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1.
Cell ; 184(7): 1693-1705.e17, 2021 04 01.
Article in English | MEDLINE | ID: mdl-33770502

ABSTRACT

Plants protect themselves with a vast array of toxic secondary metabolites, yet most plants serve as food for insects. The evolutionary processes that allow herbivorous insects to resist plant defenses remain largely unknown. The whitefly Bemisia tabaci is a cosmopolitan, highly polyphagous agricultural pest that vectors several serious plant pathogenic viruses and is an excellent model to probe the molecular mechanisms involved in overcoming plant defenses. Here, we show that, through an exceptional horizontal gene transfer event, the whitefly has acquired the plant-derived phenolic glucoside malonyltransferase gene BtPMaT1. This gene enables whiteflies to neutralize phenolic glucosides. This was confirmed by genetically transforming tomato plants to produce small interfering RNAs that silence BtPMaT1, thus impairing the whiteflies' detoxification ability. These findings reveal an evolutionary scenario whereby herbivores harness the genetic toolkit of their host plants to develop resistance to plant defenses and how this can be exploited for crop protection.


Subject(s)
Hemiptera/genetics , Insect Proteins/metabolism , Solanum lycopersicum/genetics , Toxins, Biological/metabolism , Animals , Gene Transfer, Horizontal , Genes, Plant , Glucosides/chemistry , Glucosides/metabolism , Hemiptera/physiology , Herbivory , Insect Proteins/antagonists & inhibitors , Insect Proteins/classification , Insect Proteins/genetics , Intestinal Mucosa/metabolism , Solanum lycopersicum/metabolism , Malonyl Coenzyme A/metabolism , Phylogeny , Plants, Genetically Modified/genetics , Plants, Genetically Modified/metabolism , RNA Interference , RNA, Double-Stranded/metabolism , Toxins, Biological/chemistry
2.
Cell ; 158(6): 1270-1280, 2014 Sep 11.
Article in English | MEDLINE | ID: mdl-25175626

ABSTRACT

Mutualisms that become evolutionarily stable give rise to organismal interdependencies. Some insects have developed intracellular associations with communities of bacteria, where the interdependencies are manifest in patterns of complementary gene loss and retention among members of the symbiosis. Here, using comparative genomics and microscopy, we show that a three-member symbiotic community has become a four-way assemblage through a novel bacterial lineage-splitting event. In some but not all cicada species of the genus Tettigades, the endosymbiont Candidatus Hodgkinia cicadicola has split into two new cytologically distinct but metabolically interdependent species. Although these new bacterial genomes are partitioned into discrete cell types, the intergenome patterns of gene loss and retention are almost perfectly complementary. These results defy easy classification: they show genomic patterns consistent with those observed after both speciation and whole-genome duplication. We suggest that our results highlight the potential power of nonadaptive forces in shaping organismal complexity.


Subject(s)
Alphaproteobacteria/classification , Alphaproteobacteria/genetics , Genome, Bacterial , Hemiptera/microbiology , Alphaproteobacteria/isolation & purification , Alphaproteobacteria/physiology , Animals , Evolution, Molecular , Hemiptera/cytology , Hemiptera/physiology , Molecular Sequence Data , Pseudogenes , Symbiosis
3.
Nature ; 618(7966): 799-807, 2023 Jun.
Article in English | MEDLINE | ID: mdl-37316670

ABSTRACT

Plants deploy receptor-like kinases and nucleotide-binding leucine-rich repeat receptors to confer host plant resistance (HPR) to herbivores1. These gene-for-gene interactions between insects and their hosts have been proposed for more than 50 years2. However, the molecular and cellular mechanisms that underlie HPR have been elusive, as the identity and sensing mechanisms of insect avirulence effectors have remained unknown. Here we identify an insect salivary protein perceived by a plant immune receptor. The BPH14-interacting salivary protein (BISP) from the brown planthopper (Nilaparvata lugens Stål) is secreted into rice (Oryza sativa) during feeding. In susceptible plants, BISP targets O. satvia RLCK185 (OsRLCK185; hereafter Os is used to denote O. satvia-related proteins or genes) to suppress basal defences. In resistant plants, the nucleotide-binding leucine-rich repeat receptor BPH14 directly binds BISP to activate HPR. Constitutive activation of Bph14-mediated immunity is detrimental to plant growth and productivity. The fine-tuning of Bph14-mediated HPR is achieved through direct binding of BISP and BPH14 to the selective autophagy cargo receptor OsNBR1, which delivers BISP to OsATG8 for degradation. Autophagy therefore controls BISP levels. In Bph14 plants, autophagy restores cellular homeostasis by downregulating HPR when feeding by brown planthoppers ceases. We identify an insect saliva protein sensed by a plant immune receptor and discover a three-way interaction system that offers opportunities for developing high-yield, insect-resistant crops.


