992 resultados para Virus de planta


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Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq)

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Investimentos em tecnologia: a nova realidade da nova agricultura; Manejo do solo; Clima; Cultivares; Populacao, densidade e epocas de semeadura; Instalacao da lavoura; Controle de plantas daninhas; Manejo de pragas; Controle de doencas; Colheita.

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Los virus fitopatógenos producen alteraciones en el metabolismo y la fisiología de sus huéspedes provocadas principalmente por alteraciones en la expresión génica durante las infecciones. Numerosos cambios están asociados a respuestas de estrés y defensa y sus efectos secundarios son probablemente causantes de los síntomas. El uso de plantas transgénicas que expresan proteínas virales constituye un sistema útil para estudiar la complejidad de la interacción planta-virus. Con el fin de determinar patrones de expresión génica alterados, se emplearon líneas que expresan proteínas del TMV sin función supresora del silenciamiento: la proteína de cápside mutada (CPT42W), la proteína de movimiento (MP) y una línea co-expresante (MPxCPT42W) que mostró alteraciones morfológicas (semejantes a síntomas) y de acumulación de miARNs. Se realizó un microarreglo para detectar cambios transcripcionales asociados a la coexpresión de CPT42W y MP, utilizando como control una línea isogénica con ambos transgenes silenciados y fenotipo normal (mpxcpT42W*). Se estudiaron procesos biológicos cuyos genes mostraron alteraciones por la co-expresión de CPT42W y MP, focalizando en vías relacionadas a estrés oxidativo, inmunidad innata y vías degradación de ARN. Se demostró que CPT42W y MP modularon la defensa innata de un modo complejo: MP parecería actuar como inductor de defensa, alterando los niveles de ERO y SA mientras que CP jugaría un rol antagónico, inhibiendo la expresión de PR-1 y RDR1. Por otro lado, estudios funcionales en vías de degradación de ARN, demostraron que genes componentes del ARN exosoma, inducidos por la expresión de MP y CPT42W, estarían implicados en la alteración de miARNs y constituirían mecanismos alternativos subyacentes a la generación de síntomas en infecciones virales. Este trabajo constituye un importante aporte al entendimiento de los mecanismos de defensa antiviral y de producción de síntomas, proporcionando herramientas para diseñar nuevas estrategias biotecnológicas de control de virosis en cultivos de interés agronómico.

