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1.
孙笑非  黄星  陈博  李顺鹏  何健 《微生物学报》2008,48(11):1493-1498
乙酰乳酸合酶(也称乙酰羟酸合酶acetohydroxyacid synthase,AHAS)是植物、真菌和细菌细胞内支链氨基酸Val、Leu、Ile生物合成过程中关键酶,是乙酰乳酸合酶抑制剂类除草剂如磺酰脲类、咪唑啉酮类、嘧啶水杨酸和磺酰氨类的作用靶标.[目的]获得抗甲磺隆的乙酰乳酸合酶基因,构建其表达载体,并分析基因中的位点突变与乙酰乳酸合酶对磺酰脲类除草剂抗性产生原因.[方法]从长期使用甲磺隆的土壤中分离到l株抗甲磺隆的菌株Lm10,利用PCR技术从Lm10总DNA中克隆到乙酰乳酸合酶的大小亚基基因ilvIH,对ilvIH氨基酸序列进行比对分析.分别将ilvI和ilvH分别连接到表达载体pET29a( )多克隆位点,转化大肠杆菌(Escherichia coli)获得转化子BL21(pET-I)和BL21(pET-H),并诱导表达.[结果]菌株Lm10鉴定为假单孢菌(Pseudomonas sp.),对甲磺隆的最高耐受浓度达到14000 μmol/L,且对各种乙酰乳酸合酶抑制剂类除草剂具有交叉抗性.Lm10与甲磺隆敏感菌株KT2440的小亚基氨基酸序列完全相同,而大亚基有6个氨基酸位点发生变异.转化子在IPTG诱导下,乙酰乳酸合酶的大小亚基的蛋白成功表达,粗酶液酶活试验结果表明Lm10的ilvI基因表达的乙酰乳酸合酶大亚基对甲磺隆有很强的抗性.[结论]发现菌株Lm10的乙酰乳酸合酶大亚基对甲磺隆有很强的抗性,抗甲磺隆菌株Lm10与敏感菌株KT2440的ilvI有6个氨基酸位点差异,这些位点突变可能是乙酰乳酸合酶对甲磺隆抗性产生的原因.  相似文献   

2.
拟南芥乙酰羟酸合成酶(AHAS)参与支链氨基酸合成。为考察AHAS不同结构域对支链氨基酸合成的影响,分别对其大小亚基上特定位点进行点突变后进行原核表达,体外重组后对其全酶活性进行测定,并对其终端产物之一——缬氨酸对AHAS全酶活性的影响进行探讨。结果显示:AHAS小亚基G88D突变将解除其终端产物的反馈抑制作用,而大亚基E305D与E482D的突变降低AHAS全酶活性,且2种不同突变大亚基对AHAS全酶活性影响存在差异。AHAS大亚基E482D突变较E305D突变影响更大。研究结果表明:AHAS大小亚基间存在着相互作用,且大小亚基不同结构域突变对AHAS全酶活性具有不同的影响。  相似文献   

3.
茉莉酸与植物抗性相关基因的表达   总被引:3,自引:0,他引:3  
茉莉酸(jasmonic acid,JA)及其甲酯(MeJA)是调节高等植物的发育、应答外界刺激、调节基因表达的天然高等植物激素.JA最初是从真菌Lasiodiplodia theobromae培养液中分离到的.已研究过的所有高等植物中都有JA,估计其正常水平<10μmol·L-1.植物组织中JA的水平在花和果实等繁殖器官特别是未成熟的果皮中最高,根和成熟的叶片中则低得多.JA在植物组织中的液相和气相中可快速运动.1nmol·L-1的JA和1μmol·L-1的MeJA就能诱导植物基因表达水平的变化[1].  相似文献   

