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1.
周楠  雷秉坤周幸  余垚吕红 《遗传》2013,35(9):1135-1142
SAGA(Spt-Ada-Gcn5 acetyltransferase)复合物是真核生物中高度保守的蛋白复合体, 参与转录激活、mRNA转运等诸多生物学过程。为了探究SAGA复合物亚基的潜在生物学功能, 文章以裂殖酵母(Schizosaccharomyces pombe)SAGA复合物核心结构亚基Spt20为诱饵蛋白进行酵母双杂交筛选, 获得了Ppb1蛋白。Ppb1是真核生物重要信号分子-钙调蛋白磷酸酶的催化亚基。酵母双杂交验证及免疫共沉淀实验均表明Spt20与Ppb1可以在体内发生蛋白相互作用。裂殖酵母ppb1+缺失突变体对高浓度Cl-敏感, 而spt20+缺失突变体则能抵抗高浓度的外源Cl-, 维持细胞的正常生长。荧光共定位分析表明, 当外源Cl-浓度升高时, Ppb1蛋白能够从细胞质迁移入核, 与Spt20蛋白在细胞核内发生共定位。遗传分析显示, spt20+缺失可以抑制ppb1+缺失突变体对Cl-高度敏感的表型, spt20+与ppb1+处于Cl-平衡调节的同一通路, 且spt20+位于ppb1+的下游。上述结果表明, spt20+缺失突变体耐受外源高浓度Cl-, Spt20参与了钙调蛋白磷酸酶调节的Cl-胞内平衡。在高等生物中胞内Cl-浓度异常升高与心肌缺血/再灌注损伤等疾病的发生密切相关。鉴于Spt20在真核生物中高度保守, Spt20可能成为潜在的药物靶点应用于Cl-失衡相关疾病的防治中。  相似文献   

2.
【背景】柠檬酸合成酶是碳代谢途径的中心酶,其在三羧酸循环(tricarboxylic acid cycle,TCA)、氨基酸合成和乙醛酸循环中发挥着重要作用,是柠檬酸合成的关键酶。本论文所选用的是一株高产柠檬酸的黑曲霉菌株CGMCC10142。【目的】克隆柠檬酸合成酶关键基因,构建柠檬酸合成酶的敲除菌株并鉴定其在黑曲霉菌株高产柠檬酸过程中的功能及影响。【方法】采用根癌农杆菌转化方法并利用同源重组原理,采用抗性筛选和致死型反向筛选的双重筛选方法获得正确敲除株。对转化子在不同碳源下的生长情况进行观察并对柠檬酸发酵过程中菌丝球变化和产酸量进行分析,最后通过荧光定量PCR分析柠檬酸合成酶基因对黑曲霉积累柠檬酸的影响,及其对主要代谢途径中重要酶相关基因和其他的表达量的影响。【结果】以柠檬酸高产菌株黑曲霉CGMCC10142为出发菌,构建一株遗传稳定的柠檬酸合成酶敲除的菌株T1-2。结果发现该菌株在以葡萄糖为碳源的培养基上生长缓慢并且产生孢子量减少。通过摇瓶发酵产酸实验,结果表明敲除菌在84 h产酸量为64.3 g/L,相对于出发菌的98.7g/L降低了34.85%。通过荧光定量PCR发现柠檬酸合成酶的表达量是下降的,同时重要酶的表达量都下降。【结论】该菌株的柠檬酸合成酶基因对柠檬酸积累具有重要作用,但存在其他同工酶基因,该基因敲除仅使产酸合成降低34.85%,同时发现该柠檬酸合成酶的顺畅表达有助于主代谢途径中各关键酶的高效表达,本研究可为研究黑曲霉高产柠檬酸机理奠定基础。  相似文献   

