72 resultados para NIDULANS


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The G2 DNA damage and slowing of S-phase checkpoints over mitosis function through tyrosine phosphorylation of NIMXcdc2 in Aspergillus nidulans. We demonstrate that breaking these checkpoints leads to a defective premature mitosis followed by dramatic rereplication of genomic DNA. Two additional checkpoint functions, uvsB and uvsD, also cause the rereplication phenotype after their mutation allows premature mitosis in the presence of low concentrations of hydroxyurea. uvsB is shown to encode a rad3/ATR homologue, whereas uvsD displays homology to rad26, which has only previously been identified in Schizosaccharomyces pombe. uvsBrad3 and uvsDrad26 have G2 checkpoint functions over mitosis and another function essential for surviving DNA damage. The rereplication phenotype is accompanied by lack of NIMEcyclinB, but ectopic expression of active nondegradable NIMEcyclinB does not arrest DNA rereplication. DNA rereplication can also be induced in cells that enter mitosis prematurely because of lack of tyrosine phosphorylation of NIMXcdc2 and impaired anaphase-promoting complex function. The data demonstrate that lack of checkpoint control over mitosis can secondarily cause defects in the checkpoint system that prevents DNA rereplication in the absence of mitosis. This defines a new mechanism by which endoreplication of DNA can be triggered and maintained in eukaryotic cells.

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Sterigmatocystin (ST) and the aflatoxins (AFs), related fungal secondary metabolites, are among the most toxic, mutagenic, and carcinogenic natural products known. The ST biosynthetic pathway in Aspergillus nidulans is estimated to involve at least 15 enzymatic activities, while certain Aspergillus parasiticus, Aspergillus flavus, and Aspergillus nomius strains contain additional activities that convert ST to AF. We have characterized a 60-kb region in the A. nidulans genome and find it contains many, if not all, of the genes needed for ST biosynthesis. This region includes verA, a structural gene previously shown to be required for ST biosynthesis, and 24 additional closely spaced transcripts ranging in size from 0.6 to 7.2 kb that are coordinately induced only under ST-producing conditions. Each end of this gene cluster is demarcated by transcripts that are expressed under both ST-inducing and non-ST-inducing conditions. Deduced polypeptide sequences of regions within this cluster had a high percentage of identity with enzymes that have activities predicted for ST/AF biosynthesis, including a polyketide synthase, a fatty acid synthase (alpha and beta subunits), five monooxygenases, four dehydrogenases, an esterase, an 0-methyltransferase, a reductase, an oxidase, and a zinc cluster DNA binding protein. A revised system for naming the genes of the ST pathway is presented.

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Migration of nuclei throughout the mycelium is essential for the growth and differentiation of filamentous fungi. In Aspergillus nidulans, the nudA gene, which is involved in nuclear migration, encodes a cytoplasmic dynein heavy chain. In this paper we use antibodies to characterize the Aspergillus cytoplasmic dynein heavy chain (ACDHC) and to show that the ACDHC is concentrated at the growing tip of the fungal mycelium. We demonstrate that four temperature-sensitive mutations in the nudA gene result in a striking decrease in ACDHC protein. Cytoplasmic dynein has been implicated in nuclear division in animal cells. Because the temperature-sensitive nudA mutants are able to grow slowly with occasional nuclei found in the mycelium and are able to undergo nuclear division, we have created a deletion/disruption nudA mutation and a tightly downregulated nudA mutation. These mutants exhibit a phenotype very similar to that of the temperature-sensitive nudA mutants with respect to growth, nuclear distribution, and nuclear division. This suggests that there are redundant backup motor proteins for both nuclear migration and nuclear division.

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Author Disclosure Statement No competing financial interests exist.