Subject(s)
Hemiptera , Insect Proteins , Oryza , Plant Defense Against Herbivory , Plant Proteins , Animals , Hemiptera/immunology , Hemiptera/physiology , Leucine/metabolism , Nucleotides/metabolism , Oryza/growth & development , Oryza/immunology , Oryza/metabolism , Oryza/physiology , Plant Defense Against Herbivory/immunology , Plant Defense Against Herbivory/physiology , Plant Proteins/chemistry , Plant Proteins/metabolism , Insect Proteins/metabolism , Autophagy
4.
Cell ; 153(7): 1567-78, 2013 Jun 20.
Article in English | MEDLINE | ID: mdl-23791183

ABSTRACT

The smallest reported bacterial genome belongs to Tremblaya princeps, a symbiont of Planococcus citri mealybugs (PCIT). Tremblaya PCIT not only has a 139 kb genome, but possesses its own bacterial endosymbiont, Moranella endobia. Genome and transcriptome sequencing, including genome sequencing from a Tremblaya lineage lacking intracellular bacteria, reveals that the extreme genomic degeneracy of Tremblaya PCIT likely resulted from acquiring Moranella as an endosymbiont. In addition, at least 22 expressed horizontally transferred genes from multiple diverse bacteria to the mealybug genome likely complement missing symbiont genes. However, none of these horizontally transferred genes are from Tremblaya, showing that genome reduction in this symbiont has not been enabled by gene transfer to the host nucleus. Our results thus indicate that the functioning of this three-way symbiosis is dependent on genes from at least six lineages of organisms and reveal a path to intimate endosymbiosis distinct from that followed by organelles.


Subject(s)
Bacteria/genetics , Betaproteobacteria/genetics , Gene Transfer, Horizontal , Hemiptera/genetics , Hemiptera/microbiology , Symbiosis , Amino Acids/biosynthesis , Animals , Bacteria/classification , Gene Expression Profiling , Hemiptera/physiology , Molecular Sequence Data , Phylogeny
5.
Proc Natl Acad Sci U S A ; 121(14): e2315982121, 2024 Apr 02.
Article in English | MEDLINE | ID: mdl-38536757

ABSTRACT

Throughout evolution, arboviruses have developed various strategies to counteract the host's innate immune defenses to maintain persistent transmission. Recent studies have shown that, in addition to bacteria and fungi, the innate Toll-Dorsal immune system also plays an essential role in preventing viral infections in invertebrates. However, whether the classical Toll immune pathway is involved in maintaining the homeostatic process to ensure the persistent and propagative transmission of arboviruses in insect vectors remain unclear. In this study, we revealed that the transcription factor Dorsal is actively involved in the antiviral defense of an insect vector (Laodelphax striatellus) by regulating the target gene, zinc finger protein 708 (LsZN708), which mediates downstream immune-related effectors against infection with the plant virus (Rice stripe virus, RSV). In contrast, an antidefense strategy involving the use of the nonstructural-protein (NS4) to antagonize host antiviral defense through competitive binding to Dorsal from the MSK2 kinase was employed by RSV; this competitive binding inhibited Dorsal phosphorylation and reduced the antiviral response of the host insect. Our study revealed the molecular mechanism through which Toll-Dorsal-ZN708 mediates the maintenance of an arbovirus homeostasis in insect vectors. Specifically, ZN708 is a newly documented zinc finger protein targeted by Dorsal that mediates the downstream antiviral response. This study will contribute to our understanding of the successful transmission and spread of arboviruses in plant or invertebrate hosts.


