369 resultados para Penicillium expansum


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Cold-active lipases are of significant interest as biocatalysts in industrial processes. We have identified a lipase that displayed activity towards long carbon-chain-p-nitrophenyl substrates (C12–C18) at 25 °C from the culture supernatant of an Antarctic Penicillium expansum strain assigned P. expansum SM3. Zymography revealed a protein band of around 30 kDa with activity towards olive oil. DNA fragments of a lipase gene designated as lipPE were isolated from the genomic DNA of P. expansum SM3 by genomic walking PCR. Subsequently, the complete genomic lipPE gene was amplified using gene-specific primers designed from the 5′- and 3′-regions. Reverse transcription PCR was used to amplify the lipPE cDNA. The deduced amino acid sequence consisted of 285 residues that included a predicted signal peptide. Three peptides identified by LC/MS/MS analysis of the proteins in the culture supernatant of P. expansum were also present in the deduced amino acid sequence of the lipPE gene suggesting that this gene encoded the lipase identified by initial zymogram activity analysis. Full analysis of the nucleotide and the deduced amino acid sequences indicated that the lipPE gene encodes a novel P. expansum lipase. The lipPE gene was expressed in E. coli for further characterization of the enzyme with a view of assessing its suitability for industrial applications.

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq)

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Considerable losses during apple fruit storage occur due to microbiological diseases, mainly caused by Penicillium expansum, which in addition to fruit pulp deterioration produces patulin, a mycotoxin with carcinogenic and teratogenic activity. Biological control of post-harvest disease by antagonist yeasts focused on killer toxins is an appreciable alternative to the chemical fungicides, due to the low possibility of toxic residues demonstrated during fermentative processes. Twenty out of 44 yeasts (16 isolated from fruits, 10 from corn silage and 18 from laboratory anthill), showed antagonism against spores of P. expansum. The assay in solid medium pointed the strongest nutrient competition antagonism by D. hansenii strain C1 (31 mm inhibition diameter), while D. hansenii strain C7 (15 mm) showed higher antibiosis and parasitism pattern. In the following step the extracellular activity was tested performing the assay with culture supernatant in Yeast Medium agar, where C. guilliermondii P3 was more effective against conidia germination (inhibition rate of 58.15%) while P. ohmeri showed better inhibition on micelial growth (66.17%). The antibiosis showed by both yeasts could suggest probable mechanism associated with killer phenomenon, once both strains were killer positive against sensitive reference strains (S. cerevisiae NCYC 1006 and P. kluyveri CAY-15). In order to enhance the production of antifungal substance, these yeasts were cultivated with P. expansum, but the difference between culture supernatant obtained from yeasts cultivated alone and with mould was not significant (P > 0.05). The results demonstrated that the yeasts application constitute a promising tool, enhancing the biological control of P. expansum in post-harvest diseases of apple fruit.

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The years of excessive use of thiabendazole to control Penicillium expansum has induced the development of resistance. Sensitivity of fourty eight strains collected from orchards and packinghouses in Emilia Romagna to pure and commercial TBZ was determined in vitro on TBZ amended medium (400μg/mL). Out of 48 strains, 35 were thiabendazole-sensitive (S) and 13 were thiabendazole-resistant (R). Microtiter assay adapted to P. expansum, showed EC50 values ranging from 54 to 320 μg/mL for ten TBZ-resistant strains. At the highest dose (50 μg/mL), resistant strains growth was not inhibited and the reported MICs value were >1000 μg/mL. Therefore, preliminary screening combined with microtiter assay, can be a good strategy to test susceptibility to TBZ. Mutations in the β-tubulin gene were studied on amino acid sequences from residue 167 to residue 357 of 10 P. expansum strains. Mutation at codon 198 was associated with TBZ-resistance. However, its absence in 3 resistant strains can be explained by the involvement of other mechanisms. Moreover, a P. expansum strain LB8/99 showed good antifungal effect against some fungal pathogens through double petri dish assay. It inhibited both mycelium growth and conidia germination of B. cinerea, C. acutatum, and M. laxa, and reduced significantly by 53% and 18% respectively P. expansum. Three major VOCS: geosmin, phenethyl alcolhol (PEA) and an unknown substance were identified by GC-MS analysis. Consistent fumigation of fungal pathogens with PEA (1230 mg/mL), inhibited both conidia germination and mycelium growth of all pathogens, except conidia germination of P. expansum that was reduced by 90% with respect to control. While, the concentration of PEA produced naturally by LB8/99 was ineffective in controlling the pathogens and seemed to have a synergic or additive effect with the other VOCS. Investigations to study the biofumigant effect of LB8/99 on other commodities like seeds and seedlings are in progress.