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Lateral gene transfer (LGT) from prokaryotes to microbial eukaryotes is usually detected by chance through genome-sequencing projects. Here, we explore a different, hypothesis-driven approach. We show that the fitness advantage associated with the transferred gene, typically invoked only in retrospect, can be used to design a functional screen capable of identifying postulated LGT cases. We hypothesized that beta-glucuronidase (gus) genes may be prone to LGT from bacteria to fungi (thought to lack gus) because this would enable fungi to utilize glucuronides in vertebrate urine as a carbon source. Using an enrichment procedure based on a glucose-releasing glucuronide analog (cellobiouronic acid), we isolated two gus(+) ascomycete fungi from soils (Penicillium canescens and Scopulariopsis sp.). A phylogenetic analysis suggested that their gus genes, as well as the gus genes identified in genomic sequences of the ascomycetes Aspergillus nidulans and Gibberella zeae, had been introgressed laterally from high-GC gram(+) bacteria. Two such bacteria (Arthrobacter spp.), isolated together with the gus(+) fungi, appeared to be the descendants of a bacterial donor organism from which gus had been transferred to fungi. This scenario was independently supported by similar substrate affinities of the encoded beta-glucuronidases, the absence of introns from fungal gus genes, and the similarity between the signal peptide-encoding 5' extensions of some fungal gus genes and the Arthrobacter sequences upstream of gus. Differences in the sequences of the fungal 5' extensions suggested at least two separate introgression events after the divergence of the two main Euascomycete classes. We suggest that deposition of glucuronides on soils as a result of the colonization of land by vertebrates may have favored LGT of gus from bacteria to fungi in soils.

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En Nicaragua el género Phaseolus, representa una fuente importante de nutrientes que la población incluye en su dieta diaria, además provee ingresos a los productores con los que subsanan una parte de sus necesidades, El 95% de la producción de frijol en el país descansa en pequeños y medianos productores que enfrentan problemas como: Falta de asistencia técnica, poca o ninguna disponibilidad de créditos, poseen terrenos no adecuados para este cultivo y el uso constante de semillas remanentes de un ciclo a otro; Esto ha incidido de forma directa en la disminución de los rendimientos y en el aumento de los niveles de inoculo en la semilla. Son muchas las enfermedades que atacan a esta leguminosa y algunas de estas llegan a infestar y/o infectar la semilla logrando así un eficiente mecanismo de dispersión. Con el objetivo de conocer sobre la calidad fitosanitaria de la semilla utilizada por los productores, evaluar algunas técnicas para la preservación de la misma, determinar el nivel de conocimiento de los productores con respecto a las enfermedades y discernir sobre la efectividad de las técnicas de almacenamiento de la semilla utilizadas por los productores, se realizó este trabajo involucrando 75 productores del país, logrando recolectar de sus manos un total de 15 variedades las que corresponden a los nombres de: DOR-364, RAB-310, Honduras-46, Estelí-150, Estelí-90A, Estelí-B, Negro, Blanco, Chiricano, Rojo criollo, DICTA-114, Balin tíco, Revolución-84 y dos variedades del Centro Nacional de Investigación Agropecuaria (CNIA), DOR-805 y DOR-576. El trabajo se dividió en dos fases: una de campo que consistió en la colecta de datos y muestras de semillas en las zonas de estudio en el mes de Marzo y una de laboratorio en la que se determinaron los diferentes tipos de microorganismos presente en las semillas a través de Observación de síntomas, pruebas de laboratorio y identificación de los microorganismos. Se hizo una prueba de almacenaje mediante el uso de botes plásticos con tapadera, los tratamientos utilizados para la preservación fueron• Cal, Ceniza y Ceniza+Cal en dosis de 80gr de producto por libra de semilla, más o menos 25 libras por quintal de grano y un testigo. Los resultados de las encuestas demuestran que los productores reconocen las enfem1edades como tales, pero no pueden diferenciarlas en su totalidad como causadas por hongos, bacterias o virus. Se identificaron los siguientes patógenos: Rhizoctonia sotaní, Thanatephoms cucumeris, Collectotrichum lindemuthianum, Fusarium solani, Fusarium poae, Fusarium tricinctum, l-i1sarium oxyspomm, Penicillium .;pp, Aspergillus ochraceus, Aspergillus ustus, Aspergillus glaucus (Emericella nidulans)(Eim>tium link), Aspergiilus niger, Aspergillus parasitim Aspergillus candidus, Aspergillus terreus, Rhizopus oryzae, Rhizopus stolonifer, Xanthomona;• campestris pv phaseoli, Pseudomonas spp, el virus del mosaico común no se detectó en este trabajo. Los mejores resultados se observaron en los tratamientos de cal y cal+ceniza, siendo cal+ceniza quién presentó alta significancia en la disminución de la infección por hongos, gorgojos (Bruchidae) y bacterias, pudiendo disminuir hasta un 57% las infecciones de hongos, un 68% de las infecciones por bacterias a nivel superficial y un l 00% la población de gorgojos, con respecto a las presentadas por el testigo de laboratorio. El tratamiento de cal+ceniza es más barato, eficaz y menos peligroso que el uso de cualquier químico.

