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1.
J Biol Chem ; 295(15): 4963-4973, 2020 04 10.
Artigo em Inglês | MEDLINE | ID: mdl-32086380

RESUMO

Taxol (paclitaxel) is a very widely used anticancer drug, but its commercial sources mainly consist of stripped bark or suspension cultures of members of the plant genus Taxus. Taxol accumulates as part of a complex mixture of chemical analogs, termed taxoids, which complicates its production in pure form, highlighting the need for metabolic engineering approaches for high-level Taxol production in cell cultures or microbial hosts. Here, we report on the characterization of acyl-activating enzymes (AAEs) that catalyze the formation of CoA esters of different organic acids relevant for the N-substitution of the 3-phenylisoserine side chain of taxoids. On the basis of similarities to AAE genes of known function from other organisms, we identified candidate genes in publicly available transcriptome data sets obtained with Taxus × media. We cloned 17 AAE genes, expressed them heterologously in Escherichia coli, purified the corresponding recombinant enzymes, and performed in vitro assays with 27 organic acids as potential substrates. We identified TmAAE1 and TmAAE5 as the most efficient enzymes for the activation of butyric acid (Taxol D side chain), TmAAE13 as the best candidate for generating a CoA ester of tiglic acid (Taxol B side chain), TmAAE3 and TmAAE13 as suitable for the activation of 4-methylbutyric acid (N-debenzoyl-N-(2-methylbutyryl)taxol side chain), TmAAE15 as a highly efficient candidate for hexanoic acid activation (Taxol C side chain), and TmAAE4 as suitable candidate for esterification of benzoic acid with CoA (Taxol side chain). This study lays important groundwork for metabolic engineering efforts aimed at improving Taxol production in cell cultures.


Assuntos
Acil Coenzima A/metabolismo , Coenzima A Ligases/metabolismo , Ésteres/metabolismo , Paclitaxel/química , Paclitaxel/metabolismo , Proteínas Recombinantes/metabolismo , Taxus/enzimologia , Sequência de Aminoácidos , Clonagem Molecular , Coenzima A Ligases/química , Coenzima A Ligases/genética , Escherichia coli/genética , Escherichia coli/crescimento & desenvolvimento , Escherichia coli/metabolismo , Proteínas Recombinantes/genética , Homologia de Sequência
2.
Molecules ; 26(10)2021 May 12.
Artigo em Inglês | MEDLINE | ID: mdl-34065782

RESUMO

Taxol is one of the most effective anticancer drugs in the world that is widely used in the treatments of breast, lung and ovarian cancer. The elucidation of the taxol biosynthetic pathway is the key to solve the problem of taxol supply. So far, the taxol biosynthetic pathway has been reported to require an estimated 20 steps of enzymatic reactions, and sixteen enzymes involved in the taxol pathway have been well characterized, including a novel taxane-10ß-hydroxylase (T10ßOH) and a newly putative ß-phenylalanyl-CoA ligase (PCL). Moreover, the source and formation of the taxane core and the details of the downstream synthetic pathway have been basically depicted, while the modification of the core taxane skeleton has not been fully reported, mainly concerning the developments from diol intermediates to 2-debenzoyltaxane. The acylation reaction mediated by specialized Taxus BAHD family acyltransferases (ACTs) is recognized as one of the most important steps in the modification of core taxane skeleton that contribute to the increase of taxol yield. Recently, the influence of acylation on the functional and structural diversity of taxanes has also been continuously revealed. This review summarizes the latest research advances of the taxol biosynthetic pathway and systematically discusses the acylation reactions supported by Taxus ACTs. The underlying mechanism could improve the understanding of taxol biosynthesis, and provide a theoretical basis for the mass production of taxol.


Assuntos
Aciltransferases/metabolismo , Antineoplásicos/metabolismo , Paclitaxel/biossíntese , Extratos Vegetais/biossíntese , Taxus/química , Taxus/enzimologia , Acilação , Aciltransferases/genética , Sequência de Aminoácidos , Vias Biossintéticas , Hidrocarbonetos Aromáticos com Pontes/metabolismo , Ligases/metabolismo , Oxigenases de Função Mista/metabolismo , Taxoides/metabolismo , Taxus/classificação , Taxus/genética , Transcriptoma
3.
Biotechnol Appl Biochem ; 65(3): 294-305, 2018 May.
Artigo em Inglês | MEDLINE | ID: mdl-28876471

RESUMO

CYP725A4 is a P450 enzyme from Taxus cuspidata that catalyzes the formation of taxadiene-5α-ol (T5α-ol) from taxadiene in paclitaxel biosynthesis. Past attempts expressing CYP725A4 in heterologous hosts reported the formation of 5(12)-oxa-3(11)-cyclotaxane (OCT) and/or 5(11)-oxa-3(11)-cyclotaxane (iso-OCT) instead of, or in addition to, T5α-ol. Here, we report that T5α-ol is produced as a minor product by Escherichia coli expressing both taxadiene synthase and CYP725A4. The major products were OCT and iso-OCT, while trace amounts of unidentified monooxygenated taxanes were also detected by gas chromatography-mass spectrometry. Since OCT and iso-OCT had not been found in nature, we tested the hypothesis that protein-protein interaction of CYP725A4 with redox partners, such as cytochrome P450 reductase (CPR) and cytochrome b5, may affect the products formed by CYP725A4, possibly favoring the formation of T5α-ol over OCT and iso-OCT. Our results show that coexpression of CYP725A4 with CPR from different organisms did not change the relative ratios of OCT, iso-OCT, and T5α-ol, while cytochrome b5 decreased overall levels of the products formed. Although unsuccessful in finding conditions that promote T5α-ol formation over other products, we used our results to clarify conflicting claims in the literature and discuss other possible approaches to produce paclitaxel via metabolic and enzyme engineering.


