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1.
陈澄宇  康志娇  史雪岩  高希武 《昆虫学报》2015,58(10):1126-1130
植物次生物质(plant secondary metabolites)对昆虫的取食行为、生长发育及繁殖可以产生不利影响,甚至对昆虫可以产生毒杀作用。为了应对植物次生物质的不利影响,昆虫通过对植物次生物质忌避取食、解毒代谢等多种机制,而对寄主植物产生适应性。其中,昆虫的解毒代谢酶包括昆虫细胞色素P450酶系(P450s)及谷胱甘肽硫转移酶(GSTs)等,在昆虫对植物次生物质的解毒代谢及对寄主植物的适应性中发挥了重要作用。昆虫的解毒酶系统不仅可以代谢植物次生物质,还可能代谢化学杀虫剂,因而昆虫对寄主植物的适应性与其对杀虫剂的耐药性甚至抗药性密切相关。昆虫细胞色素P450s和GSTs等代谢解毒酶活性及相关基因的表达可以被植物次生物质影响,这不仅使昆虫对寄主植物的防御产生了适应性,还影响了昆虫对杀虫剂的解毒代谢,因而改变昆虫的耐药性或抗药性。掌握昆虫对植物次生物质的代谢适应机制及其在昆虫抗药性中的作用,对于明确昆虫的抗药性机制具有重要的参考意义。本文综述了植物次生物质对昆虫的影响、昆虫对寄主植物次生物质的代谢机制、昆虫对植物次生物质的代谢适应性对昆虫耐药性及抗药性的影响等方面的研究进展。  相似文献   

2.
虫害诱导植物防御的分子机理研究进展   总被引:8,自引:0,他引:8  
从虫害诱导的系统损伤信号、昆虫特异性激发子、间接防御、直接防御和负防御等方面,综述了虫害诱导植物防御的最新研究进展.在植物与昆虫的相互进化过程中,植物利用诱导防御物质对付昆虫的危害,昆虫则利用其特有的激发子降低植物的防御反应.文中比较了间接防御涉及的4种代谢途径,以及诱导挥发物释放的机制;阐明了虫害诱导植物直接防御的概念、防御物质及其作用机理;分析了虫害诱导植物负防御的机制.同时,也强调了虫害诱导林木防御反应的分子机理.  相似文献   

3.
海藻糖广泛存在于细菌、真菌、动物和植物中。它不仅作为能量储备物质,在外界环境胁迫或内部代谢紊乱时,也可作为保护因子,保护其生命体度过逆境。昆虫海藻糖合成酶与海藻糖酶分别是海藻糖合成与分解的关键酶,合成的海藻糖在海藻糖转运蛋白的帮助下由胞内进入胞外。胰岛素与脂动激素直接参与昆虫糖代谢,保幼激素与蜕皮激素通过和胰岛素与脂动激素通路偶联,间接参与调控昆虫海藻糖代谢。海藻糖代谢途径和昆虫生长发育密切相关,昆虫海藻糖代谢信号通路为开发害虫控制的新靶标提供理论依据。  相似文献   

4.
次生代谢产物与植物抗病防御反应   总被引:1,自引:0,他引:1  
次生代谢产物是由植物次生代谢产生的许多结构不同的小分子有机化合物,它们广泛参与植物的生长、发育、防御等生理过程。次生代谢产物在植物的抗病防御反应中发挥着重要作用,可以作为生化壁垒防御病原物侵染,还可以作为信号物质参与植物的抗病反应;在植物与病原物互作中,植物合成新的抗菌物质植保素,原有的抗菌物质也会增加。植物次生代谢产物的积累受到病原物、发育,环境等多种因素的调节。本文重点介绍次生代谢产物在植物抗病防御中的相关作用以及影响其合成的各种因素。  相似文献   

5.
玉米螟P450基因cDNA的克隆及植物次生物质对其诱导表达   总被引:1,自引:0,他引:1  
昆虫细胞色素P450是一类在生物代谢中起重要作用的基因家族,承担着许多重要的生 理功能,包括对植物次生物质代谢和杀虫剂解毒等.本研究以玉米螟5龄幼虫中肠的总RNA为 模板,根据不同昆虫P450基因家族保守氨基酸序列,设计并合成简并引物,利用RT-PCR扩 增出了玉米螟细胞色素P450基因cDNA片段,将其克隆到pMD19 T载体进行序列测定.测序获得了编码213个氨基酸残基的641 bp的DNA片段,命名为OfP450(GenBank登录号:EU807990) ;与已公布的棉铃虫、家蚕、欧洲防风草结网毛虫、小菜蛾和黑腹果蝇等的细胞色素P450氨基酸序列进行比较,其一致性分别为55%、50%、49%、44%和31%.将植物次生物质棉酚、丁布添加入人工饲料中,对玉米螟进行了饲喂实验,采用优化半定量RT-PCR,以18S rRNA为内标,RT-PCR检测进食棉酚、丁布植物化合物的玉米螟中肠P450基因的转录. 结果表明,其转录水平能被棉酚、丁布显著诱导. 提示本实验克隆的玉米螟细胞色素P450对植物次生物质的代谢作用与P450表达量呈正相关.该研究为下一步将植物介导的RNA干扰技术应用于害虫生物防治提供坚实的基础.  相似文献   