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Blue mould caused by Penicillium expansum Link is one of the most destructive rot of pome fruit in all growing areas (Snowdon, 1990; Jones and Aldwinckle, 1991; Tonini,1996) In the past, Penicillium rot has been controlled by fungicide postharvest treatment mainly by thiabendazole (TBZ) and benomyl (Hardenburg and Spalding, 1972), but their intense use produced the appearance of resistant strains with a great reduction of their activity The aims of the present study were to characterize the isolates of Pencillium sp causing blue mold on pear in Italy by physiological and biochemical parameters. In particular differencing also the behavior of isolates to relationship with sensitivity or resistance to TBZ treatments. We have examined the early stage of infection in relation to enzyme activity, local modulation of pH, production of organic acids, and to secondary metabolism of pathogen. The results described here confirm that the majority of P. expansum isolates from pears packing houses are resistant to TBZ, Among the TBZ-resistant isolates scored in this work, different isolates (RR) showed higher percentage of conidial germination on TBZ-amended medium compared to non amended medium. This may indicate a stimulatory effect of TBZ on conidial germination. Therefore TBZ treatments are not only ineffective for controlling P. expansum, but they may also increase the severity of blue mould on fruits. In the absence of fungicide, isolates showed a significant difference for infection severity, R and RR isolates are characterized by higher pathogenic fitness on fruits, producing larger lesions than S isolates. These data are supported by the study with laboratory-induced resistant isolates, which shows the lack of correlation between TBZ resistance and osmotic sensitivity, and highlights the association between TBZ resistance and infection severity (Baraldi et al 2003). Enzymatic screening gave a positive reaction to esterase, urease, pectinase activity, in addition, the pathogen is able to synthesize a complex enzyme act to degrade the main components of the cell wall especially pectin and cellulose. Isolated sensitive and resistant are characterized by a good activity of pectinase, especially from poligactoronase, which, as already reported by several studies (D'hallewin et al, 2004; Prusky et al, 2004), are the basis of degradative process of cell wall. Also, although the measure was minor also highlighted some activities of cellulase, but even note in the production of this kind of cellulase and hemicellulase P. Expansum were not targeted, studies have found no other source of information in this regard. Twenty isolates of Penicillium expansum, were tested in vitro ad in vivo for acid production ability and pH drop. We have found that modulation of pH and the organic acids extrusion were influence to various parameter:  Initial pH: in general, the greatest reduction of pH was observed in isolates grown at pH 7, except for four isolates that maintained the pH of the medium close to 7, the others significantly decreased the pH, ranging from 5.5 to 4.1.. In extreme acid condition (pH 3,0) growth and modulation of pH is most lower respect optimal condition (pH 5,0). Also isolates R and RR have showed a greater adaptation to environmental condition more than isolates S.  Time: although the acidification continues for some days, PH modulation is strongest in early hours (48-72 hours)of inoculation process. Time also affects the quality of organic acids, for example in vitro results showed an initial abundant production of succinc acid, followed to important production of galacturoinc acid.  Substrates: there are many differences for the type of acids produced in vitro and in vivo. Results showed in vivo an abundant production of galacturonic, malic, and citric acids and some unknown organic acids in smaller concentrations. Secondary metabolite analysis revealed intra-specific differences, and patulin was found in all isolates, but most significant reduction was observed between in vitro and in vivo samples. There was no correlation between the concentration of patulin, and the percentage of infected fruits, but sample with a lower infection severity of rotten area than the others, showed a significantly lower mycotoxin concentration than samples with a higher lesion diameter of rotten area. Beyond of patulin was detected the presence of another secondary metabolite, penitrem A.