Assuntos
Alcenos/metabolismo , Sistema Enzimático do Citocromo P-450/metabolismo , Diterpenos/metabolismo , Escherichia coli/metabolismo , Taxus/enzimologia , Alcenos/química , Sistema Enzimático do Citocromo P-450/genética , Diterpenos/química , Taxus/genética
4.
Biotechnol Lett ; 40(8): 1245-1251, 2018 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-29869304

RESUMO

OBJECTIVES: Taxoid 10ß-O-acetyl transferase (DBAT) was redesigned to enhance its catalytic activity and substrate preference for baccatin III and taxol biosynthesis. RESULTS: Residues H162, D166 and R363 were determined as potential sites within the catalytic pocket of DBAT for molecular docking and site-directed mutagenesis to modify the activity of DBAT. Enzymatic activity assays revealed that the kcat/KM values of mutant H162A/R363H, D166H, R363H, D166H/R363H acting on 10-deacetylbaccatin III were about 3, 15, 26 and 60 times higher than that of the wild type of DBAT, respectively. Substrate preference assays indicated that these mutants (H162A/R363H, D166H, R363H, D166H/R363H) could transfer acetyl group from unnatural acetyl donor (e.g. vinyl acetate, sec-butyl acetate, isobutyl acetate, amyl acetate and isoamyl acetate) to 10-deacetylbaccatin III. CONCLUSION: Taxoid 10ß-O-acetyl transferase mutants with redesigned active sites displayed increased catalytic activities and modified substrate preferences, indicating their possible application in the enzymatic synthesis of baccatin III and taxol.


Assuntos
Acetilesterase/metabolismo , Histidina , Mutagênese Sítio-Dirigida/métodos , Proteínas Recombinantes/metabolismo , Taxoides/metabolismo , Acetilesterase/genética , Escherichia coli/genética , Histidina/genética , Histidina/metabolismo , Concentração de Íons de Hidrogênio , Simulação de Acoplamento Molecular , Proteínas de Plantas/genética , Proteínas de Plantas/metabolismo , Proteínas Recombinantes/genética , Especificidade por Substrato , Taxus/enzimologia , Taxus/genética
5.
Biochemistry ; 56(14): 2010-2023, 2017 04 11.
Artigo em Inglês | MEDLINE | ID: mdl-28362483

RESUMO

Terpenoid synthases catalyze isoprenoid cyclization reactions underlying the generation of more than 80,000 natural products. Such dramatic chemodiversity belies the fact that these enzymes generally consist of only three domain folds designated as α, ß, and γ. Catalysis by class I terpenoid synthases occurs exclusively in the α domain, which is found with α, αα, αß, and αßγ domain architectures. Here, we explore the influence of domain architecture on catalysis by taxadiene synthase from Taxus brevifolia (TbTS, αßγ), fusicoccadiene synthase from Phomopsis amygdali (PaFS, (αα)6), and ophiobolin F synthase from Aspergillus clavatus (AcOS, αα). We show that the cyclization fidelity and catalytic efficiency of the α domain of TbTS are severely compromised by deletion of the ßγ domains; however, retention of the ß domain preserves significant cyclization fidelity. In PaFS, we previously demonstrated that one α domain similarly influences catalysis by the other α domain [ Chen , M. , Chou , W. K. W. , Toyomasu , T. , Cane , D. E. , and Christianson , D. W. ( 2016 ) ACS Chem. Biol. 11 , 889 - 899 ]. Here, we show that the hexameric quaternary structure of PaFS enables cluster channeling. We also show that the α domains of PaFS and AcOS can be swapped so as to make functional chimeric αα synthases. Notably, both cyclization fidelity and catalytic efficiency are altered in all chimeric synthases. Twelve newly formed and uncharacterized C20 diterpene products and three C25 sesterterpene products are generated by these chimeras. Thus, engineered αßγ and αα terpenoid cyclases promise to generate chemodiversity in the greater family of terpenoid natural products.