3.
吴泳仪  李琳  李河 《微生物学报》2022,62(7):2509-2520
【目的】炭疽病是油茶的一种重要病害,果生炭疽菌是油茶炭疽病的主要致病菌。本文对果生炭疽菌小分子GTP酶Rab7进行研究,为油茶炭疽病的防控治理提供依据。【方法】构建CfRAB7基因敲除载体,通过PEG介导的原生质体转化、抗性筛选和PCR电泳验证获得果生炭疽菌突变体菌株△Cfrab7和互补菌株△Cfrab7/CfRAB7。进一步分析CfRAB7基因敲除突变体△Cfrab7的生长、产孢、附着孢的形成、胁迫应答、液泡融合和致病力等生物学表型。【结果】在PDA和MM培养基上,突变体△Cfrab7的菌落直径显著减小,产孢量和附着孢形成率显著降低,且不能穿透玻璃纸;在10mmol/LH2O2条件下,△Cfrab7生长受到明显抑制;进一步研究发现突变体△Cfrab7液泡无法正常融合,在油茶有伤和无伤的幼叶上均不发病。【结论】CfRAB7基因参与调控果生炭疽菌生长产孢、附着孢形成、H2O2胁迫应答、液泡融合和致病力。  相似文献   

4.
范成莉 《微生物学报》2019,59(7):1395-1407
【目的】研究产孢相关蛋白Srp1在新生隐球菌有性产孢和致病性中的作用及机理。【方法】采用基因枪转化技术构建新生隐球菌SRP1基因缺失突变体及其互补菌株,并通过小鼠致病性实验和菌株交配实验检测Srp1在新生隐球菌有性产孢和致病性中的作用。【结果】与野生型菌株相比,srp1Δ突变体小鼠致病性无差异;srp1Δ突变体能够交配并形成双核菌丝,但丧失产生担孢子的能力;初步机理分析表明srp1Δ突变体交配后其减数分裂过程被阻断,从而导致srp1Δ突变体不能产生担孢子。【结论】产孢相关蛋白Srp1不影响新生隐球菌的致病性,但可通过调控减数分裂过程影响新生隐球菌的有性生殖。  相似文献   

5.
摘要:【目的】研究红色红曲菌(Monascus ruber) M7中控制红曲色素合成的聚酮合酶基因(pksPT)的功能。【方法】对M7 中pksPT进行了生物信息学分析;借助农杆菌介导的红曲菌转化技术敲除M7中pksPT,获得pksPT缺失突变体(ΔpksPT),比较M7和ΔpksPT菌落形态、产孢能力、生长速度、色素和桔霉素产量的差异。【结果】pksPT全长8687 bp,编码蛋白含有2690个氨基酸,属于非还原Ⅲ型聚酮合酶,包括β-酮酯酰基合成酶(KS)、酰基载体蛋白(ACP)、酰基转移酶(AT)和甲基转移酶(ME)四种结构域,组合形式为KS-AT-ACPACP-ME。ΔpksPT的分析结果显示,pksPT的敲除不影响其产分生孢子和闭囊壳的能力;ΔpksPT不能产生任何一种红曲色素;其生长速度明显快于野生菌株M7;桔霉素产量较M7 提高了2.8倍。【结论】pksPT是M7中控制红曲色素合成的关键基因,红曲色素的合成显著影响红曲菌产桔霉素能力和生长速度。  相似文献   

6.
张健  王小霞  张颖  高强 《微生物学通报》2015,42(6):1010-1016
【目的】筛选出可产生赭曲霉毒素A (OTA)的霉菌菌株。【方法】利用CYA和YES培养基从实验室32个霉菌样品中筛选目的菌株。利用高效液相色谱-荧光检测法对OTA产生菌进行初筛,利用高效液相色谱-质谱联用对OTA初筛菌株进行复筛。通过菌落形态、菌丝及分生孢子形态、ITS DNA序列、β-Tubulin基因序列及Calmodulin基因序列分析等鉴定目的菌株。【结果】得到一株OTA产生菌株1062,该菌株能在25 °C条件下,在CYA、YES和CA培养基中很好生长。结合形态学、对培养基的要求以及上述3个基因序列的进化树分析,该菌株属于黑曲霉(Aspergillus niger)。【结论】菌株1062具有OTA产生能力,是一株黑曲霉。  相似文献   