Subject(s)
Arboviruses , Hemiptera , Oryza , Tenuivirus , Animals , Arboviruses/genetics , Hemiptera/physiology , Tenuivirus/physiology , Insect Vectors , Antiviral Agents/metabolism , Oryza/genetics , Plant Diseases
6.
Proc Natl Acad Sci U S A ; 121(25): e2406788121, 2024 Jun 18.
Article in English | MEDLINE | ID: mdl-38865267

ABSTRACT

Heritable symbionts are common among animals in nature, but the molecular mechanisms underpinning symbiont invasions of host populations have been elusive. In this study, we demonstrate the spread of Rickettsia in an invasive agricultural pest, the whitefly Bemisia tabaci Mediterranean (MED), across northeastern China from 2018 to 2023. Here, we show that the beneficial symbiont Rickettsia spreads by manipulating host hormone signals. Our analyses suggest that Rickettsia have been horizontally acquired by B. tabaci MED from another invasive whitefly B. tabaci Middle East-Asia Minor 1 during periods of coexistence. Rickettsia is transmitted maternally and horizontally from female B. tabaci MED individuals. Rickettsia infection enhances fecundity and results in female bias among whiteflies. Our findings reveal that Rickettsia infection stimulates juvenile hormone (JH) synthesis, in turn enhancing fecundity, copulation events, and the female ratio of the offspring. Consequently, Rickettsia infection results in increased whitefly fecundity and female bias by modulating the JH pathway. More female progeny facilitates the transmission of Rickettsia. This study illustrates that the spread of Rickettsia among invasive whiteflies in northeastern China is propelled by host hormone regulation. Such symbiont invasions lead to rapid physiological and molecular evolution in the host, influencing the biology and ecology of an invasive species.


Subject(s)
Fertility , Hemiptera , Rickettsia , Sex Ratio , Symbiosis , Animals , Rickettsia/physiology , Hemiptera/microbiology , Hemiptera/physiology , Female , Male , Juvenile Hormones/metabolism , China
7.
Proc Natl Acad Sci U S A ; 121(16): e2318783121, 2024 Apr 16.
Article in English | MEDLINE | ID: mdl-38588412

ABSTRACT

Communication between insects and plants relies on the exchange of bioactive molecules that traverse the species interface. Although proteinic effectors have been extensively studied, our knowledge of other molecules involved in this process remains limited. In this study, we investigate the role of salivary microRNAs (miRNAs) from the rice planthopper Nilaparvata lugens in suppressing plant immunity. A total of three miRNAs were confirmed to be secreted into host plants during insect feeding. Notably, the sequence-conserved miR-7-5P is specifically expressed in the salivary glands of N. lugens and is secreted into saliva, distinguishing it significantly from homologues found in other insects. Silencing miR-7-5P negatively affects N. lugens feeding on rice plants, but not on artificial diets. The impaired feeding performance of miR-7-5P-silenced insects can be rescued by transgenic plants overexpressing miR-7-5P. Through target prediction and experimental testing, we demonstrate that miR-7-5P targets multiple plant genes, including the immune-associated bZIP transcription factor 43 (OsbZIP43). Infestation of rice plants by miR-7-5P-silenced insects leads to the increased expression of OsbZIP43, while the presence of miR-7-5P counteracts this upregulation effect. Furthermore, overexpressing OsbZIP43 confers plant resistance against insects which can be subverted by miR-7-5P. Our findings suggest a mechanism by which herbivorous insects have evolved salivary miRNAs to suppress plant immunity, expanding our understanding of cross-kingdom RNA interference between interacting organisms.


Subject(s)
Hemiptera , MicroRNAs , Oryza , Animals , RNA Interference , MicroRNAs/genetics , MicroRNAs/metabolism , Saliva , Hemiptera/physiology , Plant Immunity/genetics , Oryza/genetics
9.
Nature ; 631(8022): 713, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38987342
11.
Proc Natl Acad Sci U S A ; 119(41): e2122099119, 2022 10 11.
Article in English | MEDLINE | ID: mdl-36191206

ABSTRACT

Viruses pose a great threat to animal and plant health worldwide, with many being dependent on insect vectors for transmission between hosts. While the virus-host arms race has been well established, how viruses and insect vectors adapt to each other remains poorly understood. Begomoviruses comprise the largest genus of plant-infecting DNA viruses and are exclusively transmitted by the whitefly Bemisia tabaci. Here, we show that the vector Janus kinase/signal transducer and activator of transcription (JAK/STAT) pathway plays an important role in mediating the adaptation between the begomovirus tomato yellow leaf curl virus (TYLCV) and whiteflies. We found that the JAK/STAT pathway in B. tabaci functions as an antiviral mechanism against TYLCV infection in whiteflies as evidenced by the increase in viral DNA and coat protein (CP) levels after inhibiting JAK/STAT signaling. Two STAT-activated effector genes, BtCD109-2 and BtCD109-3, mediate this anti-TYLCV activity. To counteract this vector immunity, TYLCV has evolved strategies that impair the whitefly JAK/STAT pathway. Infection of TYLCV is associated with a reduction of JAK/STAT pathway activity in whiteflies. Moreover, TYLCV CP binds to STAT and blocks its nuclear translocation, thus, abrogating the STAT-dependent transactivation of target genes. We further show that inhibition of the whitefly JAK/STAT pathway facilitates TYLCV transmission but reduces whitefly survival and fecundity, indicating that this JAK/STAT-dependent TYLCV-whitefly interaction plays an important role in keeping a balance between whitefly fitness and TYLCV transmission. This study reveals a mechanism of plant virus-insect vector coadaptation in relation to vector survival and virus transmission.


