30 research outputs found

    Structure and functional characterization of pyruvate decarboxylase from Gluconacetobacter diazotrophicus

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    BACKGROUND: Bacterial pyruvate decarboxylases (PDC) are rare. Their role in ethanol production and in bacterially mediated ethanologenic processes has, however, ensured a continued and growing interest. PDCs from Zymomonas mobilis (ZmPDC), Zymobacter palmae (ZpPDC) and Sarcina ventriculi (SvPDC) have been characterized and ZmPDC has been produced successfully in a range of heterologous hosts. PDCs from the Acetobacteraceae and their role in metabolism have not been characterized to the same extent. Examples include Gluconobacter oxydans (GoPDC), G. diazotrophicus (GdPDC) and Acetobacter pasteutrianus (ApPDC). All of these organisms are of commercial importance. RESULTS: This study reports the kinetic characterization and the crystal structure of a PDC from Gluconacetobacter diazotrophicus (GdPDC). Enzyme kinetic analysis indicates a high affinity for pyruvate (KM 0.06 mM at pH 5), high catalytic efficiencies, pHopt of 5.5 and Topt at 45 degrees C. The enzyme is not thermostable (T of 18 minutes at 60 degrees C) and the calculated number of bonds between monomers and dimers do not give clear indications for the relatively lower thermostability compared to other PDCs. The structure is highly similar to those described for Z. mobilis (ZmPDC) and A. pasteurianus PDC (ApPDC) with a rmsd value of 0.57 A for C? when comparing GdPDC to that of ApPDC. Indole-3-pyruvate does not serve as a substrate for the enzyme. Structural differences occur in two loci, involving the regions Thr341 to Thr352 and Asn499 to Asp503. CONCLUSIONS: This is the first study of the PDC from G. diazotrophicus (PAL5) and lays the groundwork for future research into its role in this endosymbiont. The crystal structure of GdPDC indicates the enzyme to be evolutionarily closely related to homologues from Z. mobilis and A. pasteurianus and suggests strong selective pressure to keep the enzyme characteristics in a narrow range. The pH optimum together with reduced thermostability likely reflect the host organisms niche and conditions under which these properties have been naturally selected for. The lack of activity on indole-3-pyruvate excludes this decarboxylase as the enzyme responsible for indole acetic acid production in G. diazotrophicus.IS

    Methamphetamine-Induced Dopamine-Independent Alterations in Striatal Gene Expression in the 6-Hydroxydopamine Hemiparkinsonian Rats

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    Unilateral injections of 6-hydroxydopamine into the medial forebrain bundle are used extensively as a model of Parkinson's disease. The present experiments sought to identify genes that were affected in the dopamine (DA)–denervated striatum after 6-hydroxydopamine-induced destruction of the nigrostriatal dopaminergic pathway in the rat. We also examined whether a single injection of methamphetamine (METH) (2.5 mg/kg) known to cause changes in gene expression in the normally DA-innervated striatum could still influence striatal gene expression in the absence of DA. Unilateral injections of 6-hydroxydopamine into the medial forebrain bundle resulted in METH-induced rotational behaviors ipsilateral to the lesioned side and total striatal DA depletion on the lesioned side. This injection also caused decrease in striatal serotonin (5-HT) and 5-hydroxyindoleacetic acid (5-HIAA) levels. DA depletion was associated with increases in 5-HIAA/5-HT ratios that were potentiated by the METH injection. Microarray analyses revealed changes (± 1.7-fold, p<0.025) in the expression of 67 genes on the lesioned side in comparison to the intact side of the saline-treated hemiparkinsonian animals. These include follistatin, neuromedin U, and tachykinin 2 which were up-regulated. METH administration caused increases in the expression of c-fos, Egr1, and Nor-1 on the intact side. On the DA-depleted side, METH administration also increased the expression of 61 genes including Pdgf-d and Cox-2. There were METH-induced changes in 16 genes that were common in the DA-innervated and DA-depleted sides. These include c-fos and Nor-1 which show greater changes on the normal DA side. Thus, the present study documents, for the first time, that METH mediated DA-independent changes in the levels of transcripts of several genes in the DA-denervated striatum. Our results also implicate 5-HT as a potential player in these METH-induced alterations in gene expression because the METH injection also caused significant increases in 5-HIAA/5-HT ratios on the DA-depleted side

    Editorial: Biotechnology of plant secondary metabolites: Phytochemical biopharming as a sustainable contribution to a high-tech bioeconomy

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    Plant cell and tissue culture has made a great contribution to the advance of knowledge in plant biotechnology (Altman 2019). Today thousands of biotech companies distributed around the world produce millions of micropropagated plants, contributing to certified seed programs of a wide spectrum of commercial varieties for the agricultural, forestry and food industries. However, the biotechnological production of secondary metabolites has lagged behind the previously mentioned advances in translational plant biotechnology. So much so that with current developments in cell biology, cell, tissue and plant cultures are considered tools that should promote the use of plant biodiversity as an essential biotechnological resource focused on the production of natural phytocompounds for a wide spectrum of applications (Pasdaran and Hamedi 2017; Ochatt et al., 2022

    Biotechnological Approaches to Produce Phenylpropanoids in Controlled Conditions

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    .Plants synthesize an array of natural products based on the phenylpropane skeleton which have multiple functions, highlighting their antioxidant properties adding values to the nutraceutical, pharmaceutical and cosmetology industries, between others. This paper take attention to four biotechnology advances towards make efficient the production of these secondary metabolites. I.- Design and development of efficient methodologies for plant cultures in Temporary Immersion Bioreactors (TIBs); II.- Management of the in vitro photosynthesis to reach photomixotrophic plant cultures; III.- Elicitation of the phenylpropanoids pathway during in vitro cultures; IV.- Polyploidy induction as a biotechnological tool for plant genetic improvement. The model species have been commercial genotypes of blueberries (Vaccinium corymbosum), raspberries (Rubus idaeus) and maqui (Aristotelia chilensis) and, the phenylpropanoids metabolites have been determined indistinctively in biomass and culture medium from both in vitro and ex vitro plantlets. Perspectives in the industrialization of the phenylpropanoids production as a circular bioeconomic process are discusse
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