the biosynthetic origin of which had remained enigmatic for decades. In summary, the findings presented here expand the documented constellation of di-iron enzyme catalysis to include a dioxygenase reactivity in which an unactivated alkene is converted to a vicinal diol.


Subject(s)
Dioxygenases/metabolism , Mixed Function Oxygenases/genetics , Mixed Function Oxygenases/metabolism , Ricinus/enzymology , Stearic Acids/metabolism , Castor Oil/chemistry , Catalysis , Dioxygenases/chemistry , Gas Chromatography-Mass Spectrometry , Mixed Function Oxygenases/chemistry , Mutation , Oleic Acid/chemistry , Oleic Acid/metabolism , Oxidation-Reduction , Oxygen/metabolism , Propanols/metabolism , Ricinus/genetics , Ricinus/metabolism , Stearic Acids/chemistry
6.
Biotechnol Bioeng ; 115(2): 444-452, 2018 02.
Article in English | MEDLINE | ID: mdl-28976546

ABSTRACT

Microbial conversion of renewable carbon sources to free fatty acids has attracted significant attention in recent years. Accumulation of free fatty acids in Escherichia coli by overexpression of an acyl-ACP thioesterase which can break the fatty acid elongation has been well established. Various efforts have been made to increase fatty acid production in E. coli by enhancing the enzymes involved in the fatty acid synthesis cycle or host strain manipulations. The current study focused on the effect of NADPH availability on free fatty acids (FFAs) productivity. There are two reduction steps in the fatty acid elongation cycle which are catalyzed by beta keto-ACP reductase (FabG) and enoyl-ACP reductase (FabI), respectively. It is reported that FabI can use either NADH or NADPH as cofactor, while FabG only uses NADPH in E. coli. Fatty acid production dropped dramatically in the glucose-6-phosphate dehydrogenase (encoded by the zwf gene) deficient strain. Similarly, the pntB (which encodes one of the subunit of proton-translocating membrane bounded transhydrogenase PntAB) and udhA (which encodes the energy dependent cytoplasmic transhydrogenase UdhA) double mutant strain also showed an 88.8% decrease in free fatty acid production. Overexpression of PntAB and NadK restored the fatty acid production capability of these two mutant strains. These results indicated that the availability of NADPH played a very important role in fatty acid production.


Subject(s)
Escherichia coli/metabolism , Fatty Acids, Nonesterified/metabolism , NADP/metabolism , Escherichia coli/enzymology , Escherichia coli/genetics , Fatty Acids, Nonesterified/analysis , NADP Transhydrogenases/genetics , NADP Transhydrogenases/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Ricinus/enzymology , Ricinus/genetics , Thiolester Hydrolases/genetics , Thiolester Hydrolases/metabolism
7.
FEBS Lett ; 591(23): 3872-3880, 2017 12.
Article in English | MEDLINE | ID: mdl-29110302

ABSTRACT

The sucrose synthase (SUS) interactome of developing castor oilseeds (COS; Ricinus communis) was assessed using coimmunoprecipitation (co-IP) with anti-(COS RcSUS1)-IgG followed by proteomic analysis. A 41-kDa polypeptide (p41) that coimmunoprecipitated with RcSUS1 from COS extracts was identified as reversibly glycosylated polypeptide-1 (RcRGP1) by LC-MS/MS and anti-RcRGP1 immunoblotting. Reciprocal Far-western immunodot blotting corroborated the specific interaction between RcSUS1 and RcRGP1. Co-IP using anti-(COS RcSUS1)-IgG and clarified extracts from other developing seeds as well as cluster (proteoid) roots of white lupin and Harsh Hakea consistently recovered 90 kDa SUS polypeptides along with p41/RGP as a SUS interactor. The results suggest that SUS interacts with RGP in diverse sink tissues to channel UDP-glucose derived from imported sucrose into hemicellulose and/or glycoprotein/glycolipid biosynthesis.