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摘要   "随着人们对身体健康和环境污染的日益重视,化学农药作为控制果实采后病害的主要方法受到了很大限制,科学研究者不得不寻求更加安全有效的防治果实采后病害的新方法。生物防治以其对环境和人类健康不造成危害的优点而逐渐受到人们的青睐。然而,由于生物防治是以活菌为基础,有其局限性和时效性,单独使用拮抗菌很难达到化学药剂完全控制果实采后病害的效果,因此,提高拮抗菌的生防效力成为当今生物防治领域的研究重点。本文主要研究了拮抗菌与不同外源物质配合使用的抑病效果及协同抑病机理;拮抗菌对采前田间和采后贮藏环境条件的适应能力;以及采前应用拮抗菌对果实采后贮藏期间病害的生物防治效力。研究结果表明:   1、酵母拮抗菌Cryptococcus laurentii与低浓度化学杀菌剂imazalil(25g/ml)和kresoxim-methyl(50g/ml)配合使用可以显著提高对冬枣果实采后黑霉病(Alternaria alternata)和褐腐病(Monilinia fructicola)的防治效果,杀菌剂并不影响拮抗菌在冬枣果实伤口的生长动态。   2、酵母拮抗菌Pichia membranefaciens和C. laurentii 与钼酸铵(NH4-Mo,5 mmol/L)和碳酸氢钠(NaHCO3,2%)配合能够显著提高对甜樱桃果实采后褐腐病(M. fructicola)的抑病能力。通过in vitro和扫描电镜观察结果表明,NH4-Mo和NaHCO3能够显著地抑制病原菌M. fructicola在培养基和果实伤口的生长,具有杀菌作用。   3、酵母拮抗菌C. laurentii和Rhodotorula glutinis与硅酸钠(Na2SiO3)配合使用对甜樱桃果实采后青霉病(Penicillium expansum)和褐腐病(M. fructicola)以及对冬枣果实青霉病(P. expansum)和黑霉病(A. alternata)的防治效果更好。经in vitro和扫描电镜观察表明,Na2SiO3对病原菌在培养基和果实伤口的生长有明显的抑制作用。同时,Na2SiO3还能诱导果实苯丙氨酸解氨酶(PAL)、多酚氧化酶(PPO)和过氧化物酶(POD)等抗性相关酶活性的提高。   4、酵母拮抗菌R. glutinis与水杨酸(SA,0.5mmol/L)配合可显著提高对甜樱桃果实采后青霉病(P. expansum)和黑霉病(A. alternata)的抑病能力。SA不影响拮抗菌在果实伤口的生长,in vitro实验中低浓度的SA对病原菌孢子萌发和芽管伸长也没有抑制作用。SA可能是通过诱导果实产生抗性来协同提高拮抗菌的抑病效果,而不是直接抑制病原菌生长。   5、酵母拮抗菌C. laurentii和R. glutinis在气调(Controlled atmospheres, CA)贮藏条件下对樱桃果实采后青霉病(P. expansum)和黑霉病(A. alternata)的防治效果显著提高。气调贮藏不抑制拮抗菌在甜樱桃果实伤口的生长。   6、采前应用酵母拮抗菌C. laurentii 和R. glutinis能够显著抑制甜樱桃果实在采后不同贮藏环境下的发病率。拮抗菌能够在田间果实表面生长并一直保持较高的数量。在试验的三种酵母拮抗菌中,C. laurentii的防病效果最好,该菌不仅能在果实表面迅速生长,也能适应低温和CA贮藏环境。"

