Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 20 de 519
Filter
1.
Genes (Basel) ; 15(7)2024 Jun 27.
Article in English | MEDLINE | ID: mdl-39062629

ABSTRACT

The epidermal cells of insects are polarized epithelial cells that play a pivotal role in the insect's molting process. Sinuous, a pivotal structural protein involved in the formation of septate junctions among epithelial cells, is essential for its physiological function. In this study, to determine whether sinuous participates in the regulation of insect molting, we identified the sinuous gene, Lmsinu, in Locusta migratoria, which encodes a protein belonging to the claudin family and shares 62.6% identity with Drosophila's sinuous protein. Lmsinu is expressed in multiple tissues, and its expression level in the integument significantly increases prior to molting. Knockdown of Lmsinu in L. migratoria results in larval mortality during molting. Furthermore, hematoxylin and eosin and chitin staining demonstrate that the downregulation of Lmsinu led to a prolonged degradation process of the old cuticle during the molting process. Electron microscopy analysis further revealed that knockdown of Lmsinu disrupts the formation of septate junctions among epidermal cells, which are a monolayer of polarized epithelial cells, which may hinder the functionality of epidermal cells during the process of molting. In summary, these findings suggest that Lmsinu plays a role in nymph molting by regulating the formation of septate junctions among epidermal cells.


Subject(s)
Claudins , Insect Proteins , Locusta migratoria , Molting , Animals , Molting/genetics , Locusta migratoria/genetics , Locusta migratoria/metabolism , Locusta migratoria/growth & development , Insect Proteins/genetics , Insect Proteins/metabolism , Claudins/genetics , Claudins/metabolism , Larva/genetics , Larva/growth & development , Larva/metabolism , Gene Expression Regulation, Developmental
2.
Pestic Biochem Physiol ; 203: 106014, 2024 Aug.
Article in English | MEDLINE | ID: mdl-39084805

ABSTRACT

Energy metabolism is essential for insect development, reproduction and detoxification. Insects often reallocate energy and resources to manage external stress, balancing the demands of detoxification and reproduction. Glucose transport 4 (Glut4), a glucose transporter, is involved in glucose and lipid metabolism. However, the specific molecular mechanism of Glut4 in insect reproduction, and its role in the response to insecticide-induced oxidative stress remain unclear. In this study, LmGlut4 was identified and analyzed in Locusta migratoria. Silencing of LmGlut4 significantly reduced vitellogenin (Vg) biosynthesis in the fat body and Vg absorption by oocytes, ultimately hindering ovarian development and oocyte maturation. Knockdown of LmGlut4 also inhibited the biosynthesis of key insect hormones, such as juvenile hormone (JH), 20-hydroxyecdysone (20E) and insulin. Furthermore, LmGlut4 knockdown led to reduced triglyceride (TG) and glycogen content in the fat body and ovary, as well as decreased capacity for trehalose biosynthesis in adipocytes. Additionally, dsLmGlut4-treated locusts showed heightened sensitivity to deltamethrin, leading to increased triglyceride depletion during detoxification. This study sheds light on the biological function of LmGlut4 in the ovary and provides potential target genes for exploring biological pest management strategies.


Subject(s)
Glucose Transporter Type 4 , Insecticides , Locusta migratoria , Nitriles , Ovary , Pyrethrins , RNA Interference , Animals , Pyrethrins/pharmacology , Female , Nitriles/pharmacology , Ovary/metabolism , Ovary/drug effects , Glucose Transporter Type 4/metabolism , Glucose Transporter Type 4/genetics , Locusta migratoria/genetics , Locusta migratoria/drug effects , Locusta migratoria/metabolism , Insecticides/pharmacology , Insect Proteins/metabolism , Insect Proteins/genetics , Vitellogenins/metabolism , Vitellogenins/genetics , Energy Metabolism/drug effects , Fat Body/metabolism , Fat Body/drug effects , Juvenile Hormones/metabolism , Juvenile Hormones/pharmacology , Oocytes/metabolism , Oocytes/drug effects , Triglycerides/metabolism
3.
Pestic Biochem Physiol ; 202: 105934, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38879326