Subject(s)
Glucosyltransferases/isolation & purification , Plant Proteins/isolation & purification , Ricinus communis/chemistry , Ricinus communis/enzymology , Ricinus/chemistry , Ricinus/enzymology , Blotting, Far-Western , Ricinus communis/genetics , Glucosyltransferases/chemistry , Glucosyltransferases/genetics , Glycoproteins/chemistry , Glycoproteins/genetics , Glycoproteins/isolation & purification , Glycosylation , Immunoprecipitation , Phylogeny , Plant Proteins/chemistry , Plant Proteins/genetics , Protein Interaction Mapping , Proteomics , Ricinus/genetics , Tandem Mass Spectrometry
8.
Plant Physiol ; 174(2): 1012-1027, 2017 Jun.
Article in English | MEDLINE | ID: mdl-28363991

ABSTRACT

Phosphoenolpyruvate carboxylase (PEPC) is a tightly controlled cytosolic enzyme situated at a crucial branch point of central plant metabolism. In developing castor oil seeds (Ricinus communis) a novel, allosterically desensitized 910-kD Class-2 PEPC hetero-octameric complex, arises from a tight interaction between 107-kD plant-type PEPC and 118-kD bacterial-type (BTPC) subunits. The native Ca2+-dependent protein kinase (CDPK) responsible for in vivo inhibitory phosphorylation of Class-2 PEPC's BTPC subunit's at Ser-451 was highly purified from COS and identified as RcCDPK1 (XP_002526815) by mass spectrometry. Heterologously expressed RcCDPK1 catalyzed Ca2+-dependent, inhibitory phosphorylation of BTPC at Ser-451 while exhibiting: (i) a pair of Ca2+ binding sites with identical dissociation constants of 5.03 µM, (ii) a Ca2+-dependent electrophoretic mobility shift, and (iii) a marked Ca2+-independent hydrophobicity. Pull-down experiments established the Ca2+-dependent interaction of N-terminal GST-tagged RcCDPK1 with BTPC. RcCDPK1-Cherry localized to the cytosol and nucleus of tobacco bright yellow-2 cells, but colocalized with mitochondrial-surface associated BTPC-enhanced yellow fluorescent protein when both fusion proteins were coexpressed. Deletion analyses demonstrated that although its N-terminal variable domain plays an essential role in optimizing Ca2+-dependent RcCDPK1 autophosphorylation and BTPC transphosphorylation activity, it is not critical for in vitro or in vivo target recognition. Arabidopsis (Arabidopsis thaliana) CPK4 and soybean (Glycine max) CDPKß are RcCDPK1 orthologs that effectively phosphorylated castor BTPC at Ser-451. Overall, the results highlight a potential link between cytosolic Ca2+ signaling and the posttranslational control of respiratory CO2 refixation and anaplerotic photosynthate partitioning in support of storage oil and protein biosynthesis in developing COS.


Subject(s)
Castor Oil/metabolism , Phosphoenolpyruvate Carboxylase/metabolism , Protein Kinases/metabolism , Ricinus/enzymology , Seeds/metabolism , Amino Acid Sequence , Antibody Formation , Binding Sites , Biocatalysis , Biophysical Phenomena , Calcium/metabolism , Cloning, Molecular , Gene Expression Regulation, Plant , Hydrophobic and Hydrophilic Interactions , Intrinsically Disordered Proteins/metabolism , Mitochondria/metabolism , Phosphorylation , Phosphoserine/metabolism , Protein Domains , Protein Interaction Domains and Motifs , Protein Kinases/chemistry , Ricinus/embryology , Ricinus/genetics , Sequence Alignment , Substrate Specificity
9.
Toxicol Lett ; 258: 11-19, 2016 Sep 06.
Article in English | MEDLINE | ID: mdl-27298272