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相对于酵母拮抗菌的使用来说,人们对其作用机理了解得还不是很清楚。而了解拮抗菌的抑菌机理却是增强拮抗菌的生防效果以及进行拮抗菌筛选标准的重要前提。本文主要研究了酵母拮抗菌Pichia membranefaciens、Cryptococcus albidus以及Crytococcus laurentii对水果采后软腐病、褐腐病以及青霉病的防治效果,拮抗菌与病原菌之间的相互作用,并对酵母拮抗菌与外源物质配合使用,以及通过遗传改良途径来提高酵母拮抗菌生防能力等进行了初步研究。实验结果如下: 1、酵母拮抗菌P. membranefaciens、C. albidus以及C. laurentii能在果实伤口大量繁殖。采用扫描电镜技术,观察发现在桃果实伤口处P. membranefaciens能紧密地吸附在软腐病菌Rhizopous stolonfier的菌丝体上;C. laurentii与青霉病菌Penicillium expansum在苹果果实伤口处也存在着直接的拮抗作用;但P. membranefaciens和C. albidus对P. expansum的直接作用不明显。 2、酵母拮抗菌P. membranefaciens能够有效地抑制甜樱桃果实在常温和低温贮藏条件下褐腐病的发生。在常温贮藏条件下,P. membranefaciens和褐腐病菌Monilinia fracticola 处理都能够提高果实β-1,3-葡聚糖酶、POD、以及PAL酶的活性,但在低温贮藏条件下,拮抗菌和病原菌处理对甜樱桃果实β-1,3-葡聚糖酶、POD酶活性的升高有促进作用,对PAL和PPO酶活性的诱导作用不明显。 3、梨果实采后经过水杨酸,CaCl2,UV辐射和草酸等各种激发子处理以后,再接种病原菌Alternaria alternata,可以显著降低梨果实的发病率。其中,水杨酸处理的果实发病率最低。不同的激发子均可以诱导梨果实β-1,3-葡聚糖酶、POD、PAL和PPO酶活性的升高,但对果实乙烯含量的影响不明显。 4、氨基糖甙类抗菌素G418能够抑制P. membranefaciens的生长,其最低抑制浓度为100g ml-1。将G418抗性基因Neor插入到酵母-大肠杆菌穿梭表达载体pFL61中,构建PGK启动子驱动的表达载体pFL61-neo,利用醋酸锂转化法转化P. membranefaciens。酵母转化子在非选择性培养条件下连续生长50代后,仍有67.87%的细胞保留该质粒。这表明穿梭表达载体pFL61-neo能稳定地存在于P. membranefaciens中,并且该酵母细胞能有效地识别PGK启动子和终止子指导Neor的表达。 5、酵母拮抗菌C. laurentii和Rhodotorula glutinis与2%的碳酸氢钠混合使用,对冬枣果实青霉病的防治效果明显比单独使用拮抗菌或化学物质的防病效果好。其中,107CFU ml-1的拮抗菌与238 mmol l-1的碳酸氢钠配合使用可以达到单独使用108CFU ml-1拮抗菌的防病效果。另外,钼酸铵作为一种添加剂也能提高R. glutinis对梨果实青霉病和黑霉病的防治效果,但将钼酸铵与Trichosporon sp.配合使用的防病效果不明显。碳酸氢钠和钼酸铵在果实伤口对酵母拮抗菌的生长都有一定的抑制作用。 6、酵母拮抗菌P. membranefaciens在不同碳源、氮源中生长情况表明:在几种氮源中,大豆蛋白胨、酵母提取物、牛肉浸膏对P. membranefaciens的生长有显著的促进作用,其中,大豆蛋白胨的效果最好。在检测以葡萄糖、果糖和麦芽糖作为碳源的生长实验中,发现这几种碳源都能够被拮抗菌很好的利用,其中葡萄糖的利用率最好。小球藻生长因子(CGF)能够明显地促进了P. membranefaciens的生长。但是,CGF的浓度从0.5%增加到1%并没有促进酵母菌细胞数量的增加。