ABSTRACT

Syntaxin5 (Syx5) belongs to SNAREs family, which play important roles in fusion of vesicles to target membranes. Most of what we know about functions of Syx5 originates from studies in fungal or vertebrate cells, how Syx5 operates during the development of insects is poorly understood. In this study, we investigated the role of LmSyx5 in the gut development of the hemimetabolous insect Locusta migratoria. LmSyx5 was expressed in many tissues, with higher levels in the gut. Knockdown of LmSyx5 by RNA interference (RNAi) considerably suppressed feeding in both nymphs and adults. The dsLmSyx5-injected locusts lost body weight and finally died at a mortality of 100%. Furthermore, hematoxylin-eosin staining indicated that the midgut is deformed in dsLmSyx5-treated nymphs and the brush border in midgut epithelial cells is severely damaged, suggesting that LmSyx5 is involved in morphogenesis of the midgut. TEM further showed that the endoplasmic reticulum of midgut cells have a bloated appearance. Taken together, these results suggest that LmSyx5 is essential for midgut epithelial homeostsis that affects growth and development of L. migratoria. Thus, Syx5 is a promising RNAi target for controlling L. migratoria, and even other pests.


Subject(s)
Feeding Behavior , Insect Proteins , Intestinal Mucosa , Locusta migratoria , Qa-SNARE Proteins , Locusta migratoria/genetics , Locusta migratoria/growth & development , Locusta migratoria/metabolism , Qa-SNARE Proteins/genetics , Qa-SNARE Proteins/metabolism , Intestinal Mucosa/growth & development , Insect Proteins/genetics , Insect Proteins/metabolism , Feeding Behavior/physiology , Gene Knockdown Techniques , Sequence Homology, Amino Acid , Tissue Distribution , Body Weight/genetics , Gene Expression Regulation, Developmental
4.
Cell ; 187(15): 3973-3991.e24, 2024 Jul 25.
Article in English | MEDLINE | ID: mdl-38897195

ABSTRACT

The representation of odors in the locust antennal lobe with its >2,000 glomeruli has long remained a perplexing puzzle. We employed the CRISPR-Cas9 system to generate transgenic locusts expressing the genetically encoded calcium indicator GCaMP in olfactory sensory neurons. Using two-photon functional imaging, we mapped the spatial activation patterns representing a wide range of ecologically relevant odors across all six developmental stages. Our findings reveal a functionally ring-shaped organization of the antennal lobe composed of specific glomerular clusters. This configuration establishes an odor-specific chemotopic representation by encoding different chemical classes and ecologically distinct odors in the form of glomerular rings. The ring-shaped glomerular arrangement, which we confirm by selective targeting of OR70a-expressing sensory neurons, occurs throughout development, and the odor-coding pattern within the glomerular population is consistent across developmental stages. Mechanistically, this unconventional spatial olfactory code reflects the locust-specific and multiplexed glomerular innervation pattern of the antennal lobe.


Subject(s)
Arthropod Antennae , Odorants , Olfactory Receptor Neurons , Animals , Olfactory Receptor Neurons/metabolism , Arthropod Antennae/physiology , Smell/physiology , Grasshoppers/physiology , Animals, Genetically Modified , CRISPR-Cas Systems/genetics , Olfactory Pathways/physiology , Receptors, Odorant/metabolism , Receptors, Odorant/genetics , Locusta migratoria/physiology , Calcium/metabolism
5.
mSystems ; 9(7): e0060024, 2024 Jul 23.
Article in English | MEDLINE | ID: mdl-38888356

ABSTRACT

Locusta migratoria is an important phytophagous pest, and its gut microbial communities play an important role in cellulose degradation. In this study, the gut microbial and cellulose digestibility dynamics of Locusta migratoria were jointly analyzed using high-throughput sequencing and anthrone colorimetry. The results showed that the gut microbial diversity and cellulose digestibility across life stages were dynamically changing. The species richness of gut bacteria was significantly higher in eggs than in larvae and imago, the species richness and cellulose digestibility of gut bacteria were significantly higher in early larvae (first and second instars) than in late larvae (third to fifth instars), and the diversity of gut bacteria and cellulose digestibility were significantly higher in imago than in late larvae. There is a correlation between the dynamics of gut bacterial communities and cellulose digestibility. Enterobacter, Lactococcus, and Pseudomonas are the most abundant genera throughout all life stages. Six strains of highly efficient cellulolytic bacteria were screened, which were dominant gut bacteria. Carboxymethyl cellulase activity (CMCA) and filter paper activity (FPA) experiments revealed that Pseudomonas had the highest cellulase enzyme activity. This study provides a new way for the screening of cellulolytic bacteria and lays the foundation for developing insects with significant biomass into cellulose-degrading bioreactors. IMPORTANCE: Cellulose is the most abundant and cheapest renewable resource in nature, but its degradation is difficult, so finding efficient cellulose degradation methods is an urgent challenge. Locusta migratoria is a large group of agricultural pests, and the large number of microorganisms that inhabit their intestinal tracts play an important role in cellulose degradation. We analyzed the dynamics of Locusta migratoria gut microbial communities and cellulose digestibility using a combination of high-throughput sequencing technology and anthrone colorimetry. The results revealed that the gut microbial diversity and cellulose digestibility were dynamically changed at different life stages. In addition, we explored the intestinal bacterial community of Locusta migratoria across life stages and its correlation with cellulose digestibility. The dominant bacterial genera at different life stages of Locusta migratoria were uncovered and their carboxymethyl cellulase activity (CMCA) and filter paper activity (FPA) were determined. This study provides a new avenue for screening cellulolytic bacteria and lays the foundation for developing insects with significant biomass into cellulose-degrading bioreactors.