ABSTRACT

The plant-derived toxins ricin and abrin, operate by site-specific depurination of ribosomes, which in turn leads to protein synthesis arrest. The clinical manifestation following pulmonary exposure to these toxins is that of a severe lung inflammation and respiratory insufficiency. Deciphering the pathways mediating between the catalytic activity and the developing lung inflammation, requires a quantitative appreciation of the catalytic activity of the toxins, in-vivo. In the present study, we monitored truncated cDNA molecules which are formed by reverse transcription when a depurinated 28S rRNA serves as template. We found that maximal depurination after intranasal exposure of mice to 2LD50 ricin was reached 48h, where nearly 40% of the ribosomes have been depurinated and that depurination can be halted by post-exposure administration of anti-ricin antibodies. We next demonstrated that the effect of ricin intoxication on different cell types populating the lungs differs greatly, and that outstandingly high levels of damage (80% depurination), were observed in particular for pulmonary epithelial cells. Finally, we found that the magnitude of depurination induced by the related plant-derived toxin abrin, was significantly lower in comparison to ricin, and can be attributed mostly to reduced depurination of pulmonary epithelial cells by abrin. This study provides for the first time vital information regarding the scope and timing of the catalytic performance of ricin and abrin in the lungs of intact animals.


Subject(s)
Cytotoxins/toxicity , Lung/drug effects , Poisoning/metabolism , Protein Synthesis Inhibitors/toxicity , Respiratory Mucosa/drug effects , Ribosomes/drug effects , Ricin/toxicity , Abrin/administration & dosage , Abrin/isolation & purification , Abrin/metabolism , Abrin/toxicity , Abrus/enzymology , Administration, Intranasal , Animals , Antitoxins/therapeutic use , Cytotoxins/administration & dosage , Cytotoxins/antagonists & inhibitors , Cytotoxins/metabolism , DNA, Complementary/metabolism , Female , Flow Cytometry , Lethal Dose 50 , Lung/metabolism , Lung/pathology , Mice , Pneumonia/etiology , Pneumonia/prevention & control , Poisoning/drug therapy , Poisoning/pathology , Poisoning/physiopathology , Protein Synthesis Inhibitors/administration & dosage , Protein Synthesis Inhibitors/chemistry , Protein Synthesis Inhibitors/metabolism , Purines/metabolism , RNA, Ribosomal, 28S/metabolism , Respiratory Insufficiency/etiology , Respiratory Insufficiency/prevention & control , Respiratory Mucosa/metabolism , Respiratory Mucosa/pathology , Ribosomes/enzymology , Ribosomes/metabolism , Ricin/administration & dosage , Ricin/antagonists & inhibitors , Ricin/metabolism , Ricinus/enzymology
11.
Biotechnol Bioeng ; 112(12): 2618-23, 2015 Dec.
Article in English | MEDLINE | ID: mdl-26084339

ABSTRACT

The native yeast type I fatty acid synthase (FAS) is a complex, rigid enzyme, and challenging to engineer for the production of medium- or short-chain fatty acids. Introduction of a type II FAS is a promising alternative as it allows expression control for each discrete enzyme and the addition of heterologous thioesterases. In this study, the native Saccharomyces cerevisiae FAS was functionally replaced by the Escherichia coli type II FAS (eFAS) system. The E. coli acpS + acpP (together), fabB, fabD, fabG, fabH, fabI, fabZ, and tesA were expressed in individual S. cerevisiae strains, and enzyme activity was confirmed by in vitro activity assays. Eight genes were then integrated into the yeast genome, while tesA or an alternate thioesterase gene, fatB from Ricinus communis or TEII from Rattus novergicus, was expressed from a multi-copy plasmid. Native FAS activity was eliminated by knocking out the yeast FAS2 gene. The strains expressing only the eFAS as de novo fatty acid source grew without fatty acid supplementation demonstrating that this type II FAS is able to functionally replace the native yeast FAS. The engineered strain expressing the R. communis fatB thioesterase increased total fatty acid titer 1.7-fold and shifted the fatty acid profile towards C14 production, increasing it from <1% in the native strain to more than 30% of total fatty acids, and reducing C18 production from 39% to 8%.