7.
【目的】构建蜡样芽胞杆菌(Bacillus cereus)ccp A缺失菌株,并初步探索ccp A基因对其碳代谢及氨肽酶生产的影响。【方法】利用温敏型质粒p KSV7构建蜡样芽胞杆菌CZ ccp A基因缺失突变株CZΔccp A,通过回补菌株对敲除株表型进行验证;不同碳源发酵对比菌株碳代谢的变化,进行氨肽酶发酵优化。【结果】成功构建ccp A缺失菌株CZΔccp A与回补菌株CZ1,三株菌在LB培养基中生长无差异;在柠檬酸钠以及甘露低聚糖为碳源时,菌株的代谢产生明显变化;以D-木糖为单一碳源时,氨肽酶的产量提高48.25%。【结论】CZ ccp A基因对柠檬酸钠、甘露低聚糖、D-木糖为单一碳源时的代谢可能具有调控作用,ccp A基因缺失可以提高蜡样芽胞杆菌CZ的氨肽酶产量。  相似文献   

8.
巩尊洋  罗玮  杜瑶  余晓斌 《微生物学报》2017,57(10):1527-1535
【目的】探究crgA基因在三孢布拉霉合成类胡萝卜素过程中的调控作用。【方法】克隆三孢布拉霉crgA基因并利用split-marker策略敲除该基因;在表型特征、关键酶基因转录水平、类胡萝卜素合成水平等方面将基因敲除株与野生株进行比较分析。【结果】与野生型菌株相比,crgA基因敲除菌产孢能力明显下降,而类胡萝卜素合成途径中的关键酶基因转录水平明显提高,在发酵120h后β-胡萝卜素的积累量提高了31.2%。将crgA基因重新导入到敲除菌后,该菌的性状恢复至野生型。【结论】crgA基因调控三孢布拉霉的生长和产孢能力,并通过调控类胡萝卜素关键酶基因表达来调控类胡萝卜素的合成,是一个负调控因子。  相似文献   

9.
产漆酶菌株筛选及一株产酶菌株的优化与鉴定   总被引:1,自引:0,他引:1  
【目的】从26株真菌菌株中筛选高产漆酶菌株。【方法】采用愈创木酚法进行产漆酶菌株的筛选,通过正交实验对筛选出的高产菌株进行优化,并通过形态学和分子系统学对菌株进行鉴定。【结果】26株真菌菌株中有4株可产生漆酶,其中菌株H52.1为产漆酶最好菌株;菌株H52.1产漆酶优化培养基碳源为可溶性淀粉,氮源为硝酸铵,pH为8,金属离子为Ca2+;经鉴定,该菌株为大孢戴氏霉。【结论】大孢戴氏霉在产漆酶方面值得进一步研究开发。  相似文献   

10.
【目的】层出镰刀菌是引起苜蓿根腐病的主要病原菌之一,探究层出镰刀菌中乌头酸酶家族蛋白的功能特性,为深入认识层出镰刀菌基础生理代谢的分子机制提供依据。【方法】利用hmmsearch工具,对真菌中含有乌头酸酶结构域的蛋白进行检索,并进行系统进化分析;通过实时荧光定量PCR及SWISS MODEL建模技术分别分析FpACO基因的表达模式与蛋白结构;利用同源重组双交换方法构建层出镰刀菌乌头酸酶基因敲除突变体;分析ΔFpACO3、ΔFpACO4-1、ΔFpACO4-2敲除突变体的生长、产孢、孢子形态、环境胁迫响应及致病力等表型变化;进一步测定敲除突变体中线粒体代谢相关生理生化指标的变化情况。【结果】FpACO4-1与FpACO4-2在产孢及孢子形态发生中发挥作用;FpACO3、FpACO4-1、FpACO4-2参与调控层出镰刀菌对细胞壁胁迫及金属离子胁迫的敏感性;FpACO3、FpACO4-1、FpACO4-2影响线粒体代谢,包括总乌头酸酶活性、ATP含量、过氧化氢含量及三羧酸循环关键基因表达等。【结论】乌头酸酶家族参与调控层出镰刀菌产孢、孢子形态分化、细胞壁胁迫及金属离子胁迫响应和线粒体代谢等过程。  相似文献   