Subject(s)
Begomovirus , Hemiptera , Plant Viruses , Solanum lycopersicum , Animals , Antiviral Agents , Begomovirus/genetics , DNA, Viral , Hemiptera/physiology , Janus Kinases/genetics , Solanum lycopersicum/genetics , Plant Diseases , Plant Viruses/genetics , STAT Transcription Factors/genetics , Signal Transduction
12.
Mol Plant Microbe Interact ; 37(2): 98-111, 2024 Feb.
Article in English | MEDLINE | ID: mdl-38051229

ABSTRACT

The phloem-feeding insect Bemisia tabaci is an important pest, responsible for the transmission of several crop-threatening virus species. While feeding, the insect secretes a cocktail of effectors to modulate plant defense responses. Here, we present a set of proteins identified in an artificial diet on which B. tabaci was salivating. We subsequently studied whether these candidate effectors can play a role in plant immune suppression. Effector G4 was the most robust suppressor of an induced- reactive oxygen species (ROS) response in Nicotiana benthamiana. In addition, G4 was able to suppress ROS production in Solanum lycopersicum (tomato) and Capsicum annuum (pepper). G4 localized predominantly in the endoplasmic reticulum in N. benthamiana leaves and colocalized with two identified target proteins in tomato: REF-like stress related protein 1 (RSP1) and meloidogyne-induced giant cell protein DB141 (MIPDB141). Silencing of MIPDB141 in tomato reduced whitefly fecundity up to 40%, demonstrating that the protein is involved in susceptibility to B. tabaci. Together, our data demonstrate that effector G4 impairs tomato immunity to whiteflies by interfering with ROS production and via an interaction with tomato susceptibility protein MIPDB141. [Formula: see text] Copyright © 2024 The Author(s). This is an open access article distributed under the CC BY-NC-ND 4.0 International license.


Subject(s)
Capsicum , Hemiptera , Solanum lycopersicum , Animals , Hemiptera/physiology , Reactive Oxygen Species
13.
New Phytol ; 242(1): 262-277, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38332248

ABSTRACT

Plants are simultaneously attacked by different pests that rely on sugars uptake from plants. An understanding of the role of plant sugar allocation in these multipartite interactions is limited. Here, we characterized the expression patterns of sucrose transporter genes and evaluated the impact of targeted transporter gene mutants and brown planthopper (BPH) phloem-feeding and oviposition on root sugar allocation and BPH-reduced rice susceptibility to Meloidogyne graminicola. We found that the sugar transporter genes OsSUT1 and OsSUT2 are induced at BPH oviposition sites. OsSUT2 mutants showed a higher resistance to gravid BPH than to nymph BPH, and this was correlated with callose deposition, as reflected in a different effect on M. graminicola infection. BPH phloem-feeding caused inhibition of callose deposition that was counteracted by BPH oviposition. Meanwhile, this pivotal role of sugar allocation in BPH-reduced rice susceptibility to M. graminicola was validated on rice cultivar RHT harbouring BPH resistance genes Bph3 and Bph17. In conclusion, we demonstrated that rice susceptibility to M. graminicola is regulated by BPH phloem-feeding and oviposition on rice through differences in plant sugar allocation.


