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Dive into the research topics where Luciano G. Fietto is active.

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Featured researches published by Luciano G. Fietto.


Journal of Experimental Botany | 2009

The ER luminal binding protein (BiP) mediates an increase in drought tolerance in soybean and delays drought-induced leaf senescence in soybean and tobacco.

Maria Anete S. Valente; Jerusa A. Q. A. Faria; Juliana R. L. Soares-Ramos; Pedro A. B. Reis; Guilherme L. Pinheiro; Newton Deniz Piovesan; Angélica T. Morais; Carlos C. Menezes; Marco Antonio Oliva Cano; Luciano G. Fietto; Marcelo Ehlers Loureiro; Francisco J. L. Aragão; Elizabeth P.B. Fontes

The ER-resident molecular chaperone BiP (binding protein) was overexpressed in soybean. When plants growing in soil were exposed to drought (by reducing or completely withholding watering) the wild-type lines showed a large decrease in leaf water potential and leaf wilting, but the leaves in the transgenic lines did not wilt and exhibited only a small decrease in water potential. During exposure to drought the stomata of the transgenic lines did not close as much as in the wild type, and the rates of photosynthesis and transpiration became less inhibited than in the wild type. These parameters of drought resistance in the BiP overexpressing lines were not associated with a higher level of the osmolytes proline, sucrose, and glucose. It was also not associated with the typical drought-induced increase in root dry weight. Rather, at the end of the drought period, the BiP overexpressing lines had a lower level of the osmolytes and root weight than the wild type. The mRNA abundance of several typical drought-induced genes [NAC2, a seed maturation protein (SMP), a glutathione-S-transferase (GST), antiquitin, and protein disulphide isomerase 3 (PDI-3)] increased in the drought-stressed wild-type plants. Compared with the wild type, the increase in mRNA abundance of these genes was less (in some genes much less) in the BiP overexpressing lines that were exposed to drought. The effect of drought on leaf senescence was investigated in soybean and tobacco. It had previously been reported that tobacco BiP overexpression or repression reduced or accentuated the effects of drought. BiP overexpressing tobacco and soybean showed delayed leaf senescence during drought. BiP antisense tobacco plants, conversely, showed advanced leaf senescence. It is concluded that BiP overexpression confers resistance to drought, through an as yet unknown mechanism that is related to ER functioning. The delay in leaf senescence by BiP overexpression might relate to the absence of the response to drought.


International Journal of Molecular Sciences | 2013

Plant bZIP Transcription Factors Responsive to Pathogens: A Review

Murilo S. Alves; Silvana P. Dadalto; Amanda Gonçalves; Gilza de Souza; Vanessa Barros; Luciano G. Fietto

Transcription factors of the basic leucine zipper (bZIP) family control important processes in all eukaryotes. In plants, bZIPs are master regulators of many central developmental and physiological processes, including morphogenesis, seed formation, abiotic and biotic stress responses. Modulation of the expression patterns of bZIP genes and changes in their activity often contribute to the activation of various signaling pathways and regulatory networks of different physiological processes. However, most advances in the study of plant bZIP transcription factors are related to their involvement in abiotic stress and development. In contrast, there are few examples of functional research with regard to biotic stress, particularly in the defense against pathogens. In this review, we summarize the recent progress revealing the role of bZIP transcription factors in the biotic stress responses of several plant species, from Arabidopsis to cotton. Moreover, we summarize the interacting partners of bZIP proteins in molecular responses during pathogen attack and the key components of the signal transduction pathways with which they physically interact during plant defense responses. Lastly, we focus on the recent advances regarding research on the functional role of bZIPs in major agricultural cultivars and examine the studies performed in this field.


Journal of Biological Chemistry | 2008

A New Branch of Endoplasmic Reticulum Stress Signaling and the Osmotic Signal Converge on Plant-specific Asparagine-rich Proteins to Promote Cell Death

Maximiller D.L. Costa; Pedro A. B. Reis; Maria Anete S. Valente; Andre Irsigler; Claudine M. Carvalho; Marcelo Ehlers Loureiro; Francisco J. L. Aragão; Rebecca S. Boston; Luciano G. Fietto; Elizabeth P.B. Fontes