Assuntos
Alquil e Aril Transferases/química , Aspergillus/genética , Isomerases/química , Proteínas Mutantes Quiméricas/química , Saccharomycetales/genética , Taxus/genética , Alquil e Aril Transferases/genética , Alquil e Aril Transferases/metabolismo , Aspergillus/enzimologia , Ciclização , Diterpenos/metabolismo , Expressão Gênica , Isomerases/genética , Isomerases/metabolismo , Cinética , Modelos Moleculares , Proteínas Mutantes Quiméricas/genética , Proteínas Mutantes Quiméricas/metabolismo , Domínios Proteicos , Engenharia de Proteínas , Estrutura Secundária de Proteína , Saccharomycetales/enzimologia , Sesterterpenos/biossíntese , Taxus/enzimologia
6.
Biochemistry ; 56(10): 1415-1425, 2017 03 14.
Artigo em Inglês | MEDLINE | ID: mdl-28230972

RESUMO

Structure-activity relationship studies show that the phenylisoserinyl moiety of paclitaxel (Taxol) is largely necessary for the effective anticancer activity. Several paclitaxel analogues with a variant isoserinyl side chain have improved pharmaceutical properties versus those of the parent drug. To produce the isoserinyl CoAs as intermediates needed for enzyme catalysis on a semibiosynthetic pathway to paclitaxel analogues, we repurposed the adenylation and thiolation domains (Phe-AT) of a nonribosomal peptide synthetase (TycA) so that they would function as a CoA ligase. Twenty-eight isoserine analogue racemates were synthesized by an established procedure based on the Staudinger [2+2] cycloaddition reaction. Phe-AT converted 16 substituted phenylisoserines, one ß-(heteroaryl)isoserine, and one ß-(cyclohexyl)isoserine to their corresponding isoserinyl CoAs. We imagine that these CoA thioesters can likely serve as linchpin biosynthetic acyl donors transferred by a 13-O-acyltransferase to a paclitaxel precursor baccatin III to make drug analogues with better efficacy. It was also interesting to find that an active site mutant [Phe-AT (W227S)] turned over 2-pyridylisoserine and the sterically demanding p-methoxyphenylisoserine substrates to their CoA thioesters, while Phe-AT did not. This mutant is promising for further development to make 3-fluoro-2-pyridylisoserinyl CoA, a biosynthetic precursor of the oral pharmaceutical tesetaxel used for gastric cancers.


Assuntos
Antineoplásicos Fitogênicos/biossíntese , Coenzima A/química , Escherichia coli/genética , Peptídeo Sintases/química , Proteínas de Plantas/química , Engenharia de Proteínas , Alcaloides/biossíntese , Alcaloides/síntese química , Antineoplásicos Fitogênicos/síntese química , Brevibacillus/química , Brevibacillus/enzimologia , Domínio Catalítico , Clonagem Molecular , Coenzima A/metabolismo , Escherichia coli/enzimologia , Expressão Gênica , Cinética , Modelos Moleculares , Paclitaxel/biossíntese , Paclitaxel/síntese química , Peptídeo Sintases/genética , Peptídeo Sintases/metabolismo , Proteínas de Plantas/metabolismo , Domínios Proteicos , Estrutura Secundária de Proteína , Proteínas Recombinantes/química , Proteínas Recombinantes/genética , Proteínas Recombinantes/metabolismo , Relação Estrutura-Atividade , Especificidade por Substrato , Taxoides/síntese química , Taxoides/metabolismo , Taxus/química , Taxus/enzimologia
7.
Plant Mol Biol ; 95(1-2): 169-180, 2017 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-28795267

RESUMO

KEY MESSAGE: Conifers contain P450 enzymes from the CYP79 family that are involved in cyanogenic glycoside biosynthesis. Cyanogenic glycosides are secondary plant compounds that are widespread in the plant kingdom. Their biosynthesis starts with the conversion of aromatic or aliphatic amino acids into their respective aldoximes, catalysed by N-hydroxylating cytochrome P450 monooxygenases (CYP) of the CYP79 family. While CYP79s are well known in angiosperms, their occurrence in gymnosperms and other plant divisions containing cyanogenic glycoside-producing plants has not been reported so far. We screened the transcriptomes of 72 conifer species to identify putative CYP79 genes in this plant division. From the seven resulting full-length genes, CYP79A118 from European yew (Taxus baccata) was chosen for further characterization. Recombinant CYP79A118 produced in yeast was able to convert L-tyrosine, L-tryptophan, and L-phenylalanine into p-hydroxyphenylacetaldoxime, indole-3-acetaldoxime, and phenylacetaldoxime, respectively. However, the kinetic parameters of the enzyme and transient expression of CYP79A118 in Nicotiana benthamiana indicate that L-tyrosine is the preferred substrate in vivo. Consistent with these findings, taxiphyllin, which is derived from L-tyrosine, was the only cyanogenic glycoside found in the different organs of T. baccata. Taxiphyllin showed highest accumulation in leaves and twigs, moderate accumulation in roots, and only trace accumulation in seeds and the aril. Quantitative real-time PCR revealed that CYP79A118 was expressed in plant organs rich in taxiphyllin. Our data show that CYP79s represent an ancient family of plant P450s that evolved prior to the separation of gymnosperms and angiosperms. CYP79A118 from T. baccata has typical CYP79 properties and its substrate specificity and spatial gene expression pattern suggest that the enzyme contributes to the formation of taxiphyllin in this plant species.