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El impacto negativo que tienen los virus en las plantas hace que estos puedan ejercer un papel ecológico como moduladores de la dinámica espacio-temporal de las poblaciones de sus huéspedes. Entender cuáles son los mecanismos genéticos y los factores ambientales que determinan tanto la epidemiología como la estructura genética de las poblaciones de virus puede resultar de gran ayuda para la comprensión del papel ecológico de las infecciones virales. Sin embargo, existen pocos trabajos experimentales que hayan abordado esta cuestión. En esta tesis, se analiza el efecto de la heterogeneidad del paisaje sobre la incidencia de los virus y la estructura genética de sus poblaciones. Asimismo, se explora como dichos factores ambientales influyen en la importancia relativa que los principales mecanismos de generación de variabilidad genética (mutación, recombinación y migración) tienen en la evolución de los virus. Para ello se ha usado como sistema los begomovirus que infectan poblaciones de chiltepín (Capsicum annuum var. aviculare (Dierbach) D´Arcy & Eshbaugh) en México. Se analizó la incidencia de diferentes virus en poblaciones de chiltepín distribuidas a lo largo de seis provincias biogeográficas, representando el área de distribución de la especie en México, y localizadas en hábitats con diferente grado de intervención humana: poblaciones sin intervención humana (silvestres); poblaciones toleradas (lindes y pastizales), y poblaciones manejadas por el hombre (monocultivos y huertos familiares). Entre los virus analizados, los begomovirus mostraron la mayor incidencia, detectándose en todas las poblaciones y años de muestreo. Las únicas dos especies de begomovirus que se encontraron infectando al chiltepín fueron: el virus del mosaico dorado del chile (Pepper golden mosaic virus, PepGMV) y el virus huasteco del amarilleo de venas del chile (Pepper huasteco yellow vein virus, PHYVV). Por ello, todos los análisis realizados en esta tesis se centran en estas dos especies de virus. La incidencia de PepGMV y PHYVV, tanto en infecciones simples como mixtas, aumento cuanto mayor fue el nivel de intervención humana en las poblaciones de chiltepín, lo que a su vez se asoció con una menor biodiversidad y una mayor densidad de plantas. Además, la incidencia de infecciones mixtas, altamente relacionada con la presencia de síntomas, fue también mayor en las poblaciones cultivadas. La incidencia de estos dos virus también varió en función de la población de chiltepín y de la provincia biogeográfica. Por tanto, estos resultados apoyan una de las hipótesis XVI clásicas de la Patología Vegetal según la cual la simplificación de los ecosistemas naturales debida a la intervención humana conduce a un mayor riesgo de enfermedad de las plantas, e ilustran sobre la importancia de la heterogeneidad del paisaje a diferentes escalas en la determinación de patrones epidemiológicos. La heterogeneidad del paisaje no solo afectó a la epidemiología de PepGMV y PHYVV, sino también a la estructura genética de sus poblaciones. En ambos virus, el nivel de diferenciación genética mayor fue la población, probablemente asociado a la capacidad de migración de su vector Bemisia tabaci; y en segundo lugar la provincia biogeográfica, lo que podría estar relacionado con el papel del ser humano como agente dispersor de PepGMV y PHYVV. La estima de las tasas de sustitución nucleotídica de las poblaciones de PepGMV y PHYVV mostró una rápida dinámica evolutiva. Los árboles filogenéticos de ambos virus presentaron una topología en estrella, lo que sugiere una expansión reciente en las poblaciones de chiltepín. La reconstrucción de los patrones de migración de ambos virus indicó que ésta expansión parece haberse producido desde la zona central de México siguiendo un patrón radial, y en los últimos 30 años. Es importante tener en cuenta que el patrón espacial de la diversidad genética de las poblaciones de PepGMV y PHYVV es similar al descrito previamente para el chiltepín lo que podría dar lugar a la congruencia de las genealogías del huésped y la de los virus. Dicha congruencia se encontró cuando se tuvieron en cuenta únicamente las poblaciones de hábitats silvestres y tolerados, lo que probablemente se debe a una codivergencia en el espacio pero no en el tiempo, dado que la evolución de virus y huésped han ocurrido a escalas temporales muy diferentes. Finalmente, el análisis de la frecuencia de recombinación en PepGMV y PHYVV indicó que esta juega un papel importante en la evolución de ambos virus, dependiendo su importancia del nivel de intervención humana de la población de chiltepín. Este factor afectó también a la intensidad de la selección a la que se ven sometidos los genomas de PepGMV y PHYVV. Los resultados de esta tesis ponen de manifiesto la importancia que la reducción de la biodiversidad asociada al nivel de intervención humana de las poblaciones de plantas y la heterogeneidad del paisaje tiene en la emergencia de nuevas enfermedades virales. Por tanto, es necesario considerar estos factores ambientales a la hora de comprender la epidemiologia y la evolución de los virus de plantas.XVII SUMMARY Plant viruses play a key role as modulators of the spatio-temporal dynamics of their host populations, due to their negative impact in plant fitness. Knowledge on the genetic and environmental factors that determine the epidemiology and the genetic structure of virus populations may help to understand the ecological role of viral infections. However, few experimental works have addressed this issue. This thesis analyses the effect of landscape heterogeneity in the prevalence of viruses and the genetic structure of their populations. Also, how these environmental factors influence the relative importance of the main mechanisms for generating genetic variability (mutation, recombination and migration) during virus evolution is explored. To do so, the begomoviruses infecting chiltepin (Capsicum annuum var. aviculare (Dierbach) D'Arcy & Eshbaugh) populations in Mexico were used. Incidence of different viruses in chiltepin populations of six biogeographical provinces representing the species distribution in Mexico was determined. Populations belonged to different habitats according to the level of human management: populations with no human intervention (Wild); populations naturally dispersed and tolerated in managed habitats (let-standing), and human managed populations (cultivated). Among the analyzed viruses, the begomoviruses showed the highest prevalence, being detected in all populations and sampling years. Only two begomovirus species infected chiltepin: Pepper golden mosaic virus, PepGMV and Pepper huasteco yellow vein virus, PHYVV. Therefore, all the analyses presented in this thesis are focused in these two viruses. The prevalence of PepGMV and PHYVV, in single and mixed infections, increased with higher levels of human management of the host population, which was associated with decreased biodiversity and increased plant density. Furthermore, cultivated populations showed higher prevalence of mixed infections and symptomatic plants. The prevalence of the two viruses also varied depending on the chiltepin population and on the biogeographical province. Therefore, these results support a classical hypothesis of Plant Pathology stating that simplification of natural ecosystems due to human management leads to an increased disease risk, and illustrate on the importance of landscape heterogeneity in determining epidemiological patterns. Landscape heterogeneity not only affected the epidemiology of PepGMV and PHYVV, but also the genetic structure of their populations. Both viruses had the highest level of genetic differentiation at the population scale, probably associated with the XVIII migration patterns of its vector Bemisia tabaci, and a second level at the biogeographical province scale, which could be related to the role of humans as dispersal agents of PepGMV and PHYVV. The estimates of nucleotide substitution rates of the virus populations indicated rapid evolutionary dynamics. Accordingly, phylogenetic trees of both viruses showed a star topology, suggesting a recent diversification in the chiltepin populations. Reconstruction of PepGMV and PHYVV migration patterns indicated that they expanded from central Mexico following a radial pattern during the last 30 years. Importantly, the spatial genetic structures of the virus populations were similar to that described previously for the chiltepin, which may result in the congruence of the host and virus genealogies. Such congruence was found only in wild and let-standing populations. This is probably due to a co-divergence in space but not in time, given the different evolutionary time scales of the host and virus populations. Finally, the frequency of recombination detected in the PepGMV and PHYVV populations indicated that this mechanism plays an important role in the evolution of both viruses at the intra-specific scale. The level of human management had a minor effect on the frequency of recombination, but influenced the strength of negative selective pressures in the viral genomes. The results of this thesis highlight the importance of decreased biodiversity in plant populations associated with the level of human management and of landscape heterogeneity on the emergence of new viral diseases. Therefore it is necessary to consider these environmental factors in order to fully understand the epidemiology and evolution of plant viruses.

