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The entomogenous fungus Nomuraea rileyi reportedly secretes a proteinaceous substance inhibiting larval molt and metamorphosis in the silkworm Bombyx mori. We studied the possibility that N. rileyi controls B. mori development by inactivating hemolymph molting hormone, ecdysteroids. Incubation of ecdysone (E) and 20-hydroxyecdysone (20E) in fungal-conditioned medium resulted in their rapid modification into products with longer retention times in reverse-phase HPLC. Each modified product from E and 20E was purified by HPLC, and identified by NMR as 22-dehydroecdysone and 22-dehydro-20-hydroxyecdysone. Some other ecdysteroids with a hydroxyl group at position C22 were also modified. Injection of the fungal-conditioned medium into Bombyx mori larvae in the mid-4th instar inhibited larval molt but induced precocious pupal metamorphosis, and its injection into 5th instar larvae just after gut purge blocked pupal metamorphosis. In hemolymph of injected larvae, E and 20E disappeared and, in turn, 22-dehydroecdysone and 22-dehydro-20-hydroxyecdysone accumulated. These results indicate that N. rileyi secretes a specific enzyme that oxidizes the hydroxyl group at position C22 of hemolymph ecdysteroids and prevents molting in B. mori larvae.  相似文献   

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赵小凡 《昆虫知识》2007,44(3):323-326
昆虫蜕皮是一个由PTTH启始的、激素介导的基因序列表达和相互作用的级联反应过程。阐明昆虫蜕皮的分子机理,不仅可以解释发育生物学的科学问题,为害虫控制提供新的思路,还可以从中发现新的可资生产应用的分子。作者通过蛋白质组学方法从棉铃虫Helicoverpa armigera Hubner蜕皮幼虫鉴定到30个差异表达的蛋白质。通过抑制性消减杂交技术,从棉铃虫蜕皮幼虫、变态决定幼虫和5龄取食幼虫鉴定到100个表达序列标签(EST)。证明其中的11个EST在蜕皮或变态时差异表达。通过RT-PCR方法克隆棉铃虫激素接受子3基因,研究该基因在发育中的表达模式。用该基因构建具有绿色荧光蛋白标记和多角体蛋白的基因重组病毒(AcMNPV-GFP-HHR3-Polh)。实验结果表明,AcMNPV-GFPHHR3-Polh病毒可以通过注射或口服感染棉铃虫,导致棉铃虫幼虫非正常蜕皮、生长延缓、半数存活时间下降。该研究显示昆虫蜕皮功能基因在害虫控制中有很好的应用前景。蜕皮功能基因的表达与调控、蜕皮激素介导的信号转导通路、变态过程中组织解体和重建的分子机理、激素调控基因顺序表达的分子机理、变态起始因子、JH受体等是本领域今后的主要研究方向。  相似文献   

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Recent advances in mass spectrometry (MS) technology have facilitated the detection and quantification of minor components in organisms and the environment. In this study, we successfully identified 20-hydroxyecdysone (20E) in first instar nymphs (7 days after hatching) of the scorpion Liocheles australasiae, using tandem mass spectrometry combined with high-performance liquid chromatography (LC/MS/MS). This substance was not found in adults after the fifth stage. Other possible molting hormone candidates such as makisterone A (MaA) and ponasterone A (PoA), both of which are reported to be the molting hormones of a few arthropod species, were not detected in this scorpion. The ligand-receptor binding of 20E and its analogs was quantitatively evaluated against the in vitro-translated molting hormone receptor, the heterodimer of ecdysone receptor (EcR) and the retinoid X receptor (RXR) of L. australasiae (LaEcR/LaRXR). The concentrations of ecdysone (E), MaA, 20E, and PoA that are required to inhibit 50% of [(3)H]PoA binding to the LaEcR/LaRXR complex were determined to be 1.9, 0.69, 0.05, and 0.017 μM, respectively. The activity profiles of these 4 ecdysteroids are consistent with those obtained for the molting hormone receptors of several insects. The binding of a non-steroidal E agonist, tebufenozide, to EcR was not observed even at high concentrations, indicating that the structure of the ligand-binding pocket of LaEcR is not favorable for interaction with tebufenozide.  相似文献   