Subject(s)
Bacteria , Cellulose , Gastrointestinal Microbiome , Locusta migratoria , Animals , Cellulose/metabolism , Gastrointestinal Microbiome/physiology , Locusta migratoria/microbiology , Bacteria/metabolism , Bacteria/genetics , Bacteria/isolation & purification , Larva/microbiology , High-Throughput Nucleotide Sequencing , Digestion/physiology
6.
Pestic Biochem Physiol ; 201: 105860, 2024 May.
Article in English | MEDLINE | ID: mdl-38685214

ABSTRACT

The Osiris gene family is believed to play important roles in insect biology. Previous studies mainly focused on the roles of Osiris in Drorophila, how Osiris operates during the development of other species remains largely unknown. Here, we investigated the role of LmOsi17 in development of the hemimetabolous insect Locusta migratoria. LmOsi17 was highly expressed in the intestinal tract of nymphs. Knockdown of LmOsi17 by RNA interference (RNAi) in nymphs resulted in growth defects. The dsLmOsi17-injected nymphs did not increase in body weight or size and eventually died. Immunohistochemical analysis showed that LmOsi17 was localized to the epithelial cells of the foregut and the gastric caecum. Histological observation and hematoxylin-eosin staining indicate that the foregut and gastric caecum are deformed in dsLmOsi17 treated nymphs, suggesting that LmOsi17 is involved in morphogenesis of foregut and gastric caecum. In addition, we observed a significant reduction in the thickness of the new cuticle in dsLmOsi17-injected nymphs compared to control nymphs. Taken together, these results suggest that LmOsi17 contributes to morphogenesis of intestinal tract that affects growth and development of nymphs in locusts.


Subject(s)
Insect Proteins , Locusta migratoria , Morphogenesis , Nymph , Animals , Locusta migratoria/growth & development , Locusta migratoria/genetics , Insect Proteins/metabolism , Insect Proteins/genetics , Nymph/growth & development , RNA Interference , Intestines
7.
Pestic Biochem Physiol ; 200: 105845, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38582577

ABSTRACT

7-dehydrocholesterol (7-DHC) is a key intermediate product used for biosynthesis of molting hormone. This is achieved through a series of hydroxylation reactions catalyzed by the Halloween family of cytochrome P450s. Neverland is an enzyme catalyzes the first reaction of the ecdysteroidogenic pathway, which converts dietary cholesterol into 7-DHC. However, research on the physiological function of neverland in orthopteran insects is lacking. In this study, neverland from Locusta migratoria (LmNvd) was cloned and analyzed. LmNvd was mainly expressed in the prothoracic gland and highly expressed on days 6 and 7 of fifth instar nymphs. RNAi-mediated silencing of LmNvd resulted in serious molting delays and abnormal phenotypes, which could be rescued by 7-DHC and 20-hydroxyecdysone supplementation. Hematoxylin and eosin staining results showed that RNAi-mediated silencing of LmNvd disturbed the molting process by both promoting the synthesis of new cuticle and suppressing the degradation of the old cuticle. Quantitative real-time PCR results suggested that the mRNA expression of E75 early gene and chitinase 5 gene decreased and that of chitin synthase 1 gene was markedly upregulated after knockdown of LmNvd. Our results suggest that LmNvd participates in the biosynthesis process of molting hormone, which is involved in regulating chitin synthesis and degradation in molting cycles.