4.
乙酰羟基酸合酶(acetohydroxyacid synthase,AHAS)是生物体内支链氨基酸合成通路中的第一个通用酶,它是目前市售多种除草剂的靶标.AHAS通常由分子质量较大的催化亚基和分子质量较小的调控亚基组成.催化亚基结合催化必需的辅基(FAD、ThDP和Mg2+);调控亚基可以结合终产物(缬氨酸、亮氨酸或异亮氨酸)作为负反馈信号调节全酶的活性.大肠杆菌中AHAS有3个同工酶,每种同工酶都由催化亚基和调控亚基组成.大肠杆菌ilvN基因编码了AHAS同工酶Ⅰ的调控亚基.ilvN基因克隆到pET28a表达载体中,在大肠杆菌BL21(DE3)菌株中得到可溶性的大量表达.表达的蛋白质通过镍离子亲和层析和分子筛层析得到纯化.为了对调控亚基的调节机理有深入了解,对IlvN蛋白进行结晶并对蛋白质与其配体缬氨酸进行共结晶.IlvN蛋白晶体衍射能力为2.6 Å,IlvN与缬氨酸共结晶的晶体衍射能力为3.0 Å.  相似文献   

5.
【目的】比较两种不同来源基因重组的对羟基扁桃酸合酶(HmaS),考察其在大肠杆菌中的表达效率。【方法】分别对东方拟无枝酸菌(Amycolatopsis orientalis)和天蓝色链霉菌(Streptomyces coelicolor)来源的hmas进行异源表达,经离子交换层析和凝胶过滤色谱分离纯化获得HmaS,并检测HmaS的酶活和催化特性。【结果】来源于S.coelicolor的HmaSSC2比酶活是来源于A.orientalis的3.6倍;来源于A.orientalis的HmaSAO最适反应温度为28°C,在弱碱性条件下的酶活稳定性较好;来源于S.coelicolor的HmaSSC2最适反应温度为35°C,在28-45°C内保持较高的酶活,具有良好耐热性,在pH 7.0左右酶活最高,更易在偏中性的条件下发挥功能。【结论】HmaSSC2更适用于代谢工程改造大肠杆菌发酵法生产扁桃酸。  相似文献   

6.
从雷公藤限皮中分得两种三萜,鉴定为 polpunonic acid 和3β,30-二羟基齐墩果-Δ~(12)-烯-29羧酸甲酯,后者未见文献报道,命名为雷二羟酸甲酯。此外,分到雷公藤春碱,根据理化性质和光谱分析,推测化学结构为Ⅲ,药理试验表明其为免疫抑制剂,药敏试验对白血病细胞有抑制。  相似文献   

7.
螺旋霉素聚酮合成酶基因和抗性基因的克隆与表达的研究   总被引:2,自引:1,他引:2  
根据不同聚酮合成酶基因DNA的同源性,利用放线紫红素聚酮合成酶基因act Ⅰ,actⅢ作探针,从螺旋霉索产生菌Str.spiramyceticus U-1941基因文库中检测并分离了螺旋霉素聚酮合成酶基因pCN3H8。限制酶酶切分析表明,其分子量为44kb。通过分子杂交实验,将螺旋霉素聚酮缩合酶基因(与act Ⅰ有同源性)及聚酮氧化还原酶基因(与actⅢ有同源性)进行了定位。pCN3H8 DNA在麦迪霉素产生菌变株Str.mycarofaciens sub sp.68中的表达产物,经紫外光谱分析与麦迪霉素相似。pCN3H8在放线紫红素聚酮缩合酶基因缺陷型变株Str.coelicolor TKl7中的表达产物,不具有放线紫红素的色素,其纸层析谱型与螺旋霉素有显著差别。pCN3H8在变青链霉菌Str.lividans TK24中的表达产物,也具有抗菌活性。将pCN3H8 DNA转化对螺旋霉素敏感的Str.griseofuscus原生质体,获得了螺旋霉素抗性的表达。从转化子中分离得到了质粒DNA pSG3,其分子量为7.0kb,可能是pCN3H8DNA转化Str.grlseofuscus时在体内缺失而形成。再转化实验证明,宿主菌对螺旋霉索的抗性,确实是由于pSG3 DNA作用的结果。含质粒pCG4,pSG3的螺旋霉素产生菌Str.Ambofaciens转化子螺旋霉素的产率明显提高。  相似文献   