Subject(s)
Escherichia coli Proteins/metabolism , Fatty Acid Synthases/metabolism , Fatty Acids/biosynthesis , Metabolic Engineering/methods , Saccharomyces cerevisiae/metabolism , Animals , Escherichia coli Proteins/genetics , Fatty Acid Synthases/genetics , Gene Deletion , Gene Expression , Rats , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Ricinus/enzymology , Ricinus/genetics , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/growth & development
12.
Biotechnol Bioeng ; 111(11): 2209-19, 2014 Nov.
Article in English | MEDLINE | ID: mdl-24889416

ABSTRACT

Free fatty acids (FFAs) can be used as precursors for the production of biofuels or chemicals. Different composition of FFAs will be useful for further modification of the biofuel/biochemical quality. Microbial biosynthesis of even chain FFAs can be achieved by introducing an acyl-acyl carrier protein thioesterase gene into E. coli. In this study, odd straight medium chain FFAs production was investigated by using metabolic engineered E. coli carrying acyl-ACP thioesterase (TE, Ricinus communis), propionyl-CoA synthase (Salmonella enterica), and ß-ketoacyl-acyl carrier protein synthase III (four different sources) with supplement of extracellular propionate. By using these metabolically engineered E. coli, significant quantity of C13 and C15 odd straight-chain FFAs could be produced from glucose and propionate. The highest concentration of total odd straight chain FFAs attained was 1205 mg/L by the strain HWK201 (pXZ18, pBHE2), and 85% of the odd straight chain FFAs was C15. However, the highest percentage of odd straight chain FFAs was achieved by the strain HWK201 (pXZ18, pBHE3) of 83.2% at 48 h. This strategy was also applied successfully in strains carrying different TE, such as the medium length acyl-ACP thioesterase gene from Umbellularia californica. C11 and C13 became the major odd straight-chain FFAs.


Subject(s)
Escherichia coli/genetics , Escherichia coli/metabolism , Fatty Acids, Nonesterified/metabolism , Metabolic Engineering/methods , Metabolic Networks and Pathways , 3-Oxoacyl-(Acyl-Carrier-Protein) Synthase/genetics , 3-Oxoacyl-(Acyl-Carrier-Protein) Synthase/metabolism , Coenzyme A Ligases/genetics , Coenzyme A Ligases/metabolism , Culture Media/chemistry , Propionates/metabolism , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Ricinus/enzymology , Ricinus/genetics , Salmonella enterica/enzymology , Salmonella enterica/genetics , Thiolester Hydrolases/genetics , Thiolester Hydrolases/metabolism , Umbellularia/enzymology , Umbellularia/genetics
13.
Appl Microbiol Biotechnol ; 98(1): 251-62, 2014 Jan.
Article in English | MEDLINE | ID: mdl-24136468

ABSTRACT

Although there are numerous oleochemical applications for ricinoleic acid (RA) and its derivatives, their production is limited and subject to various safety legislations. In an effort to produce RA from alternative sources, we constructed a genetically modified strain of the oleaginous yeast Yarrowia lipolytica. This strain is unable to perform ß-oxidation and is invalidated for the native triacylglycerol (TAG) acyltransferases (Dga1p, Dga2p, and Lro1p) and the ∆12 desaturase (Fad2p). We also expressed the Ricinus communis ∆12 hydroxylase (RcFAH12) under the control of the TEF constitutive promoter in this strain. However, RA constituted only 7% of the total lipids produced by this modified strain. By contrast, expression of the Claviceps purpurea hydroxylase CpFAH12 in this background resulted in a strain able to accumulate RA to 29% of total lipids, and expression of an additional copy of CpFAH12 drove RA accumulation up to 35% of total lipids. The co-expression of the C. purpurea or R. communis type II diacylglycerol acyltransferase (RcDGAT2 or CpDGAT2) had negative effects on RA accumulation in this yeast, with RA levels dropping to below 14% of total lipids. Overexpression of the native Y. lipolytica PDAT acyltransferase (Lro1p) restored both TAG accumulation and RA levels. Thus, we describe the consequences of rerouting lipid metabolism in this yeast so as to develop a cell factory for RA production. The engineered strain is capable of accumulating RA to 43% of its total lipids and over 60 mg/g of cell dry weight; this is the most efficient production of RA described to date.