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真菌病害是造成采后新鲜水果损失的一个主要原因。生物拮抗菌能有效地防治果实采后腐烂,降低杀菌剂的用量,从而增加了食品安全性和降低了潜在的环境危害。然而,与化学杀菌剂相比,单独使用生物拮抗菌对果实采后病害的控制效果有时不如化学杀菌剂明显。因此,为了提高拮抗菌的生防效力,有效控制果实的采后病害,本文主要研究了拮抗菌与化学物质使用的防病机理,并从冬枣果实中克隆β-1,3-葡聚糖酶基因并对其特性进行了初步分析。研究结果表明: 1. 酵母菌Cryptococcus laurentii和枯草芽孢杆菌Bacillus subtilis能够有效的防治冬枣果实采后青霉病和黑霉病的发生,而且C. laurentii对病害的防治效果比B. subtilis好。拮抗菌的抑病效果与使用浓度成正比。在接种C. laurentii的伤口上再接种病原菌可以显著刺激酵母菌的生长。然而,在接种B. subtilis的伤口上接种病原菌则不增加拮抗细菌的群体数量。 2. 不同酵母拮抗菌对四种杀菌剂(Deccozil,Sportak,Iprodine和Stroby)的敏感程度不同。其中,R. glutinis对Deccozil,Iprodione和Stroby最敏感。将低剂量的杀菌剂与酵母菌配合能显著增强酵母菌对采后病菌的抑制作用。C. laurentii与100 µl/L的Stroby配合能完全抑制青霉和黑霉病菌的孢子萌发。2%(w/v)的碳酸氢钠(SBC)与C. laurentii或T. pullulans配合使用显著抑制采后病菌(Penicillium expansum或Alternaria alternata)的孢子萌发和芽管伸长。SBC显著增强拮抗菌对梨果实采后青霉病和黑霉病的防治能力。C. laurentii对采后病害的防治效果好于T. pullulans的防治效果。 3. C. laurentii和B. subtilis对冬枣果实抗病性的诱导与接种距离和接种时间密切相关。距接种拮抗菌近的部位,抗性诱导就越强。酵母菌诱导果实的这种抗病性与诱导果实几丁质酶,β-1,3-葡聚糖酶, PAL,POD和PPO活性有关。 4. 采前喷施2 mM的水杨酸(SA)和0.2 mM的茉莉酸甲酯(MeJA)显著降低甜樱桃果实采后褐腐病的病斑直径, 并能诱导甜樱桃果实β-1,3-葡聚糖酶, PAL, POD和PPO活性以及乙烯含量的增加。采前处理对果实抗病性的诱导效果要好于采后处理。采前和采后SA或MeJA处理,贮藏于25C的甜樱桃果实β-1,3-葡聚糖酶和PAL活性显著高于贮藏于0C的甜樱桃果实的酶活性。2 mM的SA显著抑制了Monilinia fructicola的孢子萌发和菌丝扩展;而0.2 mM的MeJA则对M. fructicola几乎没有抑制作用。在贮藏早期,MeJA对果实β-1,3-葡聚糖酶和PAL活性的诱导作用要强于SA的诱导作用。 5. 1 × 108CFU/ml的C. laurentii,以及5 × 107CFU/ml的C. laurentii与0.2 mM的MeJA 配合使用均可诱导桃果实的抗性,并显著降低果实青霉病和褐腐病的病斑直径。0.2 mM的MeJA能促进C. laurentii生长,抑制P. expansum的菌丝扩展, 但对M. fructicola基本没有抑制作用。在25和0C,MeJA和C. laurentii单独或配合使用都诱导了桃果实几丁质酶,β-1,3-葡聚糖酶,PAL和POD活性的升高。这些抗病相关酶活性的升高可能与病斑扩展的程度是直接相关的。 6. 通过设计简并引物,采用降落PCR,扩增出β-1,3-葡聚糖酶基因的同源片段,分别克隆到两个彼此间同源性很低的β-1,3-葡聚糖酶的cDNA全长(Glu-1和Glu-2)。RT-PCR结果表明,Glu-1基因的表达受酵母拮抗菌C. laurentii处理所诱导,这一结果与酵母拮抗菌诱导果实β-1,3-葡聚糖酶活性的增加相呼应;而Glu-2基因的表达则不受C. laurentii处理所诱导。