8.
【背景】抗除草剂转基因作物是全球种植面积最大的一类转基因植物,以除草剂抗性基因作为检测靶标的分子鉴定方法的研究与应用,对转基因生物安全的检测与监测有重要意义。【方法】根据除草剂抗性基因aad1和dmo的核苷酸序列设计PCR检测引物,并进行PCR反应体系优化、方法特异性、灵敏度、再现性等方面的测试,分别建立aad1基因和dmo基因的特异性PCR检测方法。【结果】建立的PCR检测方法在56~64℃的退火温度范围内均能获得一致性结果,具有良好的稳健性。该方法可将含有aad1基因和dmo基因的转基因作物与其他转基因作物区分开,其灵敏度可分别达到20个拷贝和40个拷贝。通过将aad1基因和dmo基因的检测引物放入同一管PCR反应体系中,还能在一次PCR中同时检测这2个靶标基因,双重PCR的检测灵敏度与单一PCR一致。【结论与意义】建立的分子方法可精准检测出含有aad1基因和dmo基因的转基因作物,具有特异性强、灵敏度高的特点,为抗除草剂转基因作物的筛选检测提供了可靠的技术支撑。  相似文献   

9.
硝磺草酮抗性菌株的筛选及抗性基因的克隆表达   总被引:1,自引:0,他引:1  
黄彦  夏冰洁  崔中利 《微生物学通报》2015,42(10):1895-1902
【目的】从采集的土壤中筛选出硝磺草酮的抗性菌株,并从中克隆对羟苯基丙酮酸双加氧酶抗性基因。【方法】以酪氨酸为唯一碳源,采用富集培养法筛选分离硝磺草酮抗性菌株,利用16S rRNA基因序列分析对菌株进行初步鉴定。通过PCR扩增获得其HHPD基因序列,构建pETH4表达载体并在大肠杆菌Escherichia coli BL21(DE3)中进行异源表达。通过检测色素在440 nm处的吸收值分析菌株E. coli BL21(DE3)-pETH4对硝磺草酮的抗性特性。【结果】在含10 mmol/L硝磺草酮和1 g/L酪氨酸的选择培养基上,分离得到7株硝磺草酮抗性细菌,1株为不动杆菌属,2株为无色杆菌属,4株为假单胞菌属。从抗性最佳的Pseudomonas sp. AM-H4中扩增得到HPPD的基因片段为1 056 bp,其序列与Acinetobacter baumannii基因组中HPPD的基因序列相似性达到99%,341位点由天冬氨酸突变为丙氨酸。HPPD基因在大肠杆菌中实现异源表达,蛋白分子量大小约40 kD。菌株E. coli BL21(DE3)-pETH4在40 μmol/L硝磺草酮酪氨酸LB培养基中的色素吸收值显著降低,能够耐受高于200 μmol/L的硝磺草酮。【结论】克隆获得的HPPD具有良好的硝磺草酮抗性,将在新除草剂抗性作物选育中有一定的应用潜力。  相似文献   

10.
用PCR方法从产气肠杆菌(Enterobacter aerogenes)中克隆出0.9kb的DNA片段,经DNA测序证明是α-乙酰乳酸脱羧酶(α-acetolactate decarboxylase,α-ALDC)基因。将α-ALDC基因重组到质粒,pBV220后,转化大肠杆菌,经筛选获得的高效表达的重组子菌株。  相似文献   

11.

Key message

The AHAS gene family in soybean was characterized. The locus Als1 for sulfonylurea resistance was mapped and the resistant allele was characterized at the molecular level.