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During the transition from feeding to molting, larval insects undergo profound changes in behavior and patterns of gene expression regulated by the neuroendocrine system. For some species, a distinctive characteristic of molting larvae is presence of a quiescent state sometimes referred to as “molt-sleep”. Here, observations of 4th instar Manduca sexta larvae indicate the molting period involves a predominantly quiescent state that shares behavioral properties of adult insect sleep in that it is rapidly reversible and accompanied by a reduced responsiveness to both mildly arousing and noxious stimuli. When subjected to noxious stimuli, molting larvae exhibit locomotory and avoidance behaviors similar to those of inter-molt larvae. Although less consolidated, inter-molt quiescence shares many of the same behavioral traits with molting quiescence. However, when subjected to deprivation of quiescence, inter-molt larvae display a compensatory rebound behavior that is not detected in molting larvae. This suggests that molting quiescence is a specialized form of inactivity that affords survival advantages to molting larvae. RNA-seq analysis of molting larvae shows general reduction in expression of genes encoding GPCRs and down regulation of genes connected with cyclic nucleotide signaling. On the other hand, certain ion channel genes are up-regulated, including transient receptor potential (TRP) channels, chloride channels and a voltage-dependent calcium channel. These findings suggest patterns of gene expression consistent with elevation of quiescent state characteristic of the molt in a model holometabolous insect.  相似文献   

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Chitin synthase (CHS) is the key regulatory enzyme in chitin synthesis and excretion in insects, and a specific target of insecticides. We cloned a CHS B gene of Bombyx mori (BmChsB) and showed it to be midgut specific, highly expressed during the feeding process in the larva. Knockdown of BmChsB expression in the third‐instar larvae increased the number of nonmolting and abnormally molting larvae. Exposure to nikkomycin Z, a CHS inhibitor, reduced the amount of chitin in the peritrophic membrane of molted larvae, whereas abnormally elevated BmChsB mRNA levels were readily detected from the end of molting and in the newly molted larvae. Exogenous 20‐hydroxyecdysone (20E) and methoprene, a juvenile hormone analogue, significantly upregulated the expression of BmChsB when the levels of endogenous molting hormone (MH) were low and the levels of endogenous juvenile hormone (JH) were high immediately after molting. When levels of endogenous MH were high and those of endogenous JH were low during the molting stage, exogenous 20E did not upregulate BmChsB expression and exogenous methoprene upregulated it negligibly. When the endogenous hormone levels were low during the mulberry‐leaf intake process, BmChsB expression was upregulated by exogenous methoprene. We conclude that the expression of BmChsB is regulated by insect hormones, and directly affects the chitin‐synthesis‐dependent form of the peritrophic membrane and protects the food intake and molting process of silkworm larvae.  相似文献   

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Stages of the zoeal and megalopal molt cycles of Rhithropanopeus harrisii were characterized by the appearance of epidermal cells in the spines and antennae. Eyestalk removal of the beginning of the last zoeal instar slightly accelerated the molt cycle. Fourth-instar larvae which had undergone eyestalk ablation during the third instar progressed through the molt cycle significantly faster than did control larvae. Eyestalkless megalopae also demonstrated an enhanced molting rate. The results suggested that the larval eyestalks contain a factor (molt-inhibiting hormone) which plays a role in controlling the molting rate.  相似文献   

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【目的】作为细胞外信号级联通路的重要组成部分,含有clip结构域的丝氨酸蛋白酶(clip-domain serine proteases, CLIPs)在昆虫发育和先天免疫过程中起着重要作用。本研究旨在克隆烟草甲Lasioderma serricorne CLIP基因,解析其在烟草甲不同发育阶段和幼虫不同组织中的表达模式,分析其在外源激素20-羟基蜕皮酮(20E)和免疫胁迫后的表达特征,为进一步研究其生理功能奠定基础。【方法】采用RT-PCR技术克隆获得烟草甲两个CLIPs基因(LsCLIP1和LsCLIP2)全长cDNA序列,并利用生物信息学软件预测其编码蛋白的结构和特征,利用MEGA 6.06构建昆虫CLIPs系统发育树;利用实时荧光定量PCR(quantitative real-time PCR, qPCR)研究这两个基因在不同发育阶段[低龄幼虫(卵孵化后24 h内)、高龄幼虫(4龄以上)、蛹(化蛹后48 h以上)、早期成虫(化蛹后24 h内)和晚期成虫(化蛹后7 d)]、5龄幼虫不同组织(表皮、脂肪体、肠道和剩余组织)中以及注射20E(120 ng/幼虫)和来源于大肠杆菌Escherichia coli和金黄色葡萄球菌Staphylococcus aureus的肽聚糖(0.2 μL)后4龄幼虫中的表达模式。【结果】克隆获得烟草甲LsCLIP1和LsCLIP2基因的cDNA全序列,其开放阅读框长度均为1 194 bp,编码397个氨基酸。序列分析显示,其氨基酸序列各自具有一个clip结构域和胰蛋白酶结构域。系统发育分析表明,CLIP1和CLIP2都属于subfamily C CLIPs。qPCR结果表明,LsCLIP1和LsCLIP2基因在所检测的各发育阶段和幼虫各组织中均有表达,分别尤以蛹期和表皮中表达量最高;经20E和肽聚糖诱导后,烟草甲幼虫体内LsCLIP1和LsCLIP2基因的表达量明显提高。【结论】推测LsCLIP1和LsCLIP2可能参与了烟草甲的蜕皮发育和对免疫胁迫的应激响应。本研究将为后续研究昆虫CLIPs的分子调控提供参考。  相似文献   