6.
虫害诱导植物合成防御性次生代谢产物的研究进展   总被引:1,自引:0,他引:1  
昆虫对植物的取食活动可以激活植物的防御反应,诱导植物通过调控自身的代谢网络合成防御性次生代谢产物,抵御外界不良刺激。虫害诱导植物合成防御性次生代谢产物及其机制研究已成为近年来的研究热点之一。现对虫害诱导的植物防御性次生代谢产物、昆虫危害产生的各类激发子、植物对激发子的识别、虫害应答相关的信号转导通路及其对次生代谢物质积累的调控进行了综述,可为虫害诱导植物合成防御性次生代谢产物的机制研究提供参考,为植物虫害防治研究、植物次生代谢物质的生产和利用提供理论依据。  相似文献   

7.
昆虫细胞色素P450研究的一些新进展   总被引:5,自引:0,他引:5  
报道了有关细胞色素P45 0研究的一些新发现。果蝇和冈比亚按蚊基因组测序的完成 ,使人类对昆虫P45 0的多样性有一完整的概念 ,已查明果蝇和冈比亚按蚊基因组中分别含有 90种和 1 1 1种P45 0基因。P45 0介导的果蝇对DDT的抗性被证明是Cyp6g1基因超量表达的结果。昆虫可以窃听植物分子信号 (水杨酸、茉莉酮酸 ) ,通过P45 0的诱导机制增强自身对植物防御物质的反防御能力。从分子水平上鉴定了 2个参与蜕皮素合成的线粒体P45 0基因。细胞色素P45 0在昆虫信息素降解中的作用得到鉴定。  相似文献   

8.
几个树种机械损伤诱导挥发物的比较初报   总被引:9,自引:0,他引:9  
植物创伤诱导挥发物在植物与昆虫、植物与植物之间的相互关系中起着非常重要的信号作用。为了深入了解其诱导机制并探讨植株间信号传导 ,选择了复叶槭 (AcernegundoL .)、旱柳 (SalixmatsudanaKoidz.)、毛白杨(PopulustomentosaCarr.)、合作杨 (P .simonii×P .pyramibaliscv .)等 4个树种 ,利用气相色谱质谱联用技术对人为损伤后的挥发物变化情况进行了研究。多数诱导挥发物在 5h左右达到高峰 ,主要是开环单萜、脂肪酸衍生物和芳香族化合物。己二酸二甲酯、丁二酸二异丁酯、苯骈噻唑在以前的昆虫 草本植物系统中未见报道。损伤 2h后绿叶气味即已大量产生 ,其他化合物变化不大。驱避物质 2 4h后挥发量很大。不同树种在释放时间上也存在明显差异 ,但有些化合物广泛存在于不同树种。挥发物在种间存在差异 ,正常的复叶槭挥发大量的萜烯 ,而杨柳产生苯系物较多  相似文献   

9.
植物蛋白酶抑制素抗虫作用的研究进展   总被引:18,自引:2,他引:16  
王琛柱  钦俊德 《昆虫学报》1997,40(2):212-218
植物自身为抵抗昆虫等的为害,在长期进化过程中形成了复杂的化学防御体系,其中起主导作用的是一些植物化学物质。这些化合物能影响昆虫(或其它有机体)的生长、行为和群体生物学,因而又称为它感素(allelochemics)[1~3]。大多数它感素为植物的利己素,可以单一或协同对害虫起作用,构成植物的抗虫性。根据植物对昆虫取食的反应,可将植物的化学防御概括为两类:一类是组成型防御[4],即抗虫物质不依赖于昆虫的取食而存在于植物组织中;另一类是诱导型防御[5~9],即植物仅当昆虫取食时才大量合成抗虫物质。诱导型抗虫物质当然亦可以组…  相似文献   