Assuntos
Sistema Enzimático do Citocromo P-450/metabolismo , Nitrilas/metabolismo , Taxus/enzimologia , Sequência de Aminoácidos , Sistema Enzimático do Citocromo P-450/química , Sistema Enzimático do Citocromo P-450/genética , Regulação da Expressão Gênica de Plantas/efeitos dos fármacos , Nitrilas/química , Especificidade de Órgãos/genética , Proteínas de Plantas/química , Proteínas de Plantas/genética , Proteínas de Plantas/metabolismo , RNA Mensageiro/genética , RNA Mensageiro/metabolismo , Alinhamento de Sequência , Taxus/genética , Transcriptoma/genética
8.
Protein Expr Purif ; 132: 60-67, 2017 04.
Artigo em Inglês | MEDLINE | ID: mdl-28109855

RESUMO

Taxadiene-5α-Hydroxylase (CYP725A4) is a membrane-bound plant cytochrome P450 that catalyzes the oxidation of taxadiene to taxadiene-5α-ol. This oxidation is a key step in the production of the valuable cancer therapeutic and natural plant product, taxol. In this work, we report the bacterial expression and purification of six different constructs of CYP725A4. All six of these constructs are N-terminally modified and three of them are fused to cytochrome P450 reductase to form a chimera construct. The construct with the highest yield of CYP725A4 protein was then selected for substrate binding and kinetic analysis. Taxadiene binding followed type-1 substrate patterns with an observed KD of 2.1 ± 0.4 µM. CYP725A4 was further incorporated into nanoscale lipid bilayers (nanodiscs) and taxadiene metabolism was measured. Taxadiene metabolism followed Michaelis-Menten kinetics with an observed Vmax of 30 ± 8 pmol/min/nmolCYP725A4 and a KM of 123 ± 52 µM. Additionally, molecular operating environment (MOE) modeling was performed in order to gain insight into the interactions of taxadiene with CYP725A4 active site. Taken together, we demonstrate the successful expression and purification of the functional membrane-bound plant CYP, CYP725A4, in E. coli.


Assuntos
Alcenos/química , Sistema Enzimático do Citocromo P-450 , Diterpenos/química , Escherichia coli/metabolismo , Proteínas de Plantas , Taxus/genética , Sítios de Ligação , Sistema Enzimático do Citocromo P-450/biossíntese , Sistema Enzimático do Citocromo P-450/química , Sistema Enzimático do Citocromo P-450/genética , Sistema Enzimático do Citocromo P-450/isolamento & purificação , Escherichia coli/genética , Cinética , Proteínas de Plantas/biossíntese , Proteínas de Plantas/química , Proteínas de Plantas/genética , Proteínas de Plantas/isolamento & purificação , Proteínas Recombinantes/biossíntese , Proteínas Recombinantes/química , Proteínas Recombinantes/genética , Proteínas Recombinantes/isolamento & purificação , Taxus/enzimologia
9.
Nature ; 469(7328): 116-20, 2011 Jan 06.
Artigo em Inglês | MEDLINE | ID: mdl-21160477

RESUMO

With more than 55,000 members identified so far in all forms of life, the family of terpene or terpenoid natural products represents the epitome of molecular biodiversity. A well-known and important member of this family is the polycyclic diterpenoid Taxol (paclitaxel), which promotes tubulin polymerization and shows remarkable efficacy in cancer chemotherapy. The first committed step of Taxol biosynthesis in the Pacific yew (Taxus brevifolia) is the cyclization of the linear isoprenoid substrate geranylgeranyl diphosphate (GGPP) to form taxa-4(5),11(12)diene, which is catalysed by taxadiene synthase. The full-length form of this diterpene cyclase contains 862 residues, but a roughly 80-residue amino-terminal transit sequence is cleaved on maturation in plastids. We now report the X-ray crystal structure of a truncation variant lacking the transit sequence and an additional 27 residues at the N terminus, hereafter designated TXS. Specifically, we have determined structures of TXS complexed with 13-aza-13,14-dihydrocopalyl diphosphate (1.82 Å resolution) and 2-fluorogeranylgeranyl diphosphate (2.25 Å resolution). The TXS structure reveals a modular assembly of three α-helical domains. The carboxy-terminal catalytic domain is a class I terpenoid cyclase, which binds and activates substrate GGPP with a three-metal ion cluster. The N-terminal domain and a third 'insertion' domain together adopt the fold of a vestigial class II terpenoid cyclase. A class II cyclase activates the isoprenoid substrate by protonation instead of ionization, and the TXS structure reveals a definitive connection between the two distinct cyclase classes in the evolution of terpenoid biosynthesis.


Assuntos
Evolução Molecular , Isomerases/química , Isomerases/metabolismo , Taxus/enzimologia , Terpenos/metabolismo , Alcenos/metabolismo , Motivos de Aminoácidos , Sequência de Aminoácidos , Biocatálise , Domínio Catalítico , Cristalização , Cristalografia por Raios X , Diterpenos/química , Diterpenos/metabolismo , Isomerases/classificação , Modelos Moleculares , Organofosfatos/química , Organofosfatos/metabolismo , Paclitaxel/biossíntese , Fosfatos de Poli-Isoprenil/química , Fosfatos de Poli-Isoprenil/metabolismo , Dobramento de Proteína
10.
Appl Microbiol Biotechnol ; 101(20): 7523-7533, 2017 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-28918530