Abstract

Sulfonylurea (SU) resistance in soybean is controlled by Als1, a semi-dominant allele obtained by EMS mutagenesis over the cultivar Williams 82. The overall objective of this research was to map Als1 in the soybean genome and to determine the nucleotidic changes conferring resistance to SU. Four nucleotide sequences (GmAhas1–4) showing high homology with the Arabidopsis thaliana acetohydroxyacid synthase (AHAS, EC 4.1.3.18) gene sequence were identified by in silico analysis, PCR-amplified from the SU-resistant line BTK323STS and sequenced. Expression analysis showed that GmAhas1, located on chromosome 4 by in silico analysis, is the most expressed sequence in true leaves. F2:3 families derived from the cross between susceptible and resistant lines were evaluated for SU resistance. Mapping results indicate that the locus als1 is located on chromosome 4. Sequence comparison of GmAhas1 between BTK323STS and Williams 82 showed a single nucleotide change from cytosine to thymine at position 532. This transversion generates an amino acid change from proline to serine at position 197 (A. thaliana nomenclature) of the AHAS catalytic subunit. An allele-specific marker developed for the GmAhas1 mutant sequence cosegregated with SU resistance in the F2 population. Taking together, the mapping, expression and sequencing results indicate that the GmAhas1 sequence corresponds to the Als1 gene sequence controlling SU resistance in soybean. The molecular breeding tools described herein create the basis to speed up the identification of new mutations in soybean AHAS leading to enhanced levels of resistance to SU or to other families of AHAS inhibitor herbicides.  相似文献   

12.
Acetohydroxyacid synthase (AHAS, EC 2.2.1.6) is the target for the sulfonylurea herbicides, which act as potent inhibitors of the enzyme. Chlorsulfuron (marketed as Glean) and sulfometuron methyl (marketed as Oust) are two commercially important members of this family of herbicides. Here we report crystal structures of yeast AHAS in complex with chlorsulfuron (at a resolution of 2.19 A), sulfometuron methyl (2.34 A), and two other sulfonylureas, metsulfuron methyl (2.29 A) and tribenuron methyl (2.58 A). The structures observed suggest why these inhibitors have different potencies and provide clues about the differential effects of mutations in the active site tunnel on various inhibitors. In all of the structures, the thiamin diphosphate cofactor is fragmented, possibly as the result of inhibitor binding. In addition to thiamin diphosphate, AHAS requires FAD for activity. Recently, it has been reported that reduction of FAD can occur as a minor side reaction due to reaction with the carbanion/enamine of the hydroxyethyl-ThDP intermediate that is formed midway through the catalytic cycle. Here we report that the isoalloxazine ring has a bent conformation that would account for its ability to accept electrons from the hydroxyethyl intermediate. Most sequence and mutation data suggest that yeast AHAS is a high-quality model for the plant enzyme.  相似文献   

13.
Acetohydroxyacid synthase (AHAS, EC 4.1.3.18; also known as acetolactate synthase), which catalyses the first reaction common to the biosynthesis of the branched-chain amino acids, L-valine, L-leucine and L-isoleucine, and is the target of several classes of herbicides, has been studied in hydroponically-grown seedlings of wheat (Triticum aestivum L. cv. Vulcan). Enzyme activity was greater in leaves than roots, reaching a maximum between 4 and 6 days after germination. AHAS was associated with the chloroplasts after centrifugation in a density gradient. A preparation of the enzyme was obtained from wheat leaves which gave a single band after electrophoresis in native gels but was resolved by denaturing sodium dodecyl sulphate-polyacrylamide gel electrophoresis into three polypeptide bands of molecular mass 58, 57 and 15 kDa. The native molecular mass was approximately 128 kDa. AHAS had optimum activity at pH 7 and did not require the addition of flavin adenine dinucleotide (FAD), thiamine pyrophosphate (TPP) and MgCl2 for activity. The enzyme did not display typical hyperbolic kinetics, in that the double reciprocal plot of activity against pyruvate concentration was non-linear. The concentration of pyruvate that gave half of the maximum activity was 4 mM. Sulfonylurea and imidazolinone herbicides were potent inhibitors of wheat leaf AHAS, with 50% inhibition being observed at concentrations of 0.6 and 0.3 μM for chlorsulfuron and metsulfuron methyl, respectively, and at 2.5, 5 and 10 μM for imazaquin, imazethapyr and imazapyr. Inhibition by both classes of compounds was reversed by removal of the inhibitor. Progress curves of product formation against time in the presence of the herbicides were non-linear, and based on the assumption that inhibition by the sulfonylureas was of the slow, tight-binding type, estimates of 0.17 and 0.1 nM were obtained for the dissociation constants of chlorsulfuron and metsulfuron methyl, respectively, from the steady-state enzyme-inhibitor complex.  相似文献   