Subject(s)
Hemiptera , Oryza , Tylenchoidea , Animals , Female , Hemiptera/physiology , Sugars/metabolism , Oryza/metabolism
14.
Insect Mol Biol ; 33(3): 195-205, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38183324

ABSTRACT

Coping with stressful conditions and maintaining reproduction are two key biological processes that affect insect population dynamics. Small heat shock proteins (sHSPs) are involved in the stress response and the development of insects. The sHsp gene Laodelphax striatellus (Hemiptera: Delphacidae) sHsp 21.5 (LsHsp21.5) showed constitutive, stage- and organ-specific expression in L. striatellus, a pest that damages cultivated rice in east Asia. The expression of LsHsp21.5 was highest in the ovary, with 43.60, 12.99 and 1.45 time higher expression here than in the head, gut and female fat bodies, respectively. The expression of this gene was weakly affected by heat or cold shock. The gene provided in vitro protection against heat damage to malate dehydrogenase and in vivo protection against heat stress in Escherichia coli (Enterobacteriales: Enterobacteriaceae) BL21(DE3) and L. striatellus. Moreover, L. striatellus reproduction decreased by 1.85 times when the expression of LsHsp21.5 was inhibited by RNA interference. The expression of some genes related to reproduction, such as the homologous gene of chorion protein, also declined. These results suggest that LsHsp21.5 expression not only protects other proteins against stress but also helps maintain the stable expression of some reproduction-related genes under non-stressful conditions, with impacts on L. striatellus fecundity.


Subject(s)
Heat-Shock Proteins, Small , Hemiptera , Insect Proteins , Thermotolerance , Animals , Female , Heat-Shock Proteins, Small/metabolism , Heat-Shock Proteins, Small/genetics , Hemiptera/genetics , Hemiptera/metabolism , Hemiptera/physiology , Hot Temperature , Insect Proteins/metabolism , Insect Proteins/genetics , Reproduction/genetics , Thermotolerance/genetics
15.
J Evol Biol ; 37(1): 110-122, 2024 Jan 29.
Article in English | MEDLINE | ID: mdl-38285662

ABSTRACT

Animals often mimic the behaviours or signals of conspecifics of the opposite sex while courting. We explored the potential functions of a novel female-like signal type in the courtship displays of male Enchenopa treehoppers. In these plant-feeding insects, males produce plant-borne vibrational advertisement signals, to which females respond with their own duetting signals. Males also produce a signal type that resembles the female duetting responses. We experimentally tested whether this signal modifies the behaviour of receivers. First, we tested whether the female-like signal would increase the likelihood of a female response. However, females were as likely to respond to playbacks with or without them. Second, we tested whether the female-like signal would inhibit competing males, but males were as likely to produce displays after playbacks with or without them. Hence, we found no evidence that this signal has an adaptive function, despite its presence in the courtship display, where sexual selection affects signal features. Given these findings, we also explored whether the behavioural and morphological factors of the males were associated with the production of the female-like signal. Males that produced this signal had higher signalling effort (longer and more frequent signals) than males that did not produce it, despite being in worse body condition. Lastly, most males were consistent over time in producing the female-like signal or not. These findings suggest that condition-dependent or motivational factors explain the presence of the female-like signal. Alternatively, this signal might not bear an adaptive function, and it could be a way for males to warm up or practice signalling, or even be a by-product of how signals are transmitted through the plant. We suggest further work that might explain our puzzling finding that a signal in the reproductive context might not have an adaptive function.


Subject(s)
Hemiptera , Animals , Male , Female , Hemiptera/physiology , Sexual Behavior, Animal/physiology , Animal Communication , Insecta , Sexual Selection
16.
PLoS Biol ; 19(4): e3001190, 2021 04.
Article in English | MEDLINE | ID: mdl-33844686

ABSTRACT

Chemical insecticides have been heavily employed as the most effective measure for control of agricultural and medical pests, but evolution of resistance by pests threatens the sustainability of this approach. Resistance-conferring mutations sometimes impose fitness costs, which may drive subsequent evolution of compensatory modifier mutations alleviating the costs of resistance. However, how modifier mutations evolve and function to overcome the fitness cost of resistance still remains unknown. Here we show that overexpression of P450s not only confers imidacloprid resistance in the brown planthopper, Nilaparvata lugens, the most voracious pest of rice, but also leads to elevated production of reactive oxygen species (ROS) through metabolism of imidacloprid and host plant compounds. The inevitable production of ROS incurs a fitness cost to the pest, which drives the increase or fixation of the compensatory modifier allele T65549 within the promoter region of N. lugens peroxiredoxin (NlPrx) in the pest populations. T65549 allele in turn upregulates the expression of NlPrx and thus increases resistant individuals' ability to clear the cost-incurring ROS of any source. The frequent involvement of P450s in insecticide resistance and their capacity to produce ROS while metabolizing their substrates suggest that peroxiredoxin or other ROS-scavenging genes may be among the common modifier genes for alleviating the fitness cost of insecticide resistance.