RESUMO

Taxol is an anticancer identified in both endophytic fungus and its host plant. Plant Taxol is a diterpenoid with geranylgeranyl diphosphate (GGPP) mediates the biosynthesis of its terpenoid moiety. Previous report has suggested that fungal Taxol may require terpenoid pathway for its biosynthesis. Here in this study, feeding a Taxol-producing endophytic fungus (Paraconiothyrium SSM001) with terpenoid precursors including isopentenyl pyrophosphate (IPP, isoprene) and GGPP enhanced Taxol production threefold and fivefold, respectively, compared to the control. Thus, we assumed that increasing the terpenoid pool size in particular GGPP by introducing a new copy number of GGPPS particularly from a Taxol-producing plant might increase the production level of fungal Taxol. Agrobacterium-mediated integration of Taxus canadensis geranylgeranyl diphosphate synthase (GGPPS) gene into the Paraconiothyrium SSM001 genome was successful and increased the terpenoid pool size indicated by an increase in carotenoid level and orange to red coloration of some GGPPS-transformed SSM001 colonies. Furthermore, the integration improved the level of Taxol production threefold. Feeding a GGPPS-transformed SSM001 fungus with a GGPP precursor increased the expression level of GGPPS transcript and Taxol production. The successful increase in both terpenoid and Taxol production levels due to GGPPS gene integration into the fungal genome might be a step forward in manipulating Taxol-producing endophytic fungi. Future control of the transformation time and the manipulation of the phenolic pathway could maximize the production level.


Assuntos
Antineoplásicos/metabolismo , Ascomicetos/metabolismo , Farnesiltranstransferase/metabolismo , Engenharia Metabólica , Paclitaxel/metabolismo , Fosfatos de Poli-Isoprenil/metabolismo , Ascomicetos/genética , Butadienos/metabolismo , Farnesiltranstransferase/genética , Hemiterpenos/metabolismo , Pentanos/metabolismo , Proteínas de Plantas/genética , Proteínas de Plantas/metabolismo , Proteínas Recombinantes/genética , Proteínas Recombinantes/metabolismo , Taxus/enzimologia , Taxus/genética
11.
Plant Biotechnol J ; 14(1): 85-96, 2016 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-25899320

RESUMO

Plant cell cultures constitute eco-friendly biotechnological platforms for the production of plant secondary metabolites with pharmacological activities, as well as a suitable system for extending our knowledge of secondary metabolism. Despite the high added value of taxol and the importance of taxanes as anticancer compounds, several aspects of their biosynthesis remain unknown. In this work, a genomewide expression analysis of jasmonate-elicited Taxus baccata cell cultures by complementary DNA-amplified fragment length polymorphism (cDNA-AFLP) indicated a correlation between an extensive elicitor-induced genetic reprogramming and increased taxane production in the targeted cultures. Subsequent in silico analysis allowed us to identify 15 genes with a jasmonate-induced differential expression as putative candidates for genes encoding enzymes involved in five unknown steps of taxane biosynthesis. Among them, the TB768 gene showed a strong homology, including a very similar predicted 3D structure, with other genes previously reported to encode acyl-CoA ligases, thus suggesting a role in the formation of the taxol lateral chain. Functional analysis confirmed that the TB768 gene encodes an acyl-CoA ligase that localizes to the cytoplasm and is able to convert ß-phenylalanine, as well as coumaric acid, into their respective derivative CoA esters. ß-phenylalanyl-CoA is attached to baccatin III in one of the last steps of the taxol biosynthetic pathway. The identification of this gene will contribute to the establishment of sustainable taxol production systems through metabolic engineering or synthetic biology approaches.


Assuntos
Ciclopentanos/farmacologia , Perfilação da Expressão Gênica , Regulação da Expressão Gênica de Plantas/efeitos dos fármacos , Ligases/genética , Oxilipinas/farmacologia , Fenilalanina/metabolismo , Taxus/citologia , Taxus/enzimologia , Sequência de Aminoácidos , Análise do Polimorfismo de Comprimento de Fragmentos Amplificados , Hidrocarbonetos Aromáticos com Pontes/química , Cromatografia Líquida de Alta Pressão , Simulação por Computador , Citosol/enzimologia , DNA Complementar/genética , Genes de Plantas , Estudos de Associação Genética , Ligases/química , Ligases/metabolismo , Modelos Moleculares , Paclitaxel/biossíntese , Paclitaxel/química , Proteínas de Plantas/química , Proteínas de Plantas/metabolismo , RNA Mensageiro/genética , RNA Mensageiro/metabolismo , Alinhamento de Sequência , Espectrometria de Massas em Tandem , Taxoides/química , Taxus/efeitos dos fármacos , Taxus/genética
12.
Physiol Plant ; 156(1): 13-28, 2016 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-26333689

RESUMO

Browning phenomena are ubiquitous in plant cell cultures that severely hamper scientific research and widespread application of plant cell cultures. Up to now, this problem still has not been well controlled due to the unclear browning mechanisms in plant cell cultures. In this paper, the mechanisms were investigated using two typical materials with severe browning phenomena, Taxus chinensis and Glycyrrhiza inflata cells. Our results illustrated that the browning is attributed to a physiological enzymatic reaction, and phenolic biosynthesis regulated by sugar plays a decisive role in the browning. Furthermore, to confirm the specific compounds which participate in the enzymatic browning reaction, transcriptional profile and metabolites of T. chinensis cells, and UV scanning and high-performance liquid chromatography-mass spectrometry (HPLC-MS) profile of the browning compounds extracted from the brown-turned medium were analyzed, flavonoids derived from phenylpropanoid pathway were found to be the main compounds, and myricetin and quercetin were deduced to be the main substrates of the browning reaction. Inhibition of flavonoid biosynthesis can prevent the browning occurrence, and the browning is effectively controlled via blocking flavonoid biosynthesis by gibberellic acid (GA3 ) as an inhibitor, which further confirms that flavonoids mainly contribute to the browning. On the basis above, a model elucidating enzymatic browning mechanisms in plant cell cultures was put forward, and effective control approaches were presented.