10.
次生物质在植物与昆虫协同进化中的意义   总被引:10,自引:0,他引:10  
次生物质是植物次级低谢的产物,它在植物与昆虫协同进化中起着主导作用。本文通过介绍次生物质在植物化学防御中的作用,昆虫对次生物质的适应及其利用等内容,阐述了次生物质在植物与昆虫协同进化中的意义。  相似文献   

11.
P450s in plant-insect interactions   总被引:1,自引:0,他引:1  
Cytochrome P450 monooxygenases (P450s) are integral in defining the relationships between plants and insects. Secondary metabolites produced in plants for protection against insects and other organisms are synthesized via pathways that include P450s in many different families and subfamilies. Survival of insects in the presence of toxic secondary metabolites depends on their metabolism by more limited groups of P450s. Examples of functionally characterized plant and insect P450s known to be involved in these interactions are discussed in terms of their diversities, reactivities and regulators. These and future examples, which will be uncovered as the fields of plant biology and entomology converge on this interesting area, provide much insight into the array of plant metabolites that are mainline defenses against insects, the range of insect monooxygenases that inactivate these compounds and the evolutionary processes occurring as these organisms wage daily battles with one another. Molecular perspectives on these interactions will provide the scientific community with information critical for genetic manipulation of these organisms aimed at enhancing plant resistance to insects and eliminating insect resistance to natural plant toxins and synthetic insecticides.  相似文献   

12.
细胞色素P450与植物的次生代谢   总被引:20,自引:0,他引:20  
赵剑  杨文杰 《生命科学》1999,11(3):127-131
细胞色素P450是动植物及微生物体内的一类重要的混合功能的血红素氧化还原酶类,是一个基因超家族。它可催化多种化学反应,在防御生物免受外界侵害方面有重要作用。植物P450广泛参与次生代谢产生有植保素功能的物质和对除草剂、杀虫剂等外毒素的生物转化解毒代谢。许多植物P450已被分离纯化,更多的植物P450的基因被克隆和外源表达。对植物P450的表达调控也取得了一些进展,但在抗虫和抗除草剂的农作物基因工程方面尚在起步阶段。  相似文献   

13.
细胞色素P450基因及其在植物改良中的应用   总被引:6,自引:0,他引:6  
杨致荣  毛雪  杨致芬  李润植 《遗传》2003,25(2):237-240
细胞色素P450是一类含血红素的氧化还原酶类,它参与多种生化反应,在防御生物免受病虫害及逆境胁迫等方面具有重要作用。生物基因组序列分析表明,它是一个基因超家族。许多细胞色素P450基因已被鉴定和克隆,并应用于植物遗传改良;在转基因培育多抗性植物、创造植物雄性不育系,提高植物降解化学农药残留等污染物的能力和有效生产具有药用价值的化合物等方面已取得可喜进展,显示出广阔的应用前景。 Abstract:Cytochrome P450s are heme-containing mixed-function oxidases,involving in lots of biochemical reactions.They play an important role in preventing plants from pathogen and insect attacks and environmental stress.Sequence analysis of genomes has revealed that P450 is a gene super-family.Many cytochrome P450s have been characterized and cloned.Some of them have been used in plant genetic improvement.A great progress has been made in using these P450 genes to create the transgenic plants with multiple resistances,male sterility,higher capability to dissolve toxic chemicals and pollutants and effective productivity of high valuable compounds,indicating P450 genes have a broad prospect with great potential application.  相似文献   

14.
1. Phytochemical coevolution theory, a long-standing paradigm in plant–insect interactions, predicts that specialist herbivores are less negatively affected by the allelochemicals of their host plants than are generalist herbivores. Although this theory is prevalent in plant–insect science, it is not always supported by empirical studies measuring the performance of specialist and generalist insects in response to allelochemicals. 2. The present study aimed to investigate: (i) whether there a difference between specialist and generalist performance in response to allelochemicals and (ii) whether the effect of allelochemicals on specialists and generalists depend upon allelochemical class or insect order. 3. A meta-analysis was conducted incorporating 76 effect sizes drawn from studies that directly compared the performance of specialist and generalist insects in response to treatment and control diets. Most of the effect sizes were related to the performance metric growth, the insect order Lepidoptera, and the allelochemical class nitrogen-containing compounds. 4. As predicted by phytochemical coevolution theory, specialist insects responded less negatively to allelochemicals of their hosts than generalist insects in terms of growth. There were no significant differences in terms of fecundity or survival, or among allelochemical classes or insect orders. 5. These results support the prediction of phytochemical coevolution theory that specialist insects respond less negatively to allelochemicals of their hosts than generalists, although only in terms of growth.  相似文献   