11.
12.
13.
Ohne Zusammenfassung  相似文献   

14.
Samples of Kochia (K. scoparia), Atriplex (A. dimorphostegia), Suaeda (S. arcuata) and Gamanthus (G. gamacarpus) were collected and analyzed for chemical composition including crude protein (CP), ether extract (EE), ash, neutral detergent fiber (NDFom), acid detergent fiber (ADFom), non-protein N (NPN), Ca, P, Na, K, Cl, Mg, Fe, Cu and Se. In addition, in situ ruminal degradability and post-ruminal disappearance of dry matter (DM) and CP of the samples using a mobile bag technique were determined. Results indicate that the chemical composition of Kochia and Atriplex was notably different from those of Suaeda and Gamanthus. All of these halophytic plants had high concentrations of Na, K, Cl, Cu and Se, and low levels of Ca, P and Mg. The rapidly degradable fractions of DM and CP (g/g) of Kochia (0.31 and 0.35, respectively) and Atriplex (0.39 and 0.50, respectively) were lower than for Suaeda (0.53 and 0.55, respectively) and Gamanthus (0.56 and 0.66, respectively). Ruminal DM and CP disappearance of Kochia (444 and 517 g/kg, respectively) and Atriplex (472 and 529 g/kg, respectively) were lower (P<0.05) than those of Suaeda (553 and 577 g/kg, respectively) and Gamanthus (663 and 677 g/kg, respectively) (P<0.05) using the mobile bag technique. Suaeda had the lowest (P<0.05) NDFom and ADFom disappearance (214 and 232 g/kg, respectively) in the rumen. Kochia scoparia and Atriplex dimorphostegia have more beneficial chemical nutritive components and digestible values versus Suaeda arcuata and Gamanthus gamacarpus.  相似文献   

15.
The flavonoid profiles of Astilbe (four taxa studied) and Rodgersia (two taxa studied) are based on simple flavonol glycosides. Astilbe has 3-O-mono-, 3-O-di-, and 3-O-triglycosides of kaempferol, quercetin, and myricetin, while Rodgersia has only mono- and diglycosides of kaempferol and quercetin. Astilbe×arendsii was also shown to accumulate dihydrochalcone glycosides. The flavonoid profile of Rodgersia is the simplest recorded so far in the herbaceous Saxifragaceae. The flavonoids of two species of Aruncus were shown to be based upon kaempferol and quercetin 3-O-mono- and 3-O-diglycosides. One of the species also exhibited an eriodictyol glycoside. The triglycoside differences were not considered important, but the differences in myricetin occurrences were taken as evidence against derivation of Saxifragaceae from an Aruncus-like ancestor. Should such an event be proposed, however, serious consideration would have to be given to the current pattern of myricetin occurrence in the two families.  相似文献   

16.
To understand the biogeography of truffle-like fungi, DNA sequences were analysed from representative taxa of Hysterangiales. Multigene phylogenies and the results of ancestral area reconstructions are consistent with the hypothesis of an Australian, or eastern Gondwanan, origin of Hysterangiales with subsequent range expansions to the Northern Hemisphere. However, neither Northern Hemisphere nor Southern Hemisphere taxa formed a monophyletic group, which is in conflict with a strictly vicariant scenario. Therefore, the occurrence and importance of long-distance dispersal could not be rejected. Although a pre-Gondwanan origin of Hysterangiales remains as a possibility, this hypothesis requires that Hysterangiales exist prior to the origin of the currently recognized ectomycorrhizal plants, as well as the arrival of mycophagous animals in Australia. This also requires that a basal paraphyletic assemblage represents parallel evolution of the ectomycorrhizal symbiosis, or that Hysterangiales was mycorrhizal with members of the extinct flora of Gondwana. Regardless, models for both ancient and more recent origins of Hysterangiales are consistent with truffle-like fungi being capable of transoceanic dispersal.  相似文献   