Assuntos
Catecol Oxidase/metabolismo , Glycyrrhiza/fisiologia , Fenóis/metabolismo , Células Vegetais/fisiologia , Taxus/fisiologia , Reatores Biológicos , Catecol Oxidase/genética , Catecol Oxidase/isolamento & purificação , Técnicas de Cultura de Células , Permeabilidade da Membrana Celular , Flavonoides/isolamento & purificação , Flavonoides/metabolismo , Glycyrrhiza/química , Glycyrrhiza/enzimologia , Reação de Maillard , Oxigênio/metabolismo , Fenóis/isolamento & purificação , Células Vegetais/química , Células Vegetais/enzimologia , Proteínas de Plantas/genética , Proteínas de Plantas/isolamento & purificação , Proteínas de Plantas/metabolismo , Quercetina/isolamento & purificação , Quercetina/metabolismo , Taxus/química , Taxus/enzimologia , Técnicas de Cultura de Tecidos
13.
Yao Xue Xue Bao ; 50(5): 621-6, 2015 May.
Artigo em Chinês | MEDLINE | ID: mdl-26234147

RESUMO

Taxol is one of the most potent anti-cancer agents, which is extracted from the plants of Taxus species. Isopentenyl diphosphate isomerase (IPI) catalyzes the reversible transformation between IPP and DMAPP, both of which are the general 5-carbon precursors for taxol biosynthesis. In the present study, a new gene encoding IPI was cloned from Taxus media (namely TmIPI with the GenBank Accession Number KP970677) for the first time. The full-length cDNA of TmIPI was 1 232 bps encoding a polypeptide with 233 amino acids, in which the conserved domain Nudix was found. Bioinformatic analysis indicated that the sequence of TmIPI was highly similar to those of other plant IPI proteins, and the phylogenetic analysis showed that there were two clades of plant IPI proteins, including IPIs of angiosperm plants and IPIs of gymnosperm plants. TmIPI belonged to the clade of gymnosperm plant IPIs, and this was consistent with the fact that Taxus media is a plant species of gymnosperm. Southern blotting analysis demonstrated that there was a gene family of IPI in Taxus media. Finally, functional verification was applied to identify the function of TmIPI. The results showed that biosynthesis of ß-carotenoid was enhanced by overexpressing TmIPI in the engineered E. coli strain, and this suggested that TmIPI might be a key gene involved in isoprenoid/terpenoid biosynthesis.


Assuntos
Isomerases de Ligação Dupla Carbono-Carbono/genética , Paclitaxel/biossíntese , Proteínas de Plantas/genética , Taxus/enzimologia , Sequência de Aminoácidos , Clonagem Molecular , DNA Complementar/genética , Escherichia coli , Hemiterpenos , Filogenia , Taxus/genética
14.
Biochemistry ; 53(19): 3187-98, 2014 May 20.
Artigo em Inglês | MEDLINE | ID: mdl-24786474

RESUMO

Phenylalanine-2,3-aminomutase (PAM) from Taxus chinensis, a 4-methylidene-imidazole-5-one (MIO)-dependent enzyme, catalyzes the reversible conversion of (S)-α-phenylalanine into (R)-ß-phenylalanine via trans-cinnamic acid. The enzyme also catalyzes the direct addition of ammonia to trans-cinnamic acid, a reaction that can be used for the preparation of ß-amino acids, which occur as frequent constituents of bioactive compounds. Different hypotheses have been formulated to explain the stereochemistry of the PAM-catalyzed reaction, but structural evidence for these hypotheses is lacking. Furthermore, it remains unclear how the PAM MIO group is formed from the three-amino acid (A-S-G) sequence motif. For these reasons, we elucidated PAM three-dimensional (3D) structures with a bound (R)-ß-phenylalanine analogue and with bound trans-cinnamic acid. In addition, 3D structures of the (inactive) Y322A and N231A mutants of PAM were elucidated, which were found to be MIO-less. We conclude that the stereochemistry of the PAM-catalyzed reaction originates from the enzyme's ability to bind trans-cinnamic acid in two different orientations, with either the si,si face or the re,re face directed toward the MIO group, as evidenced by two distinct carboxylate binding modes. The results also suggest that the N231 side chain promotes MIO group formation by increasing the nucleophilicity of the G177 N atom through acidification of the amide proton.