14.
A new mutation at the acetohydroxyacid synthase (AHAS) locus on chromosome 6D of wheat was analyzed in detail because it conferred an improved resistance to the imidazolinone group of herbicides. Sequence analysis showed that the mutation was at the Ala122 position (A122T), a position in AHAS which has not to date been identified in imidazolinone resistant wheat lines even though the position has been identified in other plants and is associated with resistance. An allele-specific assay for the mutation (in the wheat line Brookton-8) was developed and used in a genetic analysis. Two mapping populations were analysed and the doubled haploid progeny from the cross Brookton-8 × Clearfield STL proved to be most informative. The AHASAla122 mutation (A122T) was allelic to the AHASSer653 mutation (S653N) in Clearfield STL (Imi1, on chromosome 6D) and hence was assigned to the chromosome 6D locus. The analysis of the doubled haploid lines in the mapping population demonstrated the greater resistance conferred by the A122T mutation because lines from the same cross and carrying either the A122T or S653N mutations could be directly compared. Electronic supplementary material  The online version of this article (doi:) contains supplementary material, which is available to authorized users.  相似文献   

15.
Acetohydroxyacid synthase (AHAS), a potential target for antimicrobial agents, catalyzes the first common step in the biosynthesis of branched-chain amino acids. The gene coding for the AHAS catalytic subunit from Haemophilus influenzae (Hi) was cloned, overexpressed in Escherichia coli, and purified. To identify new inhibitory scaffolds, we used a high-throughput screen to test 221 small diverse chemical compounds against Hi-AHAS. Compounds were selected for their ability to inhibit AHAS in vitro. The screen identified 3 compounds, each representing a structural class, as Hi-AHAS inhibitors with an IC50 in the low micromolar range (4.4-14.6 μM). The chemical scaffolds of the three compounds were oxa-1-thia-4-aza-cyclopenta[b]naphthalene (KHG25229), phenyl-2,3-dihydro-isothiazole (KHG25386), and phenyl-pyrrolidine-3-carboxylic acid phenylamide (KHG25056). Further, molecular docking of the two most potent chemicals, KHG25229 and KHG25386, in Hi-AHAS yielded binding energies of −10.41 and −9.21 kcal/mol, respectively. The binding modes were consistent with inhibition mechanisms, as both chemicals oriented outside the active site. As the need for novel antibiotic classes to combat drug resistant bacteria increases, screening compounds that act against Hi-AHAS may assist in the identification of potential new anti-Hi drugs.  相似文献   

16.
Ahasl1 is a multilallelic locus where all the induced and natural mutations for herbicide tolerance were described thus far in sunflower (Helianthus annuus L.). The allele Ahasl1-1 confers moderate tolerance to imidazolinone (IMI), Ahasl1-2, and Ahasl1-3 provides high levels of tolerance solely to sulfonylurea (SU) and IMI, respectively. An Argentinean wild sunflower population showing plants with high level of tolerance to either an IMI and a SU herbicide was discovered and used to develop an inbred line designated RW-B. The objectives of this work were to determine the relative level and pattern of cross-tolerance to different AHAS-inhibiting herbicides, the mode of inheritance, and the molecular basis of herbicide tolerance in this line. Slight or no symptoms observed after application of different herbicides indicated that RW-B possesses a completely new pattern of tolerance to AHAS-inhibiting herbicides in sunflower. Biomass response to increasing doses of metsulfuron or imazapyr demonstrated a higher level of tolerance in RW-B with respect to Ahasl1-1/Ahasl1-1 and Ahasl1-2/Ahasl1-2 lines. On the basis of genetic analyses and cosegregation test, it was concluded that tolerance to imazapyr in the original population is inherited as a single, partially dominant nuclear gene and that this gene is controlling the tolerance to four different AHAS-inhibiting herbicides. Pseudo-allelism test permitted us to conclude that the tolerant allele present in RW-B is an allelic variant of Ahasl1-1 and was designated as Ahasl1-4. Nucleotide and deduced amino acid sequence indicated that the Ahasl1-4 allele sequence of RW-B has a leucine codon (TTG) at position 574 (relative to the Arabidopsis thaliana AHAS sequence), whereas the enzyme from susceptible lines has a tryptophan residue (TGG) at this position. The utilization of this new allele in the framework of weed control and crop rotation is discussed.  相似文献   