15.
Allelochemicals are storing in different location in plant tissues as inactive form. Number of identified compounds may now exceed 100,000. Environmental factors have an effect on allelochemicals concentration in plants. Many allelochemicals classified as toxins or deterrents for herbivorous insects. Allelochemicals play a major role in feeding or ovipositing stimulants for some specialist insects. Consumption and assimilation of herbivorous insects had affected by the type of allelochemicals in host plants. Allelochemicals have an acute or chronic toxicity on herbivorous insects. Most specialist herbivorous insects rely heavily of ingested plant allelochemicals. Plant allelochemicals may influence an insect's susceptibility to pathogens such as bacteria, fungi and nematode. Specialists herbivorous insect can be using the allelochemicals in their host plants as protection against natural enemies. Some herbivorous insects are synthesising the aggregation, attracting, alarm or mating pheromone from the allelochemicals in their host plants.  相似文献   

16.
17.
18.
Metabolism of some insecticides and toxic natural plant compounds is known to involve cytochrome P450 enzymes. Correlations between insecticide resistance and deethylation of the model substrate, 7-ethoxycoumarin, have prompted its use in screens for potentially resistant insect populations. The applicability of this model substrate as an indicator of the enzyme activities and inductive responsiveness of cytochrome P450 isoforms involved in the metabolism of carnegine was investigated. This toxic isoquinoline alkaloid is found in the host-plants of some species of cactophilic Drosophila. The results show that the ethoxycoumarin (ECOD) assay does not accurately predict carnegine metabolism either quantitatively or with respect to the overall pattern of activity. Therefore, the ECOD assay may be as isozyme-specific in insects as has already been demonstrated in mammals and its use as an indicator of general P450 activity is questionable.  相似文献   

19.
Sasabe M  Wen Z  Berenbaum MR  Schuler MA 《Gene》2004,338(2):163-175
Cytochrome P450 monooxygenases play a significant role in the detoxification of hostplant allelochemicals and synthetic insecticides in Lepidoptera. In the corn earworm Helicoverpa zea, a noctuid of considerable economic importance, metabolisms of xanthotoxin, a toxic furanocoumarin, and alpha-cypermethrin, an insecticide, are mediated by at least one P450 with a catalytic site capable of accepting both substrates. To further the characterization of P450s in this species, we have cloned three full-length cDNAs encoding two CYP4M subfamily members and a novel CYP321A subfamily member. RNA analyses have demonstrated that the CYP321A1 gene is highly induced (51-fold) in larval midguts in response to xanthotoxin but not cypermethrin. Both CYP4M genes are expressed at negligible levels that are not increased by xanthotoxin or cypermethrin. Baculovirus-mediated expression of the full-length CYP321A1 cDNA has demonstrated that the CYP321A1 protein metabolizes xanthotoxin and angelicin, like the CYP6B1 protein in the furanocoumarin specialist Papilio polyxenes, and alpha-cypermethrin, like the CYP6B8 protein previously characterized in H. zea. In contrast, the CYP4M7 protein does not metabolize xanthotoxin at any detectable level. We conclude that at least two xanthotoxin-inducible P450s from highly divergent subfamilies (CYP6B and CYP321A) contribute to the resistance of H. zea larvae to toxic furanocoumarins and insecticides. Genomic PCR analysis indicates that the CYP321A1 gene has evolved independently from the CYP6B genes known to be present in this insect.  相似文献   

20.
CYP6AB3v1, a cytochrome P450 monooxygenase in Depressaria pastinacella (parsnip webworm), is highly specialized for metabolizing imperatorin, a toxic furanocoumarin in the apiaceous host plants of this insect. Cloning and heterologous expression of CYP6AB3v2, an allelic variant identified in D. pastinacella, reveals that it metabolizes imperatorin at a rate (V(max) of 10.02 pmol/min/pmol of cytochrome P450 monooxygenase (P450)) significantly higher than CYP6AB3v1 (V(max) of 2.41 pmol/min/pmol) when supplemented with even low levels of cytochrome P450 reductase. Comparisons of the NADPH consumption rates for these variants indicate that CYP6AB3v2 utilizes this electron source at a faster rate than does CYP6AB3v1. Molecular modeling of the five amino acid differences between these variants and their potential interactions with P450 reductase suggests that replacement of Val(92) on the proximal face of CYP6AB3v1 with Ala(92) in CYP6AB3v2 affects interactions with P450 reductase so as to enhance its catalytic activity. Allelic variation at this locus potentially allows D. pastinacella to adapt to both intraspecific and interspecific variation in imperatorin concentrations in its host plants.  相似文献   

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