Assuntos
Transferases Intramoleculares/química , Fenilalanina/química , Proteínas de Plantas/química , Taxus/enzimologia , Motivos de Aminoácidos , Substituição de Aminoácidos , Transferases Intramoleculares/genética , Transferases Intramoleculares/metabolismo , Mutação de Sentido Incorreto , Fenilalanina/genética , Fenilalanina/metabolismo , Proteínas de Plantas/genética , Proteínas de Plantas/metabolismo , Taxus/genética
15.
Biotechnol Appl Biochem ; 61(3): 249-55, 2014.
Artigo em Inglês | MEDLINE | ID: mdl-24237015

RESUMO

The 2-C-methyl-D-erythritol-4-phosphate (MEP) pathway genes encoding DXR and MECS from Taxus species and STR from Catharanthus roseus were used to genetically modify the ajmalicine biosynthetic pathway in hairy root cultures of C. roseus. As expected, the STR-overexpressed root cultures showed twofold higher accumulation of ajmalicine than the control. It was important to discover that overexpression of the single DXR or MECS gene from the MEP pathway also remarkably enhanced ajmalicine biosynthesis in transgenic hairy root cultures, and this suggested that engineering the MEP pathway by overexpression of DXR or MECS promoted the metabolic flux into ajmalicine biosynthesis. The transgenic hairy root cultures with co-overexpression of DXR and STR or MECS and STR had higher levels of ajmalicine than those with overexpression of a single gene alone such as DXR, MECS, and STR. It could be concluded that transgenic hairy root cultures harboring both DXR/MECS and STR possessed an increased flux in the terpenoid indole alkaloid biosynthetic pathway that enhanced ajmalicine yield, which was more efficient than cultures harboring only one of the three genes.


Assuntos
Eritritol/análogos & derivados , Engenharia de Proteínas , Alcaloides de Triptamina e Secologanina/metabolismo , Fosfatos Açúcares/metabolismo , Carbono-Nitrogênio Liases/genética , Carbono-Nitrogênio Liases/metabolismo , Catharanthus/enzimologia , Eritritol/química , Eritritol/metabolismo , Estrutura Molecular , Fósforo-Oxigênio Liases/genética , Fósforo-Oxigênio Liases/metabolismo , Alcaloides de Triptamina e Secologanina/química , Fosfatos Açúcares/química , Taxus/enzimologia , Transferases/genética , Transferases/metabolismo
16.
Plant Cell Rep ; 33(6): 895-904, 2014 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-24463610

RESUMO

We report the production of taxadiene by transformation of N. benthamiana with a taxadiene synthase gene. The production was significantly increased by an elicitor treatment or metabolic pathway shunting. Paclitaxel (Taxol(®)) was first isolated from the bark of the pacific yew tree as an anticancer agent and has been used extensively to treat various types of cancer. Taxadiene, the first committed product of paclitaxel synthesis is cyclized from geranylgeranyl diphosphate (GGPP), and further complex hydroxylation and acylation processes of the unique taxane core skeleton produce paclitaxel. To accomplish de novo production of taxadiene, we transformed Nicotiana benthamiana with a taxadiene synthase (TS) gene. The introduced TS gene under the transcriptional control of the CaMV 35S promoter was constitutively expressed in N. benthamiana, and the de novo production of taxadiene was confirmed by mass spectroscopy profiling. Transformed N. benthamiana homozygous lines produced 11-27 µg taxadiene/g of dry weight. The highest taxadiene production line TSS-8 was further treated with an elicitor, methyl jasmonate, and metabolic pathway shunting by suppression of the phytoene synthase gene expression which resulted in accumulation of increased taxadiene accumulation by 1.4- or 1.9-fold, respectively. In summary, we report that the production of taxadiene in N. benthamiana was possible by the ectopic expression of the TS gene, and higher accumulation of taxadiene could be achieved by elicitor treatment or metabolic pathway shunting of the terpenoid pathway.


Assuntos
Alcenos/metabolismo , Diterpenos/metabolismo , Isomerases/genética , Engenharia Metabólica/métodos , Nicotiana/genética , Taxus/enzimologia , Acetatos/farmacologia , Alcenos/química , Antineoplásicos Fitogênicos/biossíntese , Antineoplásicos Fitogênicos/química , Hidrocarbonetos Aromáticos com Pontes/metabolismo , Ciclopentanos/farmacologia , Diterpenos/química , Inativação Gênica , Humanos , Isomerases/metabolismo , Redes e Vias Metabólicas , Oxilipinas/farmacologia , Paclitaxel/biossíntese , Paclitaxel/química , Reguladores de Crescimento de Plantas/farmacologia , Fosfatos de Poli-Isoprenil/biossíntese , Fosfatos de Poli-Isoprenil/química , Taxoides/metabolismo , Taxus/genética , Nicotiana/química , Nicotiana/enzimologia
17.
J Basic Microbiol ; 54(12): 1387-94, 2014 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-25138463

RESUMO

(E, E, E)-Geranylgeraniol (GGOH) is a valuable ingredient of many perfumes and a valuable precursor for synthesizing pharmaceuticals. In an attempt to increase the GGOH concentration in Coprinopsis cinerea, we demonstrated that the expression of geranylgeranyl diphosphate synthase (ggpps) gene isolated from Taxus x media could promote GGOH production. Furthermore, the concentrations of squalene and ergosterol were measured in the engineered strains. Expectedly, significant decreases of squalene and ergosterol levels were observed in those strains transformed with ggpps gene. This could be explained by the partial redirection of metabolic flux from squalene to GGOH, whose biosynthesis competes for the same precursor with squalene. This work suggested that the expression of ggpps in higher fungi was an effective method for bio-production of GGOH.