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二磷酸核酮糖羧化酶/氧化酶(简称Rubisco, EC, 4.1.1.39)是绿色植物光合作用中参与固定CO2的关键酶。在高等植物,该酶是由8个分子量为55KD的大亚基(LSU)和8个分子量为14KD的小亚基(SSU)构成的16聚体。每个大亚基有四个活性中心,具有双向催化功能,其编码基因位于叶绿体基因组大单拷贝区;小亚基功能还不清楚,它由核基因组编码且有几个拷贝;未成熟小亚基N端有一段transit peptide,靠它的定向跨越叶绿体膜。迄今为止,取自几种植物材料的这二种亚基的氨基酸顺序和编码基因的核苷酸顺序分析业已完成。为该酶的遗传操作奠定了必要的基础。 由于Rubisco与人类利用太阳能和提高作物产量直接相关,所以成为通过生物技术进行改造的重大项目。 巢状假囊细菌(Anacyslis nidulans) R2是一种不含限制性内切酶的单细胞原核生物,能营光合作用,其Rubisco大亚基的氨基酸顺序与玉米的LSU同源性高达80%,但是第四个活性部位(Leu 456位)与玉米不同(Sys, 459位),由此导致其对CO2的亲合力降低。另一方面,其rbcL与rbcS仅相隔93个bp,且同属一个操纵子。这意味着有可能用同源DNA片段等位交换的办法来改造其rbcL基因。 根据现有的资料,设计出玉米rbcL与兰藻rbcS定向重组于pUC119的兰图:先从pANP1155中切出0.7kb含蓝藻rbcS的PstI-HindIII片段,克隆进pUC119的lacZ启动子下游得pTAS28,采用Reverse primer作引物进行核苷酸顺序分析,确认蓝藻rbcS基因座落在pTAS28正链上。随后从pZmc460中切出包含玉米rbcL基因1.7kb的BglII-HincII片段,将它插入pTAS28的HincⅡ-BamHⅠ双酶切位点,得到pTMN3;为了比较,在另一个质粒pTMN7于1.7kb片段之前加进0.1kb的PstI-HaeIII蓝藻DNA。根据玉米rbcL基因核苷酸顺序(1218-1251)合成一个Oligonucleotide probe,对这三个质粒的总RNA抽提物进行Northern Blot,得到明显的杂交斑点;接着用菌体总蛋白冻干品进行了Western分析,并以新鲜的玉米和烟草叶片为对照,得到阳性结果。显然这二种基因重组之后仍能在宿主E. coli中正常表达。 真正的挑战应是下一步用上述二种质粒转化兰藻A. nidulans R2,考查其能否整合进基因组并表现出较低的氧化酶活性。

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Marine Streptomyces are potential candidates for novel natural products and industrial catalysts. In order to set up biosynthesis approach for a holomycin-producing strain M095 isotated from Jiaozhou Bay, China, a genetic transformation system was established using intergeneric conjugation. The plasmid pIJ8600 consists of an origin of replication for Escherichia coli, a phage integrase directing efficient site-specific integration in bacterial chromosome, thiostrepton-induced promoter and an attP sequence. Using E. coli ET12567 (pUZ8002) carrying pIJ8600 as a conjugal donor, while it was mated with strain M095, pIJ8600 was mobilized to the recipient and the transferred DNA was also integrated into the recipient chromosome. The frequency of exconjugants was 1.9 +/- 0.13 x 10(-4) per recipient cell. Analysis of eight exconjugants showed pIJ8600 was stable integrated at a single chromosomal site (attB) of the Streptomyces genome. The DNA sequence of the attB was cloned and shown to be conserved. The results of growth and antimicrobial activity analysis indicated that the integration of pIJ8600 did not seem to affect the biosynthesis of antibiotics or other essential amino acids. To demonstrate the feasibility of above gene transfer system, the allophycocyanin gene (apc) from cyanobacterium Anacystis nidulans UTEX625 was expressed in strain M095, and the results indicated heterologous allophycocyanin could be expressed and folded effectively. (c) 2006 Elsevier GmbH. All rights reserved.