17.
Microbes and plants synthesize essential branched-chain amino acids (BCAAs) such as valine, leucine, and isoleucine via a common biosynthetic pathway in which the first reaction is catalyzed by acetohydroxyacid synthase (AHAS, EC 4.1.3.18). Recently, AHAS was identified as a potential anti bacterial target. To help find an effective inhibitor that could act as an antibacterial compound, we cloned and characterized the catalytic subunit (CSU) of Pseudomonas aeruginosa AHAS, and found four potent inhibitors through chemical library screening. The ilvI gene of P. aeruginosa encodes a 65-kDa AHAS protein, consistent with the size of the purified enzyme on SDS-PAGE. Enzyme kinetics showed that the enzyme has a Km of 14.2 mM and a specific activity of 0.12 U/mg. Enzyme activity was optimum at a temperature of 37 °C and a pH of 7.5. The Kd for thiamine diphosphate (ThDP) was 89.92 ± 17.9 μM, as determined by fluorescence quenching. The cofactor activation constants (Ks) for ThDP and (Kc) for Mg2+ were 0.6 ± 0.1 and 560.8 ± 7.4 μM, respectively. Further, we determined that AVS2087, AVS2093, AVS2236, and AVS2387 compounds are potent inhibitors of the catalytic subunit of P. aeruginosa AHAS. These compounds inhibit nearly 100% of AHAS activity, with IC50 values of 1.19 μM, 5.0 nM, 25 nM, and 13 nM, respectively. Compound AVS2093 showed growth inhibition with a minimal inhibitory concentration (MIC) of 742.9 μg/ml against P. aeruginosa strain ATCC 9027. Furthermore, these findings were supported by molecular docking studies with the AVS compounds against P. aeruginosa AHAS in which AVS2093 showed minimum binding energy (−7.8 kJ/mol) by interacting with the receptor through a single hydrogen bond of 2.873 Å. Correlation of AVS2093 activity with P. aeruginosa AHAS cell growth inhibition suggested that AHAS might serve as a target protein for the development of novel antibacterial therapeutics. Results of the current study provide an impetus to further evaluate the potency of these inhibitors against pathogenic P. aeruginosa strains in vivo and to design more potent antibacterial agents based on these AVS inhibitors.  相似文献   

18.
The enzyme acetohydroxyacid synthase (AHAS) catalyses the first common step in the biosynthesis of the three branched-chain amino acids. Enzymes in the AHAS family generally consist of regulatory and catalytic subunits. Here, we describe the first crystal structure of an AHAS regulatory subunit, the ilvH polypeptide, determined at a resolution of 1.75 A. IlvH is the regulatory subunit of one of three AHAS isozymes expressed in Escherichia coli, AHAS III. The protein is a dimer, with two beta alpha beta beta alpha beta ferredoxin domains in each monomer. The two N-terminal domains assemble to form an ACT domain structure remarkably close to the one predicted by us on the basis of the regulatory domain of 3-phosphoglycerate dehydrogenase (3PGDH). The two C-terminal domains combine so that their beta-sheets are roughly positioned back-to-back and perpendicular to the extended beta-sheet of the N-terminal ACT domain. On the basis of the properties of mutants and a comparison with 3PGDH, the effector (valine) binding sites can be located tentatively in two symmetrically related positions in the interface between a pair of N-terminal domains. The properties of mutants of the ilvH polypeptide outside the putative effector-binding site provide further insight into the functioning of the holoenzyme. The results of this study open avenues for further studies aimed at understanding the mechanism of regulation of AHAS by small-molecule effectors.  相似文献   

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