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Over the past decade, plants have been used as expression hosts for the production of pharmaceutically important and commercially valuable proteins. Plants offer many advantages over other expression systems such as lower production costs, rapid scale up of production, similar post-translational modification as animals and the low likelihood of contamination with animal pathogens, microbial toxins or oncogenic sequences. However, improving recombinant protein yield remains one of the greatest challenges to molecular farming. In-Plant Activation (InPAct) is a newly developed technology that offers activatable and high-level expression of heterologous proteins in plants. InPAct vectors contain the geminivirus cis elements essential for rolling circle replication (RCR) and are arranged such that the gene of interest is only expressed in the presence of the cognate viral replication-associated protein (Rep). The expression of Rep in planta may be controlled by a tissue-specific, developmentally regulated or chemically inducible promoter such that heterologous protein accumulation can be spatially and temporally controlled. One of the challenges for the successful exploitation of InPAct technology is the control of Rep expression as even very low levels of this protein can reduce transformation efficiency, cause abnormal phenotypes and premature activation of the InPAct vector in regenerated plants. Tight regulation over transgene expression is also essential if expressing cytotoxic products. Unfortunately, many tissue-specific and inducible promoters are unsuitable for controlling expression of Rep due to low basal activity in the absence of inducer or in tissues other than the target tissue. This PhD aimed to control Rep activity through the production of single chain variable fragments (scFvs) specific to the motif III of Tobacco yellow dwarf virus (TbYDV) Rep. Due to the important role played by the conserved motif III in the RCR, it was postulated that such scFvs can be used to neutralise the activity of the low amount of Rep expressed from a “leaky” inducible promoter, thus preventing activation of the TbYDV-based InPAct vector until intentional induction. Such scFvs could also offer the potential to confer partial or complete resistance to TbYDV, and possibly heterologous viruses as motif III is conserved between geminiviruses. Studies were first undertaken to determine the levels of TbYDV Rep and TbYDV replication-associated protein A (RepA) required for optimal transgene expression from a TbYDV-based InPAct vector. Transient assays in a non-regenerable Nicotiana tabacum (NT-1) cell line were undertaken using a TbYDV-based InPAct vector containing the uidA reporter gene (encoding GUS) in combination with TbYDV Rep and RepA under the control of promoters with high (CaMV 35S) or low (Banana bunchy top virus DNA-R, BT1) activity. The replication enhancer protein of Tomato leaf curl begomovirus (ToLCV), REn, was also used in some co-bombardment experiments to examine whether RepA could be substituted by a replication enhancer from another geminivirus genus. GUS expression was observed both quantitatively and qualitatively by fluorometric and histochemical assays, respectively. GUS expression from the TbYDV-based InPAct vector was found to be greater when Rep was expected to be expressed at low levels (BT1 promoter) rather than high levels (35S promoter). GUS expression was further enhanced when Rep and RepA were co-bombarded with a low ratio of Rep to RepA. Substituting TbYDV RepA with ToLCV REn also enhanced GUS expression but more importantly highest GUS expression was observed when cells were co-transformed with expression vectors directing low levels of Rep and high levels of RepA irrespective of the level of REn. In this case, GUS expression was approximately 74-fold higher than that from a non-replicating vector. The use of different terminators, namely CaMV 35S and Nos terminators, in InPAct vectors was found to influence GUS expression. In the presence of Rep, GUS expression was greater using pInPActGUS-Nos rather than pInPActGUS-35S. The only instance of GUS expression being greater from vectors containing the 35S terminator was when comparing expression from cells transformed with Rep, RepA and REnexpressing vectors and either non-replicating vectors, p35SGS-Nos or p35SGS-35S. This difference was most likely caused by an interaction of viral replication proteins with each other and the terminators. These results indicated that (i) the level of replication associated proteins is critical to high transgene expression, (ii) the choice of terminator within the InPAct vector may affect expression levels and (iii) very low levels of Rep can activate InPAct vectors hence controlling its activity is critical. Prior to generating recombinant scFvs, a recombinant TbYDV Rep was produced in E. coli to act as a control to enable the screening for Rep-specific antibodies. A bacterial expression vector was constructed to express recombinant TbYDV Rep with an Nterminal His-tag (N-His-Rep). Despite investigating several purification techniques including Ni-NTA, anion exchange, hydrophobic interaction and size exclusion chromatography, N-His-Rep could only be partially purified using a Ni-NTA column under native conditions. Although it was not certain that this recombinant N-His-Rep had the same conformation as the native TbYDV Rep and was functional, results from an electromobility shift assay (EMSA) showed that N-His-Rep was able to interact with the TbYDV LIR and was, therefore, possibly functional. Two hybridoma cell lines from mice, immunised with a synthetic peptide containing the TbYDV Rep motif III amino acid sequence, were generated by GenScript (USA). Monoclonal antibodies secreted by the two hybridoma cell lines were first screened against denatured N-His-Rep in Western analysis. After demonstrating their ability to bind N-His-Rep, two scFvs (scFv1 and scFv2) were generated using a PCR-based approach. Whereas the variable heavy chain (VH) from both cell lines could be amplified, only the variable light chain (VL) from cell line 2 was amplified. As a result, scFv1 contained VH and VL from cell line 1, whereas scFv2 contained VH from cell line 2 and VL from cell line 1. Both scFvs were first expressed in E. coli in order to evaluate their affinity to the recombinant TbYDV N-His-Rep. The preliminary results demonstrated that both scFvs were able to bind to the denatured N-His-Rep. However, EMSAs revealed that only scFv2 was able to bind to native N-His-Rep and prevent it from interacting with the TbYDV LIR. Each scFv was cloned into plant expression vectors and co-bombarded into NT-1 cells with the TbYDV-based InPAct GUS expression vector and pBT1-Rep to examine whether the scFvs could prevent Rep from mediating RCR. Although it was expected that the addition of the scFvs would result in decreased GUS expression, GUS expression was found to slightly increase. This increase was even more pronounced when the scFvs were targeted to the cell nucleus by the inclusion of the Simian virus 40 large T antigen (SV40) nuclear localisation signal (NLS). It was postulated that the scFvs were binding to a proportion of Rep, leaving a small amount available to mediate RCR. The outcomes of this project provide evidence that very high levels of recombinant protein can theoretically be expressed using InPAct vectors with judicious selection and control of viral replication proteins. However, the question of whether the scFvs generated in this project have sufficient affinity for TbYDV Rep to prevent its activity in a stably transformed plant remains unknown. It may be that other scFvs with different combinations of VH and VL may have greater affinity for TbYDV Rep. Such scFvs, when expressed at high levels in planta, might also confer resistance to TbYDV and possibly heterologous geminiviruses.