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作者所在的课题组,自1998年以来从胶州湾海泥中陆续分离了800株海洋放线菌,并从4株放线菌中分离出了12个新结构活性化合物。选择产生新颖抗肿瘤抗生素的海洋放线菌M045和M048,产全霉素的海洋放线菌M095和产蒽醌类化合物的海洋放线菌M097为研究材料,建立了海洋放线菌的遗传转化体系,为海洋放线菌的遗传工程操作及天然化合物组合生物合成奠定了基础。 (1)通过接合转移建立了菌株M045的遗传转化体系。用来源于蓝藻Anacystis nidulans UTEX625的别藻蓝蛋白基因验证了转化体系的有效性。通过PCR及基因组步移方法获得长度为1709bp的部分聚酮合成酶(PKS)基因,分析其同放射菌素基因具有同源性,利用基因中断插入失活该基因,但未获得突变株。因此尝试通过反向遗传学方法,克隆该菌株中新骨架抗肿瘤抗生素——中国霉素的生物合成基因簇,本研究已经构建了该菌株Fosmid基因组文库,对基因组文库的筛选工作正在进行中。 (2)利用PEG-介导的质粒pIJ702转化原生质体和接合转移两种方法均成功获得菌株M048的转化子,其中接合转移率高达10-4。菌株M048来源于高盐的海洋环境,维持原生质体所需渗透压与模式菌株—变铅青链霉菌(Streptomyces lividans)有很大差异,本研究对菌株M048原生质体形成和再生的各种因素进行了优化,获得了渗透压稳定剂蔗糖最佳浓度为0.4M。 质粒pIJ8600整合于菌株M048染色体上,对该转化株的抑菌活性、薄层层析(TLC)以及HPLC-MS进行了分析。结果表明,同野生菌株相比,该转化株对7种受试菌的抑菌活性显著增强,TLC显示差异的化合物条带,HPLC-MS显示化合物组分有差异。因此质粒pIJ8600的整合,引起菌株次级代谢产物生物合成途径的改变,使有抑菌活性的化合物大量累积。 从菌株M048染色体上克隆获得了1196bp的部分PKS基因,通过基因中断插入失活该基因,结果显示M048突变株次级代谢产物抑菌活性增强,HPLC分析发现显著差异。初步分析该PKS基因的中断使菌株体内某些生物合成途径受阻,而大量合成抗菌活性强的chandrananimycin C,或者产生了抑菌活性强的其它化合物。 (3)本研究成功建立了菌株M095的接合转移体系。M095/pIJ8600转化株的生物学活性分析并未发现差异,表明该菌株染色体上的整合位点(attB)是中性(neutral)的。通过PCR以及基因组步移的方法克隆获得了该菌株的部分糖基转移酶基因,该基因中断突变株对4株受试菌的抑菌活性增强,HPLC显示有差异,表明该糖基转移酶基因参与了菌株M095活性次级代谢产物的生物合成过程。 (4)对于菌株M097,用接合转移法成功获得了转化子。实现了别藻蓝蛋白基因的重组表达,并纯化了表达产物,体外试验表明其具有清除羟基自由基能力。结果表明来源于蓝藻的外源基因可以在海洋放线菌体内有效表达和正确折叠,初步验证了本研究所建立的海洋放线菌遗传转化体系的稳定性及有效性。对M097/pIJ8600转化株的生物学活性分析,未发现差异,表明该菌株染色体上的整合位点是中性的。 本论文首次将基因工程技术引入四株海洋放线菌,建立了海洋放线菌自身的基因转移系统,为利用基因工程技术改造海洋放线菌的天然化合物生物合成途径提供了方法。对部分PKS基因中断突变株的生物学活性及化学分析,初步揭示了通过遗传转化方法进行化合物组合生物合成的可行性。

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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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The cyanobacterium Synechococcus sp. PCC 7942 (Anacystis nidulans R2) adjusts its photosynthetic function by changing one of the polypeptides of photosystem II. This polypeptide, called Dl, is found in two forms in Synechococcus sp. PCC 7942. Changing the growth light conditions by increasing the light intensity to higher levels results in replacement of the original form of D 1 polypeptide, D 1: 1, with another form, D 1 :2. We investigated the role of these two polypeptides in two mutant strains, R2S2C3 (only Dl:l present) and R2Kl (only Dl:2 present) In cells with either high or low PSI/PSII. R2S2C3 cells had a lower amplitude for 77 K fluorescence emission at 695 nm than R2Kl cells. Picosecond fluorescence decay kinetics showed that R2S2C3 cells had shorter lifetimes than R2Kl cells. The lower yields and shorter lifetimes observed in the D 1 and Dl:2 containing cells. containing cells suggest that the presence of D 1: 1 results in more photochemical or non-photochemical quenching of excitation energy In PSII. One of the most likely mechanisms for the increased quenching in R2S2C3 cells could be an increased efficiency in the transfer of excitation energy from PSII to PSI. However, photophysical studies including 77 K fluorescence measurements and picosecond time resolved decay kinetics comparing low and high PSI/PSII cells did not support the hypothesis that D 1: 1 facilitates the dissipation of excess energy by energy transfer from PSII to PSI. In addition physiological studies of oxygen evolution measurements after photoinhibition treatments showed that the two mutant cells had no difference in their susceptibility to photoinhibition with either high PSI/PSII ratio or low PSI/PSII ratio. Again suggesting that, the energy transfer efficiency from PSII to PSI is likely not a factor in the differences between Dl:l and Dl:2 containing cells.