Subject(s)
Hemiptera/drug effects , Insecticide Resistance/drug effects , Neonicotinoids/pharmacology , Nitro Compounds/pharmacology , Oryza/parasitology , Peroxiredoxins/physiology , Adaptation, Biological/drug effects , Adaptation, Biological/genetics , Alleles , Animals , Chromosome Mapping , Gene Expression Regulation, Enzymologic/drug effects , Genes, Insect/drug effects , Genes, Modifier/drug effects , Genes, Modifier/physiology , Genetic Association Studies , Genetic Fitness/drug effects , Hemiptera/physiology , Insecticide Resistance/genetics , Insecticides/pharmacology , Oryza/drug effects , Peroxiredoxins/genetics , Reactive Oxygen Species/metabolism , Toxicity Tests
17.
J Chem Ecol ; 50(5-6): 276-289, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38532167

ABSTRACT

In plant-microbe-insect systems, plant-mediated responses involve the regulation and interactions of plant defense signaling pathways of phytohormones jasmonic acid (JA), ethylene (ET), and salicylic acid (SA). Phytoplasma subgroup 16SrI is the causal agent of Aster Yellows (AY) disease and is primarily transmitted by populations of aster leafhoppers (Macrosteles quadrilineatus Forbes). Aster Yellows infection in plants is associated with the downregulation of the JA pathway and increased leafhopper oviposition. The extent to which the presence of intact phytohormone-mediated defensive pathways regulates aster leafhopper behavioral responses, such as oviposition or settling preferences, remains unknown. We conducted no-choice and two-choice bioassays using a selection of Arabidopsis thaliana lines that vary in their defense pathways and repeated the experiments using AY-infected aster leafhoppers to evaluate possible differences associated with phytoplasma infection. While nymphal development was similar among the different lines and groups of AY-uninfected and AY-infected insects, the number of offspring and individual female egg load of AY-uninfected and AY-infected insects differed in lines with mutated components of the JA and SA signaling pathways. In most cases, AY-uninfected insects preferred to settle on wild-type (WT) plants over mutant lines; no clear pattern was observed in the settling preference of AY-infected insects. These findings support previous observations in other plant pathosystems and suggest that plant signaling pathways and infection with a plant pathogen can affect insect behavioral responses in more than one manner. Potential differences with previous work on AY could be related to the specific subgroup of phytoplasma involved in each case.


Subject(s)
Arabidopsis , Cyclopentanes , Hemiptera , Oviposition , Oxylipins , Phytoplasma , Plant Diseases , Signal Transduction , Animals , Phytoplasma/physiology , Hemiptera/physiology , Hemiptera/microbiology , Cyclopentanes/metabolism , Oxylipins/metabolism , Arabidopsis/microbiology , Arabidopsis/metabolism , Arabidopsis/physiology , Arabidopsis/immunology , Female , Plant Diseases/microbiology , Salicylic Acid/metabolism , Plant Growth Regulators/metabolism , Ethylenes/metabolism
18.
PLoS Genet ; 17(8): e1009724, 2021 08.
Article in English | MEDLINE | ID: mdl-34398892

ABSTRACT

Feeding is essential for animal survival and reproduction and is regulated by both internal states and external stimuli. However, little is known about how internal states influence the perception of external sensory cues that regulate feeding behavior. Here, we investigated the neuronal and molecular mechanisms behind nutritional state-mediated regulation of gustatory perception in control of feeding behavior in the brown planthopper and Drosophila. We found that feeding increases the expression of the cholecystokinin-like peptide, sulfakinin (SK), and the activity of a set of SK-expressing neurons. Starvation elevates the transcription of the sugar receptor Gr64f and SK negatively regulates the expression of Gr64f in both insects. Interestingly, we found that one of the two known SK receptors, CCKLR-17D3, is expressed by some of Gr64f-expressing neurons in the proboscis and proleg tarsi. Thus, we have identified SK as a neuropeptide signal in a neuronal circuitry that responds to food intake, and regulates feeding behavior by diminishing gustatory receptor gene expression and activity of sweet sensing GRNs. Our findings demonstrate one nutritional state-dependent pathway that modulates sweet perception and thereby feeding behavior, but our experiments cannot exclude further parallel pathways. Importantly, we show that the underlying mechanisms are conserved in the two distantly related insect species.