Assuntos
Basidiomycota/metabolismo , Diterpenos/metabolismo , Farnesiltranstransferase/genética , Basidiomycota/genética , Ergosterol/metabolismo , Farnesiltranstransferase/metabolismo , Esqualeno/metabolismo , Taxus/enzimologia , Transformação Genética
18.
J Sci Food Agric ; 94(12): 2376-83, 2014 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-24403190

RESUMO

BACKGROUND: 10-Deacetylbaccatin III (10-DAB) and baccatin III are intermediates in the biosynthesis of Taxol (an anti-cancer drug) and useful precursors for semi-synthesis of the drug. In this study, a bioconversion system was established for the production of baccatin III, an advanced precursor of paclitaxel, in the transgenic mushroom Flammulina velutipes expressing the 10-deacetylbaccatin III-10ß-O-acetyltransferase gene. The expression vector pgFvs-TcDBAT containing the 10-deacetylbaccatin III-10ß-O-acetyltransferase (DBAT) gene was constructed and transformed into the cells of F. velutipes by polyethylene glycol-mediated protoplast transformation. RESULTS: Polymerase chain reaction and Southern blotting analysis verified the successful integration of the exogenous DBAT gene into the genome of F. velutipes. Reverse transcription polymerase chain reaction and enzyme activity analyses confirmed that the DBAT gene was expressed in F. velutipes, and DBAT is able to convert substrate into baccatin III. CONCLUSION: The DBAT gene from the plant Taxus chinensis can be functionally expressed in F. velutipes. Transgenic F. velutipes expressing the DBAT gene is able to produce the target product, baccatin III. This is the first report about the transformation and expression of paclitaxel biosynthetic gene in the edible mushroom F. velutipes. This represents a significant step towards bio-production of paclitaxel and its advanced precursor baccatin III in an edible fungus.


Assuntos
Acetiltransferases/genética , Alcaloides/biossíntese , Flammulina/genética , Genes de Plantas , Paclitaxel/biossíntese , Taxoides/metabolismo , Taxus/genética , Acetiltransferases/metabolismo , Flammulina/metabolismo , Organismos Geneticamente Modificados , Taxus/enzimologia
19.
Science ; 383(6683): 622-629, 2024 Feb 09.
Artigo em Inglês | MEDLINE | ID: mdl-38271490

RESUMO

Paclitaxel is a well known anticancer compound. Its biosynthesis involves the formation of a highly functionalized diterpenoid core skeleton (baccatin III) and the subsequent assembly of a phenylisoserinoyl side chain. Despite intensive investigation for half a century, the complete biosynthetic pathway of baccatin III remains unknown. In this work, we identified a bifunctional cytochrome P450 enzyme [taxane oxetanase 1 (TOT1)] in Taxus mairei that catalyzes an oxidative rearrangement in paclitaxel oxetane formation, which represents a previously unknown enzyme mechanism for oxetane ring formation. We created a screening strategy based on the taxusin biosynthesis pathway and uncovered the enzyme responsible for the taxane oxidation of the C9 position (T9αH1). Finally, we artificially reconstituted a biosynthetic pathway for the production of baccatin III in tobacco.


Assuntos
Alcaloides , Sistema Enzimático do Citocromo P-450 , Engenharia Metabólica , Paclitaxel , Proteínas de Plantas , Taxoides , Taxus , Alcaloides/biossíntese , Alcaloides/genética , Hidrocarbonetos Aromáticos com Pontes/química , Hidrocarbonetos Aromáticos com Pontes/metabolismo , Éteres Cíclicos/química , Éteres Cíclicos/metabolismo , Paclitaxel/biossíntese , Taxoides/metabolismo , Taxus/enzimologia , Taxus/genética , Sistema Enzimático do Citocromo P-450/química , Sistema Enzimático do Citocromo P-450/genética , Proteínas de Plantas/química , Proteínas de Plantas/genética
20.
Biochemistry ; 51(26): 5226-8, 2012 Jul 03.
Artigo em Inglês | MEDLINE | ID: mdl-22686417

RESUMO

Burst-phase kinetic analysis was used to evaluate the deamination rate of the aminated-methylidene imidazolone (NH(2)-MIO) adduct of a Taxus phenylalanine aminomutase. The kinetic parameters were interrogated by a non-natural substrate (S)-styryl-α-alanine that yielded a chromophoric styrylacrylate product upon deamination by the aminomutase. Transient inactivation of the enzyme by the NH(2)-MIO adduct intermediate resulted in an initial burst of product, with reactivation by deamination of the adduct. This study validated the rate constants of a kinetic model demonstrating that the NH(2)-MIO adduct and cinnamate intermediate are sufficiently retained to catalyze the natural α- to ß-phenylalanine isomerization.


Assuntos
Amônia-Liases/metabolismo , Cinamatos/química , Cinamatos/metabolismo , Imidazóis/química , Imidazóis/metabolismo , Cinética , Pantoea/enzimologia , Fenilalanina Amônia-Liase/metabolismo , Streptomyces/enzimologia , Taxus/enzimologia
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