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用生物和非生物因子来进行采后病害的防治,是一个非常有效的方法。诱导抗性作为控制果蔬采后病害的生物技术,已成为该领域的一个研究热点。然而诱导抗性的机制非常复杂,涉及到寄主、病原菌、激发子之间的相互作用关系。本研究主要利用酵母拮抗菌Pichia membranefaciens和SA处理果实,观察其抗性诱导表达和对采后青霉病菌(Penicillium expansum)的抑制作用,并从蛋白质组学水平上对诱导抗性的机理进行了分析。研究结果表明: 1、酵母拮抗菌P. membranefaciens (5 × 107 cells·ml-1)和SA(0.5 mM)处理采后甜樱桃果实,能够明显地降低病害的发病率和病斑直径。酵母菌和SA处理影响到了果实抗氧化酶的活性,同时还改变了POD同工酶谱和甜樱桃果实的总蛋白含量,并诱导了新的蛋白质条带产生。用光学显微镜和扫描电子显微镜技术观察发现,在in vitro条件下P. membranefaciens能够紧密地结合与病原菌的菌丝,而在in vivo条件下这种结合较为松散。 2、借鉴其它模式植物的方法,我们建立了一整套适用于多汁类植物材料的蛋白质组学研究方法。对于芒果,桃,甜樱桃、苹果以及冬枣等果实,都取得了重复性非常好的2-D图谱。我们应用该技术进一步研究了P. membranefaciens (1 × 108 cells·ml-1)以及SA (0.5 mM)处理对桃果实蛋白质组的诱导影响。结果显示,两种激发子处理都能够诱导桃果实产生抗性,从而减轻青霉病引起的腐烂。在诱导处理1 d以后,酵母拮抗菌和SA分别诱导22和16个蛋白的差异表达。质谱鉴定的蛋白属于6大类:代谢,防御反应,转录,能量途径以及细胞结构。有6个蛋白受到两种激发子的共同调控。其中,4种蛋白(包括glutathione peroxidase, polyphenol oxidase precursor, catalase和methionine sulfoxide reductase) 属于抗氧化蛋白,涉及到活性氧代谢。另2个蛋白(Major allergen Pru av 1和peroxidase)是病程相关蛋白,直接参与植物的防御反应。同时一些磷酸化酶和转录因子也受到两种激发子的调节从而参与果实的抗病反应。酶学测定和Northern杂交的结果表明,拮抗菌与SA处理均能影响过氧化氢酶活性及其基因的表达。 3、采前用较高浓度SA (2 mM) 短时间(10s)处理不同成熟期的甜樱桃果实,能够明显降低果实青霉病的病斑直径,并能减轻较低成熟度果实的发病率。在没有接菌的情况下,SA诱导了33个差异表达的蛋白,其中用质谱鉴定出了26个。而在接种病原菌的情况下,SA诱导了19个差异表达的蛋白,并鉴定出了其中的12个。这些蛋白分别涉及到代谢、防御反应、转录、能量途径、信号转导等过程。在没有接种病原菌的情况下,SA处理诱导了Putative DnaJ heat shock protein, PR1-like protein, Peroxidase, Major allergen Pru av 1 (Pru a 1)和Catalase等与抗病有关的蛋白。而在接种病原菌的情况下,诱导了PR1-like protein, Peroxidase和Catalase蛋白的差异表达。通过酶活性测定以及对细胞学定位的研究,我们发现在没有接种病原菌的情况下,POD的活性受到SA的诱导。但是在接种病原菌以后,诱导效果不明显。