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The epidermal collagenase activity and its induction by 20-hydroxyecdysone in Uca pugilator were investigated.Zymographic electrophoresis showed four bands of collagenae activity,16,19,22 and 29 kDa in molecular weight,with the former two accounting for 60% and 36%,respectively,of the total coUagenase activity. The collagenase activity varies during the molting cycle. Among the molt stages tested,Premoh Stage Do exhibited the highest epidermal coUagenase activity for both the 16 and 19 kDa isoenzymes and,as the molt stage proceeded,the enzymatic activity of these two isoenzymes decreased,with the lowest activity for both found in Premoh Stage D3-4. Injection of 20-hydroxyecdysone significantly induced the activity of the 16 kDa collagenase in the epidermis of Uca pugilator,suggesting that the activity of this isoenzyme is under molting hormone control.Although 20-hydroxyecdysone injection did not result in a statistically significant increase in the activity of the 19 kDa isocnzyme,a tendency of the induction was nonetheless demonstrated. This is the first report on epidermal collagenase activity and its induction by the molting hormone in a crustacean.  相似文献   

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In Drosophila, pulses of the steroid hormone ecdysone trigger larval molting and metamorphosis and coordinate aspects of embryonic development and adult reproduction. At each of these developmental stages, the ecdysone signal is thought to act through a heteromeric receptor composed of the EcR and USP nuclear receptor proteins. Mutations that inactivate all EcR protein isoforms (EcR-A, EcR-B1, and EcR-B2) are embryonic lethal, hindering analysis of EcR function during later development. Using transgenes in which a heat shock promoter drives expression of an EcR cDNA, we have employed temperature-dependent rescue of EcR null mutants to determine EcR requirements at later stages of development. Our results show that EcR is required for hatching, at each larval molt, and for the initiation of metamorphosis. In EcR mutants arrested prior to metamorphosis, expression of ecdysone-responsive genes is blocked and normal ecdysone responses of both imaginal and larval tissues are blocked at an early stage. These results show that EcR mediates ecdysone signaling at multiple developmental stages and implicate EcR in the reorganization of imaginal and larval tissues at the onset of metamorphosis.  相似文献   

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The effects of juvenile hormone (JH) and 20-hydroxyecdysone (20E) on the developmental expression of the two insecticyanin genes, ins-a and ins-b, were investigated with two gene-specific probes. Removal of the corpora allata (-CA, source of JH) clearly delayed and down-regulated the epidermal expression of these genes but enhanced their expression in the fat body during the early development of the fifth instar. Application of JH I to the -CA larvae at the time of head capsule slippage completely restored the normal epidermal expression pattern of the two genes in the early fifth instar, then INS-a mRNA declined prematurely whereas INS-b mRNA remained similar to that in the intact larvae. By contrast, in the fat body of -CA larvae, the exogenous JH had little effect on the levels of INS-a mRNA, but enhanced expression of INS-b mRNA relative to intact larvae. Culture of epidermis from day 1 fifth instar larvae with 40 ng/ml 20E for up to 24 h accelerated the loss of INS-a mRNA without affecting the levels of INS-b mRNA. Both mRNAs declined in isolated larval abdomens over a 24 h period, and this decline was slowed by 1 g methoprene (a JH analog). Together these results indicate that JH controls the levels of the two mRNAs in both the epidermis and fat body, with additional factors involved in regulating these genes in the fat body during the molt and in the epidermis during the growth phase.  相似文献   