Subject(s)
Feeding Behavior/physiology , Taste Perception/genetics , Animals , Brain/metabolism , Carbohydrate Metabolism/physiology , Carbohydrates/physiology , Cholecystokinin/metabolism , Drosophila melanogaster/genetics , Drosophila melanogaster/physiology , Feeding Behavior/psychology , Gene Expression/genetics , Gene Expression Regulation/genetics , Hemiptera/genetics , Hemiptera/physiology , Neurons/metabolism , Neuropeptides/metabolism , Receptors, Cell Surface/genetics , Starvation/metabolism , Sugars/metabolism , Taste/physiology , Taste Perception/physiology
19.
Ecotoxicol Environ Saf ; 279: 116491, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38805832

ABSTRACT

Transplant treatment with chlorantraniliprole (CAP) is a proactive approach to protect transplanted plants from pests during early establishment and has been comprehensively applied in tobacco fields in Guangdong Province, China. However, it is not known whether the high dose of CAP in transplant treatments has lethal or sublethal effects on the generalist predator Rhynocoris fuscipes Fabricius (Hemiptera: Reduviidae). To address this concern, the mortalities of R. fuscipes were assessed when 2nd instar larvae of R. fuscipes were in direct contact with or consuming CAP and when their eggs were exposed to CAP. Furthermore, 2nd instar nymphs R. fuscipes were long-term exposed to CAP until they reached adulthood, and their life table parameters were determined. After exposure to CAP, the activity of detoxification enzymes (P450, CaeE and GST) and the functional respond of R. fuscipes to their preys Agrotis ipsilon larvae were determined. In this study, CAP at all concentrations did not significantly increase the mortality of 2nd instar of R. fuscipes nymphs in comparison with the control. The detoxification enzyme (P450, CarE and GST) activities and the number of A. ipsilon larvae consumed by R. fuscipes in the transplant treatment were not affected by CAP after 3-d or long-term exposure. These results indicated that CAP was harmless to R. fuscipes according to IOBC protocols. However, during the treatment of 2nd instar nymphs with a label rate of 15 g AI/ha and a 5× label rate of 75 g AI/ha, CAP significantly prolonged the pre-adult and pre-oviposition periods, and treated adults had lower oviposition. Attention should be given to the time interval between transplant treatment and the release of this biocontrol agent into the field to minimize the impact of CAP on the predator R. fuscipes.


Subject(s)
Fertility , Insecticides , Larva , Nymph , Predatory Behavior , ortho-Aminobenzoates , Animals , ortho-Aminobenzoates/toxicity , Larva/drug effects , Insecticides/toxicity , Nymph/drug effects , Nymph/growth & development , Nymph/physiology , Fertility/drug effects , Predatory Behavior/drug effects , Hemiptera/drug effects , Hemiptera/physiology , China , Female , Heteroptera/drug effects , Heteroptera/physiology , Food Chain
20.
Pestic Biochem Physiol ; 199: 105766, 2024 Feb.
Article in English | MEDLINE | ID: mdl-38458675

ABSTRACT

Bemisia tabaci (Gennadius) is one of the most dangerous polyphagous pests in the world causing damage to various crops by sucking sap during the nymphal and adult stages. Chemical management of whiteflies is challenging because of the emergence of pesticide resistance. RNA interference has been well established in whitefly to study the functions of various genes. G-protein coupled receptors (GPCRs) are important targets for development of new generation insecticides. In this study, Ecdysis triggering hormone receptor (ETHr) gene expression was recorded in different stages of whitefly and its function has been studied through RNAi. The expression of ETHr is highest in third-instar nymphs followed by other nymphal instars, pupae and newly emerged adults. Silencing of ETHr resulted in significantly higher adult mortality (68.88%), reduced fecundity (4.46 eggs /female), reduced longevity of male and female (1.05 and 1.40 days, respectively) when adults were fed with dsETHr @ 1.0 µg/µl. Silencing of ETHr in nymphs lead to significantly higher mortality (81.35%) as compared to control. This study confirms that ETHr gene is essential for growth and development of whitefly nymphs and adults. Hence, it can be future target for developing dsRNA based insecticides for management of whitefly.


Subject(s)
Hemiptera , Insecticides , Animals , Insecticides/toxicity , Insecticides/metabolism , Molting/genetics , Reproduction/genetics , Hormones/metabolism , Hemiptera/physiology
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