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Background. Recent reports have indicated that single-stranded DNA (ssDNA) viruses in the taxonomic families Geminiviridae, Parvoviridae and Anellovirus may be evolving at rates of ∼10-4 substitutions per site per year (subs/site/year). These evolution rates are similar to those of RNA viruses and are surprisingly high given that ssDNA virus replication involves host DNA polymerases with fidelities approximately 10 000 times greater than those of error-prone viral RNA polymerases. Although high ssDNA virus evolution rates were first suggested in evolution experiments involving the geminivirus maize streak virus (MSV), the evolution rate of this virus has never been accurately measured. Also, questions regarding both the mechanistic basis and adaptive value of high geminivirus mutation rates remain unanswered. Results. We determined the short-term evolution rate of MSV using full genome analysis of virus populations initiated from cloned genomes. Three wild type viruses and three defective artificial chimaeric viruses were maintained in planta for up to five years and displayed evolution rates of between 7.4 × 10-4 and 7.9 × 10-4 subs/site/year. Conclusion. These MSV evolution rates are within the ranges observed for other ssDNA viruses and RNA viruses. Although no obvious evidence of positive selection was detected, the uneven distribution of mutations within the defective virus genomes suggests that some of the changes may have been adaptive. We also observed inter-strand nucleotide substitution imbalances that are consistent with a recent proposal that high mutation rates in geminiviruses (and possibly ssDNA viruses in general) may be due to mutagenic processes acting specifically on ssDNA molecules. © 2008 Walt et al; licensee BioMed Central Ltd.