NRPs (N-rich proteins) were identified as targets of a novel adaptive pathway that integrates endoplasmic reticulum (ER) and osmotic stress signals based on coordinate regulation and synergistic up-regulation by tunicamycin and polyethylene glycol treatments. This integrated pathway diverges from the molecular chaperone-inducing branch of the unfolded protein response (UPR) in several ways. While UPR-specific targets were inversely regulated by ER and osmotic stresses, NRPs required both signals for full activation. Furthermore, BiP (binding protein) overexpression in soybean prevented activation of the UPR by ER stress inducers, but did not affect activation of NRPs. We also found that this integrated pathway transduces a PCD signal generated by ER and osmotic stresses that result in the appearance of markers associated with leaf senescence. Overexpression of NRPs in soybean protoplasts induced caspase-3-like activity and promoted extensive DNA fragmentation. Furthermore, transient expression of NRPs in planta caused leaf yellowing, chlorophyll loss, malondialdehyde production, ethylene evolution, and induction of the senescence marker gene CP1. This phenotype was alleviated by the cytokinin zeatin, a potent senescence inhibitor. Collectively, these results indicate that ER stress induces leaf senescence through activation of plant-specific NRPs via a novel branch of the ER stress response.


PLOS Pathogens | 2008

Regulated Nuclear Trafficking of rpL10A Mediated by NIK1 Represents a Defense Strategy of Plant Cells against Virus

Claudine M. Carvalho; Anésia A. Santos; Silvana R. Pires; Carolina S. Rocha; Daniela I. Saraiva; João Paulo Machado; Eliciane C. Mattos; Luciano G. Fietto; Elizabeth P.B. Fontes

The NSP-interacting kinase (NIK) receptor-mediated defense pathway has been identified recently as a virulence target of the geminivirus nuclear shuttle protein (NSP). However, the NIK1–NSP interaction does not fit into the elicitor–receptor model of resistance, and hence the molecular mechanism that links this antiviral response to receptor activation remains obscure. Here, we identified a ribosomal protein, rpL10A, as a specific partner and substrate of NIK1 that functions as an immediate downstream effector of NIK1-mediated response. Phosphorylation of cytosolic rpL10A by NIK1 redirects the protein to the nucleus where it may act to modulate viral infection. While ectopic expression of normal NIK1 or a hyperactive NIK1 mutant promotes the accumulation of phosphorylated rpL10A within the nuclei, an inactive NIK1 mutant fails to redirect the protein to the nuclei of co-transfected cells. Likewise, a mutant rpL10A defective for NIK1 phosphorylation is not redirected to the nucleus. Furthermore, loss of rpL10A function enhances susceptibility to geminivirus infection, resembling the phenotype of nik1 null alleles. We also provide evidence that geminivirus infection directly interferes with NIK1-mediated nuclear relocalization of rpL10A as a counterdefensive measure. However, the NIK1-mediated defense signaling neither activates RNA silencing nor promotes a hypersensitive response but inhibits plant growth and development. Although the virulence function of the particular geminivirus NSP studied here overcomes this layer of defense in Arabidopsis, the NIK1-mediated signaling response may be involved in restricting the host range of other viruses.


Bioresource Technology | 2012

The influence of presaccharification, fermentation temperature and yeast strain on ethanol production from sugarcane bagasse.

Carlos Joulbert Alves Souza; Daniela A. Costa; Marina Q.R.B. Rodrigues; Ancély F. dos Santos; Mariana Rocha Lopes; Aline B.P. Abrantes; Patrícia dos Santos Costa; Wendel Batista da Silveira; Flávia Maria Lopes Passos; Luciano G. Fietto

Ethanol can be produced from cellulosic biomass in a process known as simultaneous saccharification and fermentation (SSF). The presence of yeast together with the cellulolytic enzyme complex reduces the accumulation of sugars within the reactor, increasing the ethanol yield and saccharification rate. This paper reports the isolation of Saccharomyces cerevisiae LBM-1, a strain capable of growth at 42 °C. In addition, S. cerevisiae LBM-1 and Kluyveromyces marxianus UFV-3 were able to ferment sugar cane bagasse in SSF processes at 37 and 42 °C. Higher ethanol yields were observed when fermentation was initiated after presaccharification at 50°C than at 37 or 42° C. Furthermore, the volumetric productivity of fermentation increased with presaccharification time, from 0.43 g/L/h at 0 h to 1.79 g/L/h after 72 h of presaccharification. The results suggest that the use of thermotolerant yeasts and a presaccharification stage are key to increasing yields in this process.