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Ecdysteroids regulate many key developmental events in arthropods including molting and metamorphosis. Recently, members of the Drosophila Halloween group of genes, that are required for embryonic viability and cuticle deposition, have been shown to code for several cytochrome P450 enzymes that catalyze the terminal hydroxylation steps in the conversion of cholesterol to the molting hormone 20-hydroxyecdysone. These P450s are conserved in other insects and each is thought to function throughout development as the sole mediator of a particular biosynthetic step since, where analyzed, each is expressed at all stages of development and shows no closely related homolog in their respective genomes. In contrast, we show here that several dipteran genomes encode two novel, highly related, microsomal P450 enzymes, Cyp307A1 and Cyp307A2, that likely participate as stage-specific components of the ecdysone biosynthetic machinery. This hypothesis comes from the observation that Cyp307A1 is encoded by the Halloween gene spook (spo), but unlike other Halloween class genes, Dmspo is not expressed during the larval stages. In contrast, Cyp307a2, dubbed spookier (spok), is expressed primarily during larval stages within the prothoracic gland cells of the ring gland. RNAi mediated reduction in the expression of this heterochromatin localized gene leads to arrest at the first instar stage which can be rescued by feeding the larva 20E, E or ketodiol but not 7dC. In addition, spok expression is eliminated in larvae carrying mutations in molting defective (mld), a gene encoding a nuclear zinc finger protein that is required for production of ecdysone during Drosophila larval development. Intriguingly, mld is not present in the Bombyx mori genome, and we have identified only one spook homolog in both Bombyx and Manduca that is expressed in both embryos and larva. These studies suggest an evolutionary split between Diptera and Lepidoptera in how the ecdysone biosynthetic pathway is regulated during development.  相似文献   

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Isoform-specific null mutations were used to define the functions of three orphan members of the nuclear receptor superfamily, E75A, E75B, and E75C, encoded by the E75 early ecdysteroid-inducible gene. E75B mutants are viable and fertile, while E75C mutants die as adults. In contrast, E75A mutants have a reduced ecdysteroid titer during larval development, resulting in developmental delays, developmental arrests, and molting defects. Remarkably, some E75A mutant second instar larvae display a heterochronic phenotype in which they induce genes specific to the third instar and pupariate without undergoing a molt. We propose that ecdysteroid-induced E75A expression defines a feed-forward pathway that amplifies or maintains the ecdysteroid titer during larval development, ensuring proper temporal progression through the life cycle.  相似文献   

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蜕皮激素与其受体EcR-USP的转录调控机制   总被引:2,自引:1,他引:1  
李康  李胜  曹阳 《昆虫学报》2011,54(8):933-937
蜕皮激素20-羟基蜕皮酮(20-hydroxyecdysone, 20E)是一种典型的类固醇激素, 主导调控昆虫的蜕皮、变态、生殖等重要生理过程。20E受体EcR-USP已被鉴定近20年, 20E与其受体复合物的转录调控机制也有了许多重要突破。已有研究表明: (1)20E受体由核受体EcR和USP形成; (2)EcR-USP异源二聚体在分子伴侣蛋白复合物的协助下获得DNA结合活性; (3)20E通过解除共阻遏因子和募集共激活因子来激活EcR USP异源二聚体并启动下游基因的转录; (4)20E-EcR-USP配体-受体复合物引发20E初级应答基因的表达, 由20E初级反应基因编码的转录因子诱导表达的20E次级应答基因级联放大20E信号, 从而调控昆虫蜕皮、变态、生殖等生理过程。  相似文献   

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Physiological Control of Molting in Insects   总被引:2,自引:0,他引:2  
SYNOPSIS. The initiation of a molting cycle in insects is neithera random nor a strictly periodic event. Insofar as molting canaccomplish different things under different circumstances, suchas a change in size or a change in form, it is reasonable toasume that the timing of a molt must be adapted to these functions.The onset of a metamorphic molt, in particular, must be preciselycontrolled because the onset of metamorphosis terminates thegrowth phase of a larva and establishes the body size of theadult insect. This aspect of the control of molting has receivedrelatively little attention and our knowledge of specific physiologicalmechanisms for the control of molt initiation is restrictedto three species: the blood-sucking bug, Rhodnius prolixus,the greater milkweed bug, Oncopeltus fasciatus, and the tobaccohornworm, Manduca sexta. The present review discusses the stateof our knowledge about the factors that render these insectscompetent to molt and about the stimuli that serve as a directtrigger for molting.  相似文献   

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