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Groundnut Bud Necrosis Virus (GBNV) is a tripartite ambisense RNA plant virus that belongs to serogroup IV of Tospovirus genus. Non-Structural protein-m (NSm), which functions as movement protein in tospoviruses, is encoded by the M RNA. In this communication, we demonstrate that despite the absence of any putative transmembrane domain, GBNV NSm associates with membranes when expressed in E. coli as well as in N. benthamiana. Incubation of refolded NSm with liposomes ranging in size from 200-250 nm resulted in changes in the secondary and tertiary structure of NSm. A similar behaviour was observed in the presence of anionic and zwitterionic detergents. Furthermore, the morphology of the liposomes was found to be modified in the presence of NSm. Deletion of coiled coil domain resulted in the inability of in planta expressed NSm to interact with membranes. Further, when the C-terminal coiled coil domain alone was expressed, it was found to be associated with membrane. These results demonstrate that NSm associates with membranes via the C-terminal coiled coil domain and such an association may be important for movement of viral RNA from cell to cell.

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Con el objetivo de evaluar la respuesta del frijol común (Phaseolus vulgaris L.) al virus del mosaico amarillo del frijol (BYMV) se seleccionaron las variedades Revolución 81 y Revolución 84, las cuales fueron inoculadas con BYMV en diferentes etapas fenológicas. El experimento consistió de dos etapas; Etapa 1 (vivero) en el período comprendido de julio-septiembre de 1991, en el campo de la Escuela de Sanidad Vegetal, Universidad Nacional Agraria, kilómetro 12 1/2 carretera norte, Managua; y la Etapa II (campo), en La Compañía, Masatepe, Carazo. Las variables evaluadas fueron, número de vainas por planta, número de granos por vaina y rendimiento (peso de granos). Para evaluar las diferencias estadísticas de las variables mencionadas se realizó análisis de varianza. En la Etapa 1 se observó que el menor rendimiento se presentó en el momento de inoculación a los 7 DDE para la variedad Rev. 81 y para la variedad Rev. 84 el menor rendimiento fue a los 15 DDE. En la Etapa II el mayor rendimiento se presentó cuando la inoculación se hizo a los 15 DDE, para la variedad Rev.81 y a los 7 DDE, para la variedad Rev.84. Los resultados obtenidos indican que la variedad Rev.81 y Rev. 84 son susceptibles al BYMV resultando con un menor rendimiento la variedad Rev. 81.

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Este ensayo experimental se realizó en época de postrera de 1992, en los terrenos del vivero de la Universidad Nacional Agraria, con el objetivo de determinar el daño causado por el virus del mosaico común del frijol BCMV y determinar el periodo critico necesario para proteger el cultivo. Las variedades que se utilizaron durante la investigación fueron DOR-364, REV-84, (variedades mejoradas) CA-2343 y CA-1923 (variedades criollas). La metodología usada fue inocular el virus mecánicamente, realizada en 4 momentos (Etapas fenológicas V2, V3, V4, R5). y un testigo sin inocular. Se realizaron observaciones de sistomatología desde la primera inoculación hasta la etapa de maduración fisiológica del cultivo. A partir de la cosecha se tomaron datos del número de vainas por planta, número de semillas por vainas y el peso de semillas por panta (gramos). Los resultados indican que la inoculación del BCMV efectuada en las diferentes etapas influyen sobre el daño en las plantas. Las plantas que fueron inoculadas en la primera etapa mostraron daños más severos y aquellas que se inocularon en la etapa R5 con daños menos severos. La variedad DOR-364 presentó daños por 7,5-36.1 %, la variedad REV-84 de 6-37.5%, la variedad CA-2343 de 8-35.1% y la variedad CA-1923 resultó con daños más severos siendo de 48.9-97.4%. En relación al período crítico las variedades DOR-364, REV-84 y CA-2343, el tiempo de protección requerido para reducir el daño fue de 13 días (Etapa V3) y para la variedad CA-1923 de 25 días (Etapa V2-R5)

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Con el objetivo de evaluar el comportamiento agronómico de vitroplantas de tres cultivaresde quequisque (Xanthosoma spp.) libres del virus DMV producidas a través del cultivo de meristemos, se estableció el ensayo en el CNIA-INTA (Centro Nacional de Investigación Agropecuaria–Instituto Nicaragüense de Tecnología Agropecuaria) en el departamento de Managua, entre los meses abril-diciembre del año 2004. Se evaluaron variables morfológicas: altura de la planta (cm), área foliar (cm²), diámetro del pseudotallo (cm) y número de hojas; de rendimiento: número de cormelos por planta, peso de cormelo (g), rendimiento (kg ha), diámetro de cormelo (cm) y largo de cormelo (cm) y la presencia del virus e insectos asociados al cultivo en los cultivares Masaya (MY), Nueva Guinea (NG) y Blanco (Bco). Se utilizó un diseño de arreglos en Parcelas Divididas conformado por tres bloques, en la parcela grande se ubicaron los cultivares y en las pequeñas la condición sanitaria (sana e infectada). Se realizó ANDEVA y la separación de medias de rangos múltiples de Tukey ( ∞ =0.05). Los cultivares y la condición sanitaria presentaron diferencias estadísticas entre ellas en las variables morfológicas, habiendo obtenido el cultivar NG los mayores promedios: altura de la planta con (64.23 cm ), área foliar con (1129 cm²), diámetro del pseudotallo con (4.68 cm) y número de hojas con (3.90 cm). El rendimiento presentó efecto significativo en las condiciones fitosanitarias, pero no en los cultivares e interacción. Se encontró tendencia al incremento del porcentaje de reinfección de plantas con presencia del DMV a través del tiempo, el cultivar Bco a los 192 dds reportó un máximo valor del (90 %), seguido de los cultivares MY (65 %) y NG (60 %). Las principales plagas asociadas a los cultivares de quequisque fueron del orden Diptera, Homoptera, Coleoptero, Heminoptero y Lepidoptero, considerándose al áfido Aphis gossypii del orden Homoptera como el posible vector del virus DMV.

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No presente trabalho pretendeu-se caracterizar a capacidade supressora das proteínas p20 e p23 de diferentes grupos filogenéticos do CTV e o possível silenciamento da p23 de forma a ser incluída numa estratégia de proteção. A atividade supressora local da proteína p23 de todos os grupos filogenéticos foi caracterizada em Nicotiana benthamiana da linha 16C. Todas as proteínas testadas foram capaz de suprimir o silenciamento local, mas não o silenciamento a curta distância. A supressão local mais eficiente verificou-se para a p23 do Gp 5 e a menos eficiente para os isolados dos Gps 2 e M. Surpreendentemente, a p23 do Gp 5 aboliu completamente o silenciamento sistémico, sugerindo que existe uma relação entre a intensidade do silenciamento local e sistémico. A capacidade supressora local conjunta das proteínas p20 e p23 foi avaliada. A coexpressão de ambas as proteínas revelou atividade supressora mais forte comparada com a capacidade de cada proteína individual, mesmo quando inoculada com metade da densidade ótica, sugerindo a existência de sinergismo entre as proteínas p20 e p23. Para analisar as propriedades supressoras a longo prazo, as proteínas p20 e p23 foram inseridas no vetor viral TRV que assegurou a sua disseminação pela planta e expressão por um período mais alargado. Foram observados sintomas em N. benthamiana para todas as modalidades testadas, tais como, nanismo da planta, lesões necróticas severas nas folhas inoculadas e nas folhas novas ligeiros sintomas de mosaico e enrolamento. Contudo, sistemicamente não foram registadas diferenças na capacidade supressora das proteínas p20 e p23. A possibilidade para silenciar sistemicamente a proteína p23 quando incluída num genoma viral foi avaliada através do uso de plantas e enxertos transgénicos para a p23. A estratégia que envolve o uso de enxertos transgénicos parece indicar resultados promissores que conduzem ao silenciamento da p23, contudo, são resultados que devem ser encarados como preliminares.

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Tese de mestrado, Biologia Molecular e Genética, Universidade de Lisboa, Faculdade de Ciências, 2015

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O enrolamento do arroz é uma doença viral emergente no Brasil causada pelo Rice stripe necrosis virus (RSNV) que é transmitido pelo protozoário Polymyxa graminis. RSNV é um membro do gênero Benyvirus com genoma dividido em 4 RNAs de fita simples no sentido positivo (ssRNA +). Em função da falta de conhecimento sobre a seqüência de nucleotídeos do seu genoma, a detecção de RSNV através de métodos moleculares não é utilizada. O objetivo deste trabalho foi identificar seqüências do genoma de RSNV que possibilitassem sua detecção em plantas de arroz através da técnica de transcrição reversa seguida da reação em cadeia da polimerase (RT-PCR). As seqüências do genoma foram identificadas a partir de clones de uma biblioteca de cDNAs obtidos de uma amostra do vírus parcialmente purificado. Os clones que hibridizaram com sondas sintetizadas a partir de RNA de plantas infectadas com RSNV foram seqüenciados e comparados às seqüências do GenBank. Um fragmento de 957 nt da extremidade 3’ da fita de um dos 4 RNAs genômicos de RSNV foi obtido. A análise da seqüência nucleotídeos desse fragmento não revelou qualquer similaridade com seqüências conhecidas, tampouco indicou uma possível função. Um par de oligonucleotídeos iniciadores foi desenhado a partir de um clone que potencialmente contém uma seqüência de RSNV. A especificidade e a sensibilidade da RT-PCR utilizando esse par de oligonucleotídeos iniciadores, bem como sua eficiência na detecção do vírus em diferentes partes da planta de arroz, foram avaliadas. Os resultados indicam que a RT-PCR é específica para RSNV e pode detectar o vírus em tecido oriundo das raízes, do colo e de folhas com distorção. Comparada ao diagnóstico da doença através da observação de sintomas e de estruturas do vetor, a RT-PCR é uma ferramenta confiável para a diagnose do enrolamento do arroz.