Subject(s)
Locusta migratoria , Molting , Animals , Molting/genetics , Ecdysone/metabolism , Locusta migratoria/genetics , Locusta migratoria/metabolism , RNA Interference , Gene Expression Regulation, Developmental , Insect Proteins/genetics , Insect Proteins/metabolism
8.
J Econ Entomol ; 117(3): 1130-1140, 2024 Jun 10.
Article in English | MEDLINE | ID: mdl-38579138

ABSTRACT

Metarhizium anisopliae is an important class of entomopathogenic fungi used for the biocontrol of insects, but its virulence is affected by insect immunity. We identified a novel FK506 binding protein gene that was differentially expressed between control and Metarhizium-treated Locusta migratoria manilensis. We hypothesized that this protein played an important role in Metarhizium infection of L. migratoria and could provide new insights for developing highly efficient entomopathogenic fungi. We, therefore, cloned the specific gene and obtained its purified protein. The gene was then named FKBP52, and its dsRNA (dsFKBP52) was synthesized and used for gene interference. Bioassay results showed that the mortality of L. migratoria treated with dsFKBP52 + Metarhizium was significantly lower than that of other treatments. Furthermore, immune-related genes (MyD88, Dorsal, Cactus, and Defensin) in L. migratoria treated with dsFKBP52 + Metarhizium showed significant upregulation compared to that treated with Metarhizium only. However, the activities of peroxidase (POD), superoxide dismutase (SOD), and calcineurin (CaN) showed fluctuations. These results suggest that the FKBP52 gene may play a crucial role in the innate immunity of L. migratoria. The effect of its silencing indicated that this immunity-related protein might be a potential target for insect biocontrol.


Subject(s)
Insect Proteins , Locusta migratoria , Metarhizium , Tacrolimus Binding Proteins , Animals , Locusta migratoria/genetics , Locusta migratoria/immunology , Metarhizium/physiology , Metarhizium/genetics , Tacrolimus Binding Proteins/genetics , Insect Proteins/genetics , Insect Proteins/metabolism , Pest Control, Biological , Immunity, Innate , Amino Acid Sequence
9.
Sci China Life Sci ; 67(6): 1242-1254, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38478296

ABSTRACT

RNA N6-methyladenosine (m6A), as the most abundant modification of messenger RNA, can modulate insect behaviors, but its specific roles in aggregation behaviors remain unexplored. Here, we conducted a comprehensive molecular and physiological characterization of the individual components of the methyltransferase and demethylase in the migratory locust Locusta migratoria. Our results demonstrated that METTL3, METTL14 and ALKBH5 were dominantly expressed in the brain and exhibited remarkable responses to crowding or isolation. The individual knockdown of methyltransferases (i.e., METTL3 and METTL14) promoted locust movement and conspecific attraction, whereas ALKBH5 knockdown induced a behavioral shift toward the solitary phase. Furthermore, global transcriptome profiles revealed that m6A modification could regulate the orchestration of gene expression to fine tune the behavioral aggregation of locusts. In summary, our in vivo characterization of the m6A functions in migratory locusts clearly demonstrated the crucial roles of the m6A pathway in effectively modulating aggregation behaviors.


Subject(s)
Adenosine , Locusta migratoria , Methyltransferases , Animals , Adenosine/metabolism , Adenosine/analogs & derivatives , Locusta migratoria/genetics , Locusta migratoria/physiology , Locusta migratoria/metabolism , Methyltransferases/metabolism , Methyltransferases/genetics , Behavior, Animal/physiology , Brain/metabolism , Brain/physiology , Transcriptome , AlkB Homolog 5, RNA Demethylase/metabolism , AlkB Homolog 5, RNA Demethylase/genetics , Gene Expression Regulation , Insect Proteins/genetics , Insect Proteins/metabolism , Grasshoppers/genetics , Grasshoppers/physiology , Grasshoppers/metabolism
10.
Int J Biol Macromol ; 266(Pt 2): 131137, 2024 May.
Article in English | MEDLINE | ID: mdl-38537854

ABSTRACT

The coat protein II (COPII) complex consists of five primary soluble proteins, namely the small GTP-binding protein Sar1, the inner coat Sec23/Sec24 heterodimers, and the outer coat Sec13/Sec31 heterotetramers. COPII is essential for cellular protein and lipid trafficking through cargo sorting and vesicle formation at the endoplasmic reticulum. However, the roles of COPII assembly genes remain unknown in insects. In present study, we identified five COPII assembly genes (LmSar1, LmSec23, LmSec24, LmSec13 and LmSec31) in Locusta migratoria. RT-qPCR results revealed that these genes showed different expression patterns in multiple tissues and developmental days of fifth-instar nymphs. Injection of double-stranded RNA against each LmCOPII gene induced a high RNAi efficiency, and considerably suppressed feeding, and increased mortality to 100 %. Results from the micro-sectioning and hematoxylin-eosin staining of midguts showed that the brush border was severely damaged and the number of columnar cells was significantly reduced in dsLmCOPII-injected nymphs, as compared with the control. The dilated endoplasmic reticulum phenotype of columnar cells was observed by transmission electron microscopy. RT-qPCR results further indicated that silencing any of the five genes responsible for COPII complex assembly repressed the expression of genes involved in insulin/mTOR-associated nutritional pathway. Therefore, COPII assembly genes could be promising RNAi targets for insect pest management by disrupting gut and cuticle development.