Subject(s)
Metabolic Engineering , Metabolic Networks and Pathways/genetics , Ricinoleic Acids/metabolism , Yarrowia/genetics , Yarrowia/metabolism , Claviceps/enzymology , Claviceps/genetics , Gene Deletion , Gene Expression , Molecular Sequence Data , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Ricinus/enzymology , Ricinus/genetics , Sequence Analysis, DNA
14.
Plant Sci ; 199-200: 29-40, 2013 Feb.
Article in English | MEDLINE | ID: mdl-23265316

ABSTRACT

The multigene family encoding proteins related to lysophosphatidyl-acyltransferases (LPATs) has been analyzed in the castor plant Ricinus communis. Among them, two genes designated RcLPAT2 and RcLPATB, encoding proteins with LPAT activity and expressed in the developing seed, have been cloned and characterized in some detail. RcLPAT2 groups with well characterized members of the so-called A-class LPATs and it shows a generalized expression pattern in the plant and along seed development. Enzymatic assays of RcLPAT2 indicate a preference for ricinoleoyl-CoA over other fatty acid thioesters when ricinoleoyl-LPA is used as the acyl acceptor, while oleoyl-CoA is the preferred substrate when oleoyl-LPA is employed. RcLPATB groups with B-class LPAT enzymes described as seed specific and selective for unusual fatty acids. However, RcLPATB exhibit a broad specificity on the acyl-CoAs, with saturated fatty acids (12:0-16:0) being the preferred substrates. RcLPATB is upregulated coinciding with seed triacylglycerol accumulation, but its expression is not restricted to the seed. These results are discussed in the light of a possible role for LPAT isoenzymes in the channelling of ricinoleic acid into castor bean triacylglycerol.


Subject(s)
Acyltransferases/genetics , Genome, Plant/genetics , Ricinus communis/enzymology , Ricinus/enzymology , Seeds/enzymology , Acyl Coenzyme A/metabolism , Acyltransferases/metabolism , Base Sequence , Ricinus communis/genetics , Ricinus communis/growth & development , Castor Oil/metabolism , Cloning, Molecular , Escherichia coli/genetics , Escherichia coli/metabolism , Fatty Acids/metabolism , Flowers/enzymology , Flowers/genetics , Flowers/metabolism , Gene Expression Regulation, Plant , Molecular Sequence Data , Multigene Family , Mutation , Plant Leaves/enzymology , Plant Leaves/genetics , Plant Leaves/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism , Plant Roots/enzymology , Plant Roots/genetics , Plant Roots/metabolism , Plant Stems/enzymology , Plant Stems/genetics , Plant Stems/metabolism , Plants, Genetically Modified , Ricinoleic Acids/metabolism , Ricinus/genetics , Ricinus/metabolism , Seeds/genetics , Seeds/growth & development , Sequence Analysis, DNA , Substrate Specificity , Triglycerides/metabolism , Up-Regulation
15.
FEBS Lett ; 586(7): 1049-54, 2012 Apr 05.
Article in English | MEDLINE | ID: mdl-22569262

ABSTRACT

Phosphoenolpyruvate carboxylase (PEPC) is a tightly controlled anaplerotic enzyme situated at a pivotal branch point of plant carbohydrate-metabolism. In developing castor oil seeds (COS) a novel allosterically-densensitized 910-kDa Class-2 PEPC hetero-octameric complex arises from a tight interaction between 107-kDa plant-type PEPC and 118-kDa bacterial-type PEPC (BTPC) subunits. Mass spectrometry and immunoblotting with anti-phosphoSer451 specific antibodies established that COS BTPC is in vivo phosphorylated at Ser451, a highly conserved target residue that occurs within an intrinsically disordered region. This phosphorylation was enhanced during COS development or in response to depodding. Kinetic characterization of a phosphomimetic (S451D) mutant indicated that Ser451 phosphorylation inhibits the catalytic activity of BTPC subunits within the Class-2 PEPC complex.