Proteome | 2014

Transcription Factor Functional Protein-Protein Interactions in Plant Defense Responses

Murilo S. Alves; Silvana P. Dadalto; Amanda Gonçalves; Gilza de Souza; Vanessa Barros; Luciano G. Fietto

Responses to biotic stress in plants lead to dramatic reprogramming of gene expression, favoring stress responses at the expense of normal cellular functions. Transcription factors are master regulators of gene expression at the transcriptional level, and controlling the activity of these factors alters the transcriptome of the plant, leading to metabolic and phenotypic changes in response to stress. The functional analysis of interactions between transcription factors and other proteins is very important for elucidating the role of these transcriptional regulators in different signaling cascades. In this review, we present an overview of protein-protein interactions for the six major families of transcription factors involved in plant defense: basic leucine zipper containing domain proteins (bZIP), amino-acid sequence WRKYGQK (WRKY), myelocytomatosis related proteins (MYC), myeloblastosis related proteins (MYB), APETALA2/ ETHYLENE-RESPONSIVE ELEMENT BINDING FACTORS (AP2/EREBP) and no apical meristem (NAM), Arabidopsis transcription activation factor (ATAF), and cup-shaped cotyledon (CUC) (NAC). We describe the interaction partners of these transcription factors as molecular responses during pathogen attack and the key components of signal transduction pathways that take place during plant defense responses. These interactions determine the activation or repression of response pathways and are crucial to understanding the regulatory networks that modulate plant defense responses.


Journal of Biological Chemistry | 2011

A novel transcription factor, ERD15 (Early Responsive to Dehydration 15), connects endoplasmic reticulum stress with an osmotic stress-induced cell death signal.

Murilo S. Alves; Pedro A. B. Reis; Silvana P. Dadalto; Jerusa A. Q. A. Faria; Elizabeth P.B. Fontes; Luciano G. Fietto

As in all other eukaryotic organisms, endoplasmic reticulum (ER) stress triggers the evolutionarily conserved unfolded protein response in soybean, but it also communicates with other adaptive signaling responses, such as osmotic stress-induced and ER stress-induced programmed cell death. These two signaling pathways converge at the level of gene transcription to activate an integrated cascade that is mediated by N-rich proteins (NRPs). Here, we describe a novel transcription factor, GmERD15 (Glycine max Early Responsive to Dehydration 15), which is induced by ER stress and osmotic stress to activate the expression of NRP genes. GmERD15 was isolated because of its capacity to stably associate with the NRP-B promoter in yeast. It specifically binds to a 187-bp fragment of the NRP-B promoter in vitro and activates the transcription of a reporter gene in yeast. Furthermore, GmERD15 was found in both the cytoplasm and the nucleus, and a ChIP assay revealed that it binds to the NRP-B promoter in vivo. Expression of GmERD15 in soybean protoplasts activated the NRP-B promoter and induced expression of the NRP-B gene. Collectively, these results support the interpretation that GmERD15 functions as an upstream component of stress-induced NRP-B-mediated signaling to connect stress in the ER to an osmotic stress-induced cell death signal.


Veterinary Microbiology | 2012

Staphylococcus aureus of bovine origin: Genetic diversity, prevalence and the expression of adhesin-encoding genes

Raphael Contelli Klein; Mary Hellen Fabres-Klein; Maria Aparecida Vasconcelos Paiva Brito; Luciano G. Fietto; Andréa Oliveira Barros Ribon

Staphylococcus aureus is a well-armed pathogen that is a leading cause of bovine mastitis. Attempts to define a set of bacterial proteins that are crucial for infection have failed. The identification of these proteins is important to define biomarkers that can be used for diagnostic purposes and to identify potential vaccine targets. In this study, seven genes that encode virulence factors were analyzed in 85 bacterial isolates that were derived from animals with bovine mastitis. The clfB, spa, sdrCDE and fnBP genes were detected in 91.8%, 85.9%, 85.9% and 63.5% of the isolates, respectively. At least one gene was present in all of the strains, while the most prevalent combination was clfB and sdrCDE (82.4%). The genetic diversity of the isolates was high and allowed for clustering into more than 40 groups, with each group containing bacteria collected from different locations. The gene expression of the four most prevalent adhesins was examined in nine genetically distinct strains. No common pattern of expression was observed for the genes, suggesting that the capacity of S. aureus to cause infection may rely on differential expression of the virulence factors in different isolates. Our results conclude that using only one antigen is unlikely to provide effective protection against bovine mastitis and suggest that a combination of at least three adhesins may be more suitable for developing preventive therapies. We also conclude that the characterization of isolates distributed worldwide is necessary to improve our understanding of pathogenesis in the natural populations of S. aureus.