Subject(s)
Digestive System , Gastrointestinal Tract , Locusta migratoria , Monomeric GTP-Binding Proteins , Pest Control, Biological , RNA Interference , Vesicular Transport Proteins , Animals , Digestive System/growth & development , Endoplasmic Reticulum , Gene Knockdown Techniques , Homeostasis , Locusta migratoria/genetics , Locusta migratoria/growth & development , Monomeric GTP-Binding Proteins/genetics , Monomeric GTP-Binding Proteins/metabolism , Pest Control, Biological/methods , Protein Multimerization , Vesicular Transport Proteins/genetics , Vesicular Transport Proteins/metabolism , Male , Female , Gastrointestinal Tract/growth & development
11.
Insect Mol Biol ; 33(4): 338-349, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38411321

ABSTRACT

Myosin light chain kinase (MLCK) is a dedicated kinase of myosin regulatory light chain (RLC), playing an essential role in the regulation of muscle contraction and cell motility. Much of the knowledge about MLCK comes from the study of vertebrate MLCK, and little is known about insect MLCK. Here, we identified the single MLCK gene in the locust Locusta migratoria, which spans over 1400 kb, includes 62 exons and accounts for at least five transcripts. We found that the five distinct transcripts of the locust MLCK gene are expressed in a tissue-specific manner, including three muscle-specific isoforms and two generic isoforms. To characterise the kinase activity of locust MLCK, we recombinantly expressed LmMLCK-G, the smallest locust MLCK isoform, in insect Sf9 cells. We demonstrated that LmMLCK-G is a Ca2+/calmodulin-dependent kinase that specifically phosphorylates serine 50 of locust muscle myosin RLC (LmRLC). Additionally, we found that almost all LmRLC molecules in the flight muscle and the hindleg muscles of adult locusts are phosphorylated.


Subject(s)
Insect Proteins , Locusta migratoria , Myosin-Light-Chain Kinase , Animals , Locusta migratoria/genetics , Locusta migratoria/enzymology , Myosin-Light-Chain Kinase/genetics , Myosin-Light-Chain Kinase/metabolism , Insect Proteins/genetics , Insect Proteins/metabolism , Amino Acid Sequence , Sf9 Cells , Phylogeny , Muscles/metabolism
12.
J Chem Ecol ; 50(1-2): 11-17, 2024 Feb.
Article in English | MEDLINE | ID: mdl-37851278

ABSTRACT

Swarming locusts cause huge plagues across the world threatening food production. Before swarms form, locust populations exhibit a dramatic phase change from a solitary to a gregarious phase. The cause of this phase change is a complicated interplay of conspecific and environmental cues and is, especially for one of the major pests, the migratory locust Locusta migratoria, still not well understood. Here we study the behavior of both solitary and gregarious L. migratoria towards the headspace odors of conspecifics. As we do not find a general attraction of gregarious animals to the headspace of gregarious conspecifics, swarm formation does not seem to be mainly governed by olfactory aggregation cues. When testing for potential mating signals, we observe that the headspace of virgin gregarious females is highly attractive only towards virgin males of the same phase, while mated gregarious males and solitary males, regardless of their mating state, do not become attracted. Interestingly, this phase-specific attraction goes along with the finding, that mating behavior in experiments with inter-phasic pairings is extremely rare. Our data suggest that odor emissions in L. migratoria play a significant role in a mating context.


Subject(s)
Locusta migratoria , Animals , Female , Male , Smell , Behavior, Animal , Odorants , Reproduction
13.
Pest Manag Sci ; 80(2): 442-451, 2024 Feb.
Article in English | MEDLINE | ID: mdl-37717207

ABSTRACT

BACKGROUND: The oriental migratory locust is a major crop pest across eastern and south-eastern Asia. Metarhizium anisopliae is an effective biopesticide agent used for locust control, but its performance is temperature dependent, and thus can be more variable than chemical pesticide performance. To predict biopesticide performance for the control of the oriental migratory locust, we adapted a previous temperature-dependent model and validated it using field trial data. To increase the applicability of this model, we explored the use of readily available temperature variables, as well as our own satellite-derived canopy temperature variable, to run the model. RESULTS: Compared to collected in situ temperature data, our canopy temperature variable most accurately represented the ambient temperature experienced by the locust. When