Subject(s)
Phosphoenolpyruvate Carboxylase/metabolism , Plant Proteins/metabolism , Ricinus/enzymology , Seeds/enzymology , Serine/metabolism , Amino Acid Sequence , Amino Acid Substitution , Antibodies, Phospho-Specific , Castor Oil/chemistry , Food Handling , Isoenzymes/chemistry , Isoenzymes/genetics , Isoenzymes/metabolism , Kinetics , Molecular Sequence Data , Mutagenesis, Site-Directed , Mutant Proteins/chemistry , Mutant Proteins/metabolism , Phosphoenolpyruvate Carboxylase/chemistry , Phosphoenolpyruvate Carboxylase/genetics , Phosphorylation , Plant Proteins/chemistry , Plant Proteins/genetics , Protein Processing, Post-Translational , Protein Subunits/chemistry , Protein Subunits/genetics , Protein Subunits/metabolism , Recombinant Proteins/chemistry , Recombinant Proteins/metabolism , Ricinus/genetics , Ricinus/growth & development , Seeds/growth & development , Sequence Alignment
16.
Metab Eng ; 14(4): 380-7, 2012 Jul.
Article in English | MEDLINE | ID: mdl-22480945

ABSTRACT

Microbial biosynthesis of fatty acid like chemicals from renewable carbon sources has attracted significant attention in recent years. Free fatty acids can be used as precursors for the production of fuels or chemicals. Wild type E. coli strains produce fatty acids mainly for the biosynthesis of lipids and cell membranes and do not accumulate free fatty acids as intermediates in lipid biosynthesis. However, free fatty acids can be produced by breaking the fatty acid elongation through the overexpression of an acyl-ACP thioesterase. Since acetyl-CoA might be an important factor for fatty acid synthesis (acetate formation pathways are the main competitive pathways in consuming acetyl-CoA or pyruvate, a precursor of acetyl-CoA), and the long chain fatty acid CoA-ligase (FadD) plays a pivotal role in the transport and activation of exogenous fatty acids prior to their subsequent degradation, we examined the composition and the secretion of the free fatty acids in four different strains including the wild type MG1655, a mutant strain with inactivation of the fatty acid beta-oxidation pathway (fadD mutant (ML103)), and mutant strains with inactivation of the two major acetate production pathways (an ack-pta (acetate kinase/phosphotransacetylase), poxB (pyruvate oxidase) double mutant (ML112)) and a fadD, ack-pta, poxB triple mutant (ML115). The engineered E. coli cells expressing acyl-ACP thioesterase with glucose yield is higher than 40% of theoretical yield. Compared to MG1655(pXZ18) and ML103(pXZ18), acetate forming pathway deletion strains such as ML112(pXZ18) and ML115(pXZ18) produced similar quantity of total free fatty acids, which indicated that acetyl-CoA availability does not appear to be limiting factor for fatty acid production in these strains. However, these strains did show significant differences in the composition of free fatty acids. Different from MG1655(pXZ18) and ML103(pXZ18), acetate formation pathway deletion strains such as ML112(pXZ18) and ML115(pXZ18) produced similar level of C14, C16:1 and C16 free fatty acids, and the free fatty acid compositions of both strains did not change significantly with time. In addition, the strains bearing the fadD mutation showed significant differences in the quantities of free fatty acids found in the broth. Finally, we examined two potential screening methods for selecting and isolating high free fatty acids producing cells.


Subject(s)
Acetates/metabolism , Coenzyme A Ligases/metabolism , Escherichia coli/metabolism , Fatty Acids, Nonesterified/biosynthesis , Palmitoyl-CoA Hydrolase/biosynthesis , Ricinus/enzymology , Acetate Kinase/genetics , Acetate Kinase/metabolism , Escherichia coli/genetics , Fatty Acids, Nonesterified/genetics , Fatty Acids, Nonesterified/metabolism , Mutation , Palmitoyl-CoA Hydrolase/genetics , Phosphate Acetyltransferase/genetics , Phosphate Acetyltransferase/metabolism , Pyruvate Oxidase/genetics , Pyruvate Oxidase/metabolism , Ricinus/genetics
17.
Analyst ; 137(9): 2077-85, 2012 May 07.
Article in English | MEDLINE | ID: mdl-22416271