Cell Calcium | 2012

The involvement of calcium carriers and of the vacuole in the glucose-induced calcium signaling and activation of the plasma membrane H(+)-ATPase in Saccharomyces cerevisiae cells.

Leoneide Érica Maduro Bouillet; Anamaria de Souza Cardoso; Eduardo Perovano; Renata Rebeca Pereira; Erica Milena de Castro Ribeiro; Maria José Magalhães Trópia; Luciano G. Fietto; Renata Tisi; Enzo Martegani; Ieso de Miranda Castro; Rogélio Lopes Brandão

Previous work from our laboratories demonstrated that the sugar-induced activation of plasma membrane H(+)-ATPase in Saccharomyces cerevisiae is dependent on calcium metabolism with the contribution of calcium influx from external medium. Our results demonstrate that a glucose-induced calcium (GIC) transporter, a new and still unidentified calcium carrier, sensitive to nifedipine and gadolinium and activated by glucose addition, seems to be partially involved in the glucose-induced activation of the plasma membrane H(+)-ATPase. On the other hand, the importance of calcium carriers that can release calcium from internal stores was analyzed in glucose-induced calcium signaling and activation of plasma membrane H(+)-ATPase, in experimental conditions presenting very low external calcium concentrations. Therefore the aim was also to investigate how the vacuole, through the participation of both Ca(2+)-ATPase Pmc1 and the TRP homologue calcium channel Yvc1 (respectively, encoded by the genes PMC1 and YVC1) contributes to control the intracellular calcium availability and the plasma membrane H(+)-ATPase activation in response to glucose. In strains presenting a single deletion in YVC1 gene or a double deletion in YVC1 and PMC1 genes, both glucose-induced calcium signaling and activation of the H(+)-ATPase are nearly abolished. These results suggest that Yvc1 calcium channel is an important component of this signal transduction pathway activated in response to glucose addition. We also found that by a still undefined mechanism Yvc1 activation seems to correlate with the changes in the intracellular level of IP(3). Taken together, these data demonstrate that glucose addition to yeast cells exposed to low external calcium concentrations affects calcium uptake and the activity of the vacuolar calcium channel Yvc1, contributing to the occurrence of calcium signaling connected to plasma membrane H(+)-ATPase activation.


Antonie Van Leeuwenhoek International Journal of General and Molecular Microbiology | 2012

Strategies to select yeast starters cultures for production of flavor compounds in cachaça fermentations

Anderson Proust Gonçalves de Souza; Maristela de Araújo Vicente; Raphael Contelli Klein; Luciano G. Fietto; Maurício Xavier Coutrim; Robson José de Cássia Franco Afonso; Leandro Dias Araújo; Paulo Henrique Alves da Silva; Leoneide Érica Maduro Bouillet; Ieso de Miranda Castro; Rogélio Lopes Brandão

In this work, we have used classical genetics techniques to find improved starter strains to produce cachaça with superior sensorial quality. Our strategy included the selection of yeast strains resistant to 5,5′,5″-trifluor-d,l-leucine (TLF) and cerulenin, since these strains produce higher levels of higher alcohols and esters than parental strains. However, no clear relationship was observed when levels of flavoring compounds were compared with the levels expression of the genes (BAT1, BAT2, ATF2, EEB1 genes) involved with the biosynthesis of flavoring compounds. Furthermore, we determined the stability of phenotypes considered as the best indicators of the quality of the cachaça for a parental strain and its segregants. By applying the principal component analysis, a cluster of segregants, showing a high number of characteristics similar to the parental strain, was recognized. One segregant, that was resistant to TLF and cerulenin, also showed growth stability after six consecutive replications on plates containing high concentrations of sugar and ethanol. “Cachaça” produced at laboratory scale using a parental strain and this segregant showed a higher level of flavoring compounds. Both strains predominated in an open fermentative process through seven cycles, as was shown by mitochondrial restriction fragment length polymorphisms analysis. Based on the physical chemical composition of the obtained products, the results demonstrate the usefulness of the developed strategies for the selection of yeast strains to be used as starters in “cachaça” production.

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João Paulo Viana Leite

Universidade Federal de Viçosa

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Murilo S. Alves

Universidade Federal de Viçosa

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Douglas Costa Gontijo

Universidade Federal de Viçosa

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Elizabeth P.B. Fontes

National Institute of Standards and Technology

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Ieso de Miranda Castro

Universidade Federal de Ouro Preto

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Líria Granato Nunes

Universidade Federal de Viçosa

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Marina Q.R.B. Rodrigues

Universidade Federal de Viçosa

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