537 resultados para Arn


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Herpetineurontoccoae(Sull.et.Lesq.)Card.〕、(ThuidiumkanedaeSak.)、〔Claopodiumpellucinerve(Mitt.)Best.〕、〔Anomodonrugelii(C.Mll.)Keissl.〕、Haplohymeniumtriste(Ces.)Kindb.〕〔Lescuraeapatens(Lindb.)Arn.etJens〕、(LeskeapolycarpaEhrh.exHedw.)、〔Bryohaplocladiummicrophyllum(Hedw.)R.WatanabeetIwats〕、(FauriellatenerrimaBroth.)Bryohaplocladiumangustifolium(HampeetC.M櫣ll.)R.WatanabeetIwats.〕HaplohymeniumDoz.etMolk.)、(AnomodonHook.etTayl.)、属〔Herpetineuron(C.M櫣ll.)Card.〕(Anomodontaceae)是合理的;小羽藓属(BryohaplocladiumR.WatanabeetIwats.)Claopodium(Lesq.etJam.)RenetCard.〕Leskeaceae)。

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A series of salicylaldimine-based neutral Ni(II) complexes (3a-j) [ArN = CH(C6H40)]Ni(PPh3)Ph [3a,Ar = C6H5; 3b,Ar = C6H4F(o); 3c, Ar = C6H4F(m); 3d, Ar = C6H4F(p); 3e, Ar = C6H3F2(2,4); 3f, Ar = C6H3F2(2,5); 3g, Ar = C6H3F2(2,6); 3h, Ar = C6H3F2(3,5); 3i, Ar = C6H2F3(3,4,5); 3j, Ar = C6H5] have been synthesized in good yield, and the structures of complexes 3a and 3i have been confirmed by X-ray crystallographic analysis. Using modified methylaluminoxane as a cocatalyst, these neutral Ni(II) complexes exhibited high catalytic activities for the vinylic polymerization of norbornene.

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A series of (alpha-diimine)nickel(II) complexes [ArN = C(Nap)C = NAr]NiBr2 (Nap = 1,8-naphthdiyl, Ar = 2,6-Me2C6H3, 3a; Ar = 2,4,6-Me3C6H2 3b; Ar = 2,6-Me-2-4-tBuC(6)H(2), 3c; Ar 2,6-Me-2-4-BrC6H2, 3d; Ar = 2,6-Me-2-4-ClC6H2, 3e; Ar 2,6-iPr(2)C(6)H(3), 3f; Ar = 2,4,6-iPr(3)C(6)H(2), 3g; Ar = 2,6-iPr-4-BrC6H2, 3h) have been synthesized, characterized, and investigated as precatalysts for ethylene polymerization in the presence of modified methylaluminoxane (MMAO).

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alpha-Diimine nickel catalyst hearing two allyl groups [ArN=C](2)C10H6NiBr2 (Ar = 4-allyl-2,6-(i-Pr)(2)C6H2)] (Cat-I) has been synthesized and characterized. The corresponding polymer-incorporated nickel catalysts PC and the SiO2-supported shell-core structure catalyst SC-1 were obtained by the co-polymerization of the olefin groups of Cat-1 with styrene in the presence of a radical initiator. Radical co-polymerizations with styrene in Solution were investigated in detail, and the compositions and molecular weight of the copolymers were determined. All three types of catalysts (Cat-1, PC and SC-1) have been investigated for ethylene polymerization. These catalysts were found to exhibit high activity in the presence of modified methylaluminoxane (MMAO) as a co-catalyst. Among them, the polymer-incorporated PC and SiO2 shell-core catalyst SC-1 displayed very high activity (similar to2.62 and similar to1.11 kg (mmol Ni)(-1) h(-1), respectively) with product molecular weights (M,) in the range 26 x 10(4) to 47 x 10(4) under 0.1 MPa ethylene pressure. The particle morphology of polyethylene produced by the shell-core structure catalyst SC-1 was improved.

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Self-immobilized nickel and iron diimine catalysts bearing one or two allyl groups of [ArN=C](2)(C10H6)NiBr2 [Ar = 4-allyl-2,6-(i-Pr)(2)C6H2] (1), [ArN=C(Me)[Ar'N=C(Me)]C5H3NFeCl2 [Ar = Ar' = 4-allyl-2,6-(i-Pr)(2)C6H3, Ar = 2,6-(i-Pr)(2)C6H3, and Ar' = 4-allyl-2,6-(i-Pr)(2)C6H3] were synthesized and characterized. All three catalysts were investigated for olefin polymerization. As a result, these catalysts not only showed high activities as the catalyst free from the allyl group, such as [ArN=C](2)C10H6,NiBr2 (Ar = 2,6-(i-Pr)(2)C6H2)], but also greatly improved the morphology of polymer particles to afford micron-granula polyolefin. The self-immobilization of catalysts, the formation mechanism of microspherical. polymer, and the influence on the size of the particles are discussed. The molecular structure of self-immobilized nickel catalyst 1 was also characterized by crystallographic analysis.

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A series of 2,6-bis(imino)pyridyl iron and cobalt complexes bearing p-substituent [2,6-(ArN=CMe)(2)C5H3N]-MCl2 (Ar=2,6-Me2C6H3, 2,4,6-Me3C6H2, 2,6-Me-2-4-BrC6H2, 2,6-Me-2-4-ClC6H2, 2,4-Me-2-6-BrC6H2, 2,4-Me-(2)-6-ClC6H2, while M=Fe, Co) have been synthesized and investigated as catalysts for ethylene polymerization in the presence of modified methylaluminoxane as a cocatalyst. The electron effect and positions of the substitueni of pyridinebisimine ligands were observed to affect considerably catalyst activity and polymer property.

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The unsymmetrical allyl containing post-metallocene complex [ArN = C( Me)] [(ArN)-N-' = C(Me)]C5H3NFeCl2 [Ar = 2,6(i- Pr)(2)C6H3, Ar' = 4-allyl-2,6-(i-Pr)(2)C6H3] (3) has been prepared and characterized. Complex (3) can be co-polymerized with styrene in the presence of radical initiator to produce polymerized post-metallocene catalyst which exhibits high activity for ethylene polymerization (2.5 x 10(6) g PE/mol Fe.h).

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合成了含烯丙基不对称型的“茂后”催化剂[ArN=C(Me)][Ar’N=C(Me)]C5H3NFeCl2[Ar=2,6-(i-Pr)2C6H3,Ar’=4-烯丙基-2,6-(i-Pr)2C6H3],通过IR,1H NMR,EI-MS,EA对化合物进行表征.利用这个催化剂上的烯烃基团在自由基引发下与苯乙烯共聚,制备出高分子化的“茂后”催化剂.研究了高分子化前后催化剂催化乙烯聚合行为,高分子化的催化剂在常压13℃下催化乙烯聚合时,活性最高达到2.5×106g PE/mol Fe·h,高于未高分子化之前催化剂的活性.证明了高分子化是“茂后”催化剂理想的固载化方式.

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Tridentate ligand[(2,6-ArN=C(Me))(2)C5H3N](Ar=4-allyl-2,6-(i-Pr)(2)C6H3)(4)which contains allyl groups on each aryl ring was ready prepared and reacted with FeCl2. 4H(2)O to give the precatalyst [(2,6-ArN=C(CH3))(2)C5H3N]. FeCl2 (5). Compounds 2-5 were characterized by H-1 NMR, EI-MS,and IR. The complex 5 which was actived by methylaluminoxane(MAO) exhibits high activity for ethylene polymerization [1.9 x 10(6) g pE.(mol Fe . h)(-1) at 0 degreesC]. It was showed that the activity was decreased with increasing temperature and the polymer product was highly linear PE with (M) over bar (eta) varying from 50000 to 260000.

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Roberts, Michael. 'Recovering a lost inheritance: the marital economy and its absence from the Prehistory of Economics in Britain', in: 'The Marital Economy in Scandinavia and Britain 1400-1900', (Eds) Argen, Maria., Erickson, Amy Louise., Farnham: Ashgate, 2005, pp.239-256 RAE2008

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Projeto de Pós-Graduação/Dissertação apresentado à Universidade Fernando Pessoa como parte dos requisitos para obtenção do grau de Mestre em Ciências Farmacêuticas

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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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UNLABELLED: Salt-inducible kinase 2 (SIK2) is a multifunctional kinase of the AMPK family that plays a role in CREB1-mediated gene transcription and was recently reported to have therapeutic potential in ovarian cancer. The expression of this kinase was investigated in prostate cancer clinical specimens. Interestingly, auto-antibodies against SIK2 were increased in the plasma of patients with aggressive disease. Examination of SIK2 in prostate cancer cells found that it functions both as a positive regulator of cell-cycle progression and a negative regulator of CREB1 activity. Knockdown of SIK2 inhibited cell growth, delayed cell-cycle progression, induced cell death, and enhanced CREB1 activity. Expression of a kinase-dead mutant of SIK2 also inhibited cell growth, induced cell death, and enhanced CREB1 activity. Treatment with a small-molecule SIK2 inhibitor (ARN-3236), currently in preclinical development, also led to enhanced CREB1 activity in a dose- and time-dependent manner. Because CREB1 is a transcription factor and proto-oncogene, it was posited that the effects of SIK2 on cell proliferation and viability might be mediated by changes in gene expression. To test this, gene expression array profiling was performed and while SIK2 knockdown or overexpression of the kinase-dead mutant affected established CREB1 target genes; the overlap with transcripts regulated by forskolin (FSK), the adenylate cyclase/CREB1 pathway activator, was incomplete.

IMPLICATIONS: This study demonstrates that targeting SIK2 genetically or therapeutically will have pleiotropic effects on cell-cycle progression and transcription factor activation, which should be accounted for when characterizing SIK2 inhibitors.

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Dissertação de Mestrado, Engenharia Biológica, Faculdade de Engenharia de Recursos Naturais, Universidade do Algarve, 2008

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Tese de doutoramento, Ciências Biomédicas, Universidade do Algarve, Departamento de Ciências Biomédicas e Medicina, 2014