17.
It has been suggested that two groups ofEscherichia coli genes, theccm genes located in the 47-min region and thenrfEFG genes in the 92-min region of the chromosome, are involved in cytochromec biosynthesis during anaerobic growth. The involvement of the products of these genes in cytochromec synthesis, assembly and secretion has now been investigated. Despite their similarity to other bacterial cytochromec assembly proteins, NrfE, F and G were found not to be required for the biosynthesis of any of thec-type cytochromes inE. coli. Furthermore, these proteins were not required for the secretion of the periplasmic cytochromes, cytochromec 550 and cytochromec 552, or for the correct targeting of the NapC and NrfB cytochromes to the cytoplasmic membrane. NrfE and NrfG are required for formate-dependent nitrite reduction (the Nrf pathway), which involves at least twoc-type cytochromes, cytochromec 552 and NrfB, but NrfF is not essential for this pathway. Genes similar tonrfE, nrfF andnrfG are present in theE. coli nap-ccm locus at minute 47. CcmF is similar to NrfE, the N-terminal region of CcmH is similar to NrfF and the C-terminal portion of CcmH is similar to NrfG. In contrast to NrfF, the N-terminal, NrfF-like portion of CcmH is essential for the synthesis of allc-type cytochromes. Conversely, the NrfG-like C-terminal region of CcmH is not essential for cytochromec biosynthesis. The data are consistent with proposals from this and other laboratories that CcmF and CcmH form part of a haem lyase complex required to attach haemc to C-X-X-C-H haem-binding domains. In contrast, NrfE and NrfG are proposed to fulfill a more specialised role in the assembly of the formate-dependent nitrite reductase.  相似文献   

18.
Ohne Zusammenfassung  相似文献   

19.
In order to dissect the genetic regulation of leafblade morphogenesis, 16 genotypes of pea, constructed by combining the wild-type and mutant alleles of MFP, AF, TL and UNI genes, were quantitatively phenotyped. The morphological features of the three domains of leafblades of four genotypes, unknown earlier, were described. All the genotypes were found to differ in leafblade morphology. It was evident that MFP and TL functions acted as repressor of pinna ramification, in the distal domain. These functions, with and without interaction with UNI, also repressed the ramification of proximal pinnae in the absence of AF function. The expression of MFP and TL required UNI function. AF function was found to control leafblade architecture multifariously. The earlier identified role of AF as a repressor of UNI in the proximal domain was confirmed. Negative control of AF on the UNI-dependent pinna ramification in the distal domain was revealed. It was found that AF establishes a boundary between proximal and distal domains and activates formation of leaflet pinnae in the proximal domain.  相似文献   

20.
Genetic engineering has improved the product yield of a variety of compounds by overexpressing, inactivating, or introducing new genes in microbial systems. The production of flavor-enhancing ester compounds is an emerging area of heterologous gene expression for desired product yield in Escherichia coli. Isoamyl acetate, butyl acetate, ethyl acetate, and butyl butyrate are reported here to be produced by expressing Saccharomyces cerevisiae genes ATF1 or ATF2 and the strawberry gene SAAT in E. coli when the appropriate substrates are provided. Increasing the concentration of alcohol added to the reaction generally resulted in increased ester production. ATF1 expression was found to produce more isoamyl acetate and butyl acetate than ATF2 expression or SAAT expression in the strains and culture conditions examined. Additionally, SAAT expression resulted in greater isoamyl acetate and butyl acetate production than ATF2 expression. Butyl butyrate is produced by cell-free extracts of E. coli harboring SAAT but not ATF1 or ATF2.  相似文献   

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