ABSTRACT

The investigation of crimes involving chemical or biological agents is infrequent, but presents unique analytical challenges. The protein toxin ricin is encountered more frequently than other agents and is found in the seeds of Ricinus communis, commonly known as the castor plant. Typically, the toxin is extracted from castor seeds utilizing a variety of different recipes that result in varying purity of the toxin. Moreover, these various purification steps can also leave or differentially remove a variety of exogenous and endogenous residual components with the toxin that may indicate the type and number of purification steps involved. We have applied three gas chromatography-mass spectrometry (GC-MS) based analytical methods to measure the variation in seed carbohydrates and castor oil ricinoleic acid, as well as the presence of solvents used for purification. These methods were applied to the same samples prepared using four previously identified toxin preparation methods, starting from four varieties of castor seeds. The individual data sets for seed carbohydrate profiles, ricinoleic acid, or acetone amount each provided information capable of differentiating different types of toxin preparations across seed types. However, the integration of the data sets using multivariate factor analysis provided a clear distinction of all samples based on the preparation method, independent of the seed source. In particular, the abundance of mannose, arabinose, fucose, ricinoleic acid, and acetone were shown to be important differentiating factors. These complementary tools provide a more confident determination of the method of toxin preparation than would be possible using a single analytical method.


Subject(s)
Analytic Sample Preparation Methods/methods , Gas Chromatography-Mass Spectrometry/methods , Ricin/analysis , Systems Integration , Acetone/analysis , Acetone/chemistry , Hydrogen-Ion Concentration , Monosaccharides/analysis , Monosaccharides/chemistry , Multivariate Analysis , Ricin/chemistry , Ricin/isolation & purification , Ricinoleic Acids/analysis , Ricinoleic Acids/chemistry , Ricinus/chemistry , Ricinus/enzymology , Seeds/chemistry , Seeds/enzymology
18.
Plant Physiol ; 158(4): 1944-54, 2012 Apr.
Article in English | MEDLINE | ID: mdl-22371508

ABSTRACT

We previously identified an enzyme, phosphatidylcholine diacylglycerol cholinephosphotransferase (PDCT), that plays an important role in directing fatty acyl fluxes during triacylglycerol (TAG) biosynthesis. The PDCT mediates a symmetrical interconversion between phosphatidylcholine (PC) and diacylglycerol (DAG), thus enriching PC-modified fatty acids in the DAG pool prior to forming TAG. We show here that PDCT is required for the efficient metabolism of engineered hydroxy fatty acids in Arabidopsis (Arabidopsis thaliana) seeds. When a fatty acid hydroxylase (FAH12) from castor (Ricinus communis) was expressed in Arabidopsis seeds, the PDCT-deficient mutant accumulated only about half the amount of hydroxy fatty acids compared with that in the wild-type seeds. We also isolated a PDCT from castor encoded by the RcROD1 (Reduced Oleate Desaturation1) gene. Seed-specific coexpression of this enzyme significantly increased hydroxy fatty acid accumulation in wild type-FAH12 and in a previously produced transgenic Arabidopsis line coexpressing a castor diacylglycerol acyltransferase 2. Analyzing the TAG molecular species and regiochemistry, along with analysis of fatty acid composition in TAG and PC during seed development, indicate that PDCT acts in planta to enhance the fluxes of fatty acids through PC and enrich the hydroxy fatty acids in DAG, and thus in TAG. In addition, PDCT partially restores the oil content that is decreased in FAH12-expressing seeds. Our results add a new gene in the genetic toolbox for efficiently engineering unusual fatty acids in transgenic oilseeds.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/enzymology , Arabidopsis/genetics , Fatty Acids/metabolism , Transferases (Other Substituted Phosphate Groups)/metabolism , Arabidopsis/growth & development , Hydroxylation , Phosphatidylcholines/metabolism , Plant Oils/metabolism , Plants, Genetically Modified , Ricinus/enzymology , Seeds/genetics , Seeds/growth & development , Stereoisomerism , Transformation, Genetic , Triglycerides/chemistry , Triglycerides/metabolism
19.
Inorg Chem ; 51(5): 2806-20, 2012 Mar 05.
Article in English | MEDLINE | ID: mdl-22332845

ABSTRACT

Large-scale quantum and molecular mechanical methods (QM/MM) and QM calculations were carried out on the soluble Δ(9) desaturase (Δ(9)D) to investigate various structural models of the spectroscopically defined peroxodiferric (P) intermediate. This allowed us to formulate a consistent mechanistic picture for the initial stages of the reaction mechanism of Δ(9)D, an important diferrous nonheme iron enzyme that cleaves the C-H bonds in alkane chains resulting in the highly specific insertion of double bonds. The methods (density functional theory (DFT), time-dependent DFT (TD-DFT), QM(DFT)/MM, and TD-DFT with electrostatic embedding) were benchmarked by demonstrating that the known spectroscopic effects and structural perturbation caused by substrate binding to diferrous Δ(9)D can be qualitatively reproduced. We show that structural models whose spectroscopic (absorption, circular dichroism (CD), vibrational and Mössbauer) characteristics correlate best with experimental data for the P intermediate correspond to the µ-1,2-O(2)(2-) binding mode. Coordination of Glu196 to one of the iron centers (Fe(B)) is demonstrated to be flexible, with the monodentate binding providing better agreement with spectroscopic data, and the bidentate structure being slightly favored energetically (1-10 kJ mol(-1)). Further possible structures, containing an additional proton or water molecule are also evaluated in connection with the possible activation of the P intermediate. Specifically, we suggest that protonation of the peroxide moiety, possibly preceded by water binding in the Fe(A) coordination sphere, could be responsible for the conversion of the P intermediate in Δ(9)D into a form capable of hydrogen abstraction. Finally, results are compared with recent findings on the related ribonucleotide reductase and toluene/methane monooxygenase enzymes.


Subject(s)
Fatty Acid Desaturases/chemistry , Ricinus/enzymology , Catalytic Domain , Fatty Acid Desaturases/metabolism , Isomerism , Models, Molecular , Peroxides/metabolism , Quantum Theory , Ricinus/chemistry , Spectroscopy, Mossbauer , Water/chemistry
20.
Physiol Plant ; 145(1): 103-13, 2012 May.
Article in English | MEDLINE | ID: mdl-22268582

ABSTRACT

Programmed cell death (PCD) in plants is a prerequisite for development as well as seed and fruit production. It also plays a significant role in pathogen defense. A unique group of papain-type cysteine endopeptidases, characterized by a C-terminal endoplasmic reticulum (ER) retention signal (KDEL CysEP), is involved in plant PCD. Genes for these endopeptidases have been sequenced and analyzed from 25 angiosperms and gymnosperms. They have no structural relationship to caspases involved in mammalian PCD and homologs to this group of plant cysteine endopeptidases have not been found in mammals or yeast. In castor beans (Ricinus communis), the CysEP is synthesized as pre-pro-enzyme. The pro-enzyme is transported to the cytosol of cells undergoing PCD in ER-derived vesicles called ricinosomes. These vesicles release the mature CysEP in the final stages of organelle disintegration triggered by acidification of the cytoplasm resulting from the disruption of the vacuole. Mature CysEP digests the hydroxyproline (Hyp)-rich proteins (extensins) that form the basic scaffold of the plant cell wall. The KDEL CysEPs accept a wide variety of amino acids at the active site, including the glycosylated Hyp residues of the extensins. In Arabidopsis, three KDEL CysEPs (AtCEP1, AtCEP2 and AtCEP3) are expressed in tissues undergoing PCD. In transgenic Arabidopsis plants expressing ß-glucuronidase under the control of the promoters for these three genes, cell- and tissue-specific activities were mapped during seedling, flower and seed development. KDEL CysEPs participate in the collapse of tissues in the final stage of PCD and in tissue re-modeling such as lateral root formation.


Subject(s)
Arabidopsis/cytology , Arabidopsis/enzymology , Cell Death , Cysteine Endopeptidases/metabolism , Ricinus/cytology , Ricinus/enzymology , Acids/metabolism , Arabidopsis/growth & development , Cell Wall/metabolism , Endoplasmic Reticulum/enzymology , Endosperm/growth & development , Endosperm/metabolism , Glycoproteins/metabolism , Plant Cells/enzymology , Plant Proteins/metabolism , Proteolysis , Ricinus/growth & development , Seeds/enzymology , Seeds/growth & development , Substrate Specificity , Vacuoles/metabolism
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