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Les processus mitochondriaux tels que la réplication et la traduction sont effectués par des complexes multiprotéiques. Par contre, le métabolisme et la voie de maturation des ARN mitochondriaux (p. ex précurseurs des ARNt et des ARNr) sont habituellement traités comme une suite de réactions catalysées par des protéines séparées. L’exécution fidèle et optimale de ces processus mitochondriaux, exige un couplage étroit nécessaire pour la canalisation des intermédiaires métaboliques. Or, les évidences en faveur de l'interconnexion postulée de ces processus cellulaires sont peu nombreuses et proviennent en grande partie des interactions protéine-protéine. Contrairement à la perception classique, nos résultats révèlent l’organisation des fonctions cellulaires telles que la transcription, la traduction, le métabolisme et la régulation en supercomplexes multifonctionnels stables, dans les mitochondries des champignons (ex Saccharomyces cerevisiae, Aspergillus nidulans et Neurospora crassa), des animaux (ex Bos taurus), des plantes (B. oleracea et Arabidopsis thaliana) et chez les bactéries (ex E. coli) à partir desquelles les mitochondries descendent. La composition de ces supercomplexes chez les champignons et les animaux est comparable à celle de levure, toutefois, chez les plantes et E. coli ils comportent des différences notables (ex, présence des enzymes spécifiques à la voie de biosynthèse des sucres et les léctines chez B. oleracea). Chez la levure, en accord avec les changements dûs à la répression catabolique du glucose, nos résultats révèlent que les supercomplexes sont dynamiques et que leur composition en protéines dépend des stimulis et de la régulation cellulaire. De plus, nous montrons que l’inactivation de la voie de biosynthèse des lipides de type II (FASII) perturbe l’assemblage et/ou la biogenèse du supercomplexe de la RNase P (responsable de la maturation en 5’ des précurseurs des ARNt), ce qui suggère que de multiples effets pléiotropiques peuvent être de nature structurale entre les protéines. Chez la levure et chez E. coli, nos études de la maturation in vitro des précurseurs des ARNt et de la protéomique révèlent l’association de la RNase P avec les enzymes de la maturation d’ARNt en 3’. En effet, la voie de maturation des pré-ARNt et des ARNr, et la dégradation des ARN mitochondriaux semblent êtres associées avec la machinerie de la traduction au sein d’un même supercomplexe multifonctionnel dans la mitochondrie de la levure. Chez E. coli, nous avons caractérisé un supercomplexe similaire qui inclut en plus de la RNase P: la PNPase, le complexe du RNA degradosome, l’ARN polymérase, quatre facteurs de transcription, neuf aminoacyl-tRNA synthétases, onze protéines ribosomiques, des chaperons et certaines protéines métaboliques. Ces résultats supposent l’association physique de la transcription, la voie de maturation et d’aminoacylation des ARNt, la dégradation des ARN. Le nombre de cas où les activités cellulaires sont fonctionnellement et structurellement associées est certainement à la hausse (ex, l’éditosome et le complexe de la glycolyse). En effet, l’organisation en supercomplexe multifonctionnel représente probablement l’unité fonctionnelle dans les cellules et les analyses de ces super-structures peuvent devenir la prochaine cible de la biologie structurale.

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Résumé La Ribonucléase P (RNase P) est une enzyme principalement reconnue pour sa participation à la maturation en 5’des ARN de transfert (ARNt). Cependant, d’autres substrats sont reconnus par l’enzyme. En général, la RNase P est composée d’une sous-unité ARN (le P-ARN, codé par le gène rnpB) qui porte le centre actif de l’enzyme et d’une ou de plusieurs sous-unités protéiques (la P-protéine). Les P-ARN chez toutes les bactéries, la majorité des archéobactéries et dans le génome nucléaire de la plupart des eucaryotes, possèdent généralement une structure secondaire très conservée qui inclut le noyau (P1-P4); l’hélice P4 constitue le site catalytique de l’enzyme et l’hélice P1 apparie les extrémités du P-ARN en stabilisant sa structure globale. Les P-ARN mitochondriaux sont souvent moins conservés et difficiles à découvrir. Dans certains cas, les seules régions de structure primaire qui restent conservées sont celles qui définissent le P4 et le P1. Pour la détection des gènes rnpB, un outil de recherche bioinformatique, basé sur la séquence et le profil de structure secondaire, a été développé dans le laboratoire. Cet outil permet le dépistage de toutes les séquences eucaryotes (nucléaires et mitochondriales) du gène avec une très grande confiance (basée sur une valeur statistique, E-value). Chez les champignons, plusieurs ascomycètes encodent un gène rnpB dans leur génome mitochondrial y compris tous les membres du genre d’Aspergillus. Cependant, chez les espèces voisines, Neurospora crassa, Podospora anserina et Sordaria macrospora, une version mitochondriale de ce gène n’existe pas. Au lieu de cela, elles contiennent deux copies nucléaires du gène, légèrement différentes en taille et en contenu nucléotidique. Mon projet a été établi dans le but d’éclaircir l’évolution de la RNase P mitochondriale (mtRNase P) chez ces trois espèces voisines d’Aspergillus. En ce qui concerne les résultats, des modèles de structures secondaires pour les transcrits de ces gènes ont été construits en se basant sur la structure consensus universelle de la sous-unité ARN de la RNase P. Pour les trois espèces, par la comparaison de ces modèles, nous avons établi que les deux copies nucléaires du gène rnpB sont assez distinctes en séquence et en structure pour pouvoir y penser à une spécialisation de fonction de la RNase P. Chez N. crassa, les deux P-ARN sont modifiés probablement par une coiffe et les extrémités 5’, 3’ sont conformes à nos modèles, ayant un P1 allongé. Encore chez N. crassa, nous avons constaté que les deux copies sont transcrites au même niveau dans le cytoplasme et que la plus petite et la plus stable d’entre elles (Nc1) se retrouve dans l’extrait matriciel mitochondrial. Lors du suivi du P-ARN dans diverses sous-fractions provenant de la matrice mitochondriale soluble, Nc1 est associée avec l’activité de la RNase P. La caractérisation du complexe protéique, isolé à partir de la fraction active sur un gel non dénaturant, révèle qu’il contient au moins 87 protéines, 73 d’entre elles ayant déjà une localisation mitochondriale connue. Comme chez la levure, les protéines de ce complexe sont impliquées dans plusieurs fonctions cellulaires comme le processing de l’ADN/ARN, le métabolisme, dans la traduction et d’autres (par exemple : la protéolyse et le repliement des protéines, ainsi que la maintenance du génome mitochondrial). Pour trois protéines, leur fonction est non déterminée.

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Lignocellulosic biomass is probably the best alternative resource for biofuel production and it is composed mainly of cellulose, hemicelluloses and lignin. Cellulose is the most abundant among the three and conversion of cellulose to glucose is catalyzed by the enzyme cellulase. Cellulases are groups of enzymes act synergistically upon cellulose to produce glucose and comprise of endoglucanase, cellobiohydrolase and β-glucosidase. β -glucosidase assumes great importance due to the fact that it is the rate limiting enzyme. Endoglucanases (EG) produces nicks in the cellulose polymer exposing reducing and non reducing ends, cellobiohydrolases (CBH) acts upon the reducing or non reducing ends to liberate cellobiose units, and β - glucosidases (BGL) cleaves the cellobiose to liberate glucose completing the hydrolysis. . β -glucosidases undergo feedback inhibition by their own product- β glucose, and cellobiose which is their substrate. Few filamentous fungi produce glucose tolerant β - glucosidases which can overcome this inhibition by tolerating the product concentration to a particular threshold. The present study had targeted a filamentous fungus producing glucose tolerant β - glucosidase which was identified by morphological as well as molecular method. The fungus showed 99% similarity to Aspergillus unguis strain which comes under the Aspergillus nidulans group where most of the glucose tolerant β -glucosidase belongs. The culture was designated the strain number NII 08123 and was deposited in the NII culture collection at CSIR-NIIST. β -glucosidase multiplicity is a common occurrence in fungal world and in A.unguis this was demonstrated using zymogram analysis. A total 5 extracellular isoforms were detected in fungus and the expression levels of these five isoforms varied based on the carbon source available in the medium. Three of these 5 isoforms were expressed in higher levels as identified by the increased fluorescence (due to larger amounts of MUG breakdown by enzyme action) and was speculated to contribute significantly to the total _- β glucosidase activity. These isoforms were named as BGL 1, BGL3 and BGL 5. Among the three, BGL5 was demonstrated to be the glucose tolerant β -glucosidase and this was a low molecular weight protein. Major fraction was a high molecular weight protein but with lesser tolerance to glucose. BGL 3 was between the two in both activity and glucose tolerance.121 Glucose tolerant .β -glucosidase was purified and characterized and kinetic analysis showed that the glucose inhibition constant (Ki) of the protein is 800mM and Km and Vmax of the enzyme was found to be 4.854 mM and 2.946 mol min-1mg protein-1respectively. The optimumtemperature was 60°C and pH 6.0. The molecular weight of the purified protein was ~10kDa in both SDS as well as Native PAGE indicating that the glucose tolerant BGL is a monomeric protein.The major β -glucosidase, BGL1 had a pH and temperature optima of 5.0 and 60 °C respectively. The apparent molecular weight of the Native protein is 240kDa. The Vmax and Km was 78.8 mol min-1mg protein-1 and 0.326mM respectively. Degenerate primers were designed for glycosyl hydrolase families 1, 3 and 5 and the BGL genes were amplified from genomic DNA of Aspergillus unguis. The sequence analyses performed on the amplicons results confirmed the presence of all the three genes. Amplicon with a size of ~500bp was sequenced and which matched to a GH1 –BGL from Aspergillus oryzae. GH3 degenerate primers producing amplicons were sequenced and the sequences matched to β - glucosidase of GH3 family from Aspergillus nidulans and Aspergillus acculateus. GH5 degenerate primers also gave amplification and sequencing results indicated the presence of GH5 family BGL gene in the Aspergillus unguis genomic DNA.From the partial gene sequencing results, specific as well as degenerate primers were designed for TAIL PCR. Sequencing results of the 1.0 Kb amplicon matched Aspergillus nidulans β -glucosidase gene which belongs to the GH1 family. The sequence mainly covered the N-Terminal region of the matching peptide. All the three BGL proteins ie. BGL1, BGL3 and BGL5 were purified by chromatography an electro elution from Native PAGE gels and were subjected to MALDI-TOF mass spectrometric analysis. The results showed that BGL1 peptide mass matched to . β -glucosidase-I of Aspergillus flavus which is a 92kDa protein with 69% protein coverage. The glucose tolerant β -glucosidase BGL5 mass matched to the catalytic C-terminal domain of β -glucosidase-F from Emericella nidulans, but the protein coverage was very low compared to the size of the Emericella nidulans protein. While comparing the size of BGL5 from Aspergillus unguis, the protein sequence coverage is more than 80%. BGL F is a glycosyl hydrolase family 3 protein.The properties of BGL5 seem to be very unique, in that it is a GH3 β -glucosidase with a very low molecular weight of ~10kDa and at the same time having catalytic activity and glucose 122 tolerance which is as yet un-described in GH β -glucosidases. The occurrence of a fully functional 10kDA protein with glucose tolerant BGL activity has tremendous implications both from the points of understanding the structure function relationships as well as for applications of BGL enzymes. BGL-3 showed similarity to BGL1 of Aspergillus aculateus which was another GH3 β -glucosidase. It may be noted that though PCR could detect GH1, GH3 and GH5 β-glucosidases in the fungus, the major isoforms BGL1 BGL3 and BGL5 were all GH3 family enzymes. This would imply that β-glucosidases belonging to other families may also co-exist in the fungus and the other minor isoforms detected in zymograms may account for them. In biomass hydrolysis, GT-BGL containing BGL enzyme was supplemented to cellulase and the performances of blends were compared with a cocktail where commercial β- glucosidase was supplemented to the biomass hydrolyzing enzyme preparation. The cocktail supplemented with A unguis BGL preparation yielded 555mg/g sugar in 12h compared to the commercial enzyme preparation which gave only 333mg/g in the same period and the maximum sugar yield of 858 mg/g was attained in 36h by the cocktail containing A. unguis BGL. While the commercial enzyme achieved almost similar sugar yield in 24h, there was rapid drop in sugar concentration after that, indicating probably the conversion of glucose back to di-or oligosaccharides by the transglycosylation activity of the BGl in that preparation. Compared this, the A.unguis enzyme containing preparation supported peak yields for longer duration (upto 48h) which is important for biomass conversion to other products since the hydrolysate has to undergo certain unit operations before it goes into the next stage ie – fermentation in any bioprocesses for production of either fuels or chemicals.. Most importantly the Aspergillus unguis BGL preparation yields approximately 1.6 fold increase in the sugar release compared to the commercial BGL within 12h of time interval and 2.25 fold increase in the sugar release compared to the control ie. Cellulase without BGL supplementation. The current study therefore leads to the identification of a potent new isolate producing glucose tolerant β - glucosidase. The organism identified as Aspergillus unguis comes under the Aspergillus nidulans group where most of the GT-BGL producers belong and the detailed studies showed that the glucose tolerant β -glucosidase was a very low molecular weight protein which probably belongs to the glycosyl hydrolase family 3. Inhibition kinetic studies helped to understand the Ki and it is the second highest among the nidulans group of Aspergilli. This has promoted us for a detailed study regarding the mechanism of glucose tolerance. The proteomic 123 analyses clearly indicate the presence of GH3 catalytic domain in the protein. Since the size of the protein is very low and still its active and showed glucose tolerance it is speculated that this could be an entirely new protein or the modification of the existing β -glucosidase with only the catalytic domain present in it. Hydrolysis experiments also qualify this BGL, a suitable candidate for the enzyme cocktail development for biomass hydrolysis

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Nitrogen uptake and metabolism are essential to microbial growth. Gat1 belongs to a conserved family of zinc finger containing transcriptional regulators known as GATA-factors. These factors activate the transcription of Nitrogen Catabolite Repression (NCR) sensitive genes when preferred nitrogen sources are absent or limiting. Cryptococcus neoformans GAT1 is an ortholog to the Aspergillus nidulans AreA and Candida albicans GAD genes. In an attempt to define the function of this transcriptional regulator in C. neoformans, we generated null mutants (gat1 Delta) of this gene. The gat 1 mutant exhibited impaired growth on all amino acids tested as sole nitrogen sources, with the exception of arginine and proline. Furthermore, the gat1 mutant did not display resistance to rapamycin, an immunosuppressant drug that transiently mimics a low-quality nitrogen source. Gal is not required for C. neoformans survival during macrophage infection or for virulence in a mouse model of cryptococcosis. Microarray analysis allowed the identification of target genes that are regulated by Gat1 in the presence of proline, a poor and non-repressing nitrogen source. Genes involved in ergosterol biosynthesis, iron uptake, cell wall organization and capsule biosynthesis, in addition to NCR-sensitive genes, are Gat1-regulated in C. neoformans. (C) 2010 Elsevier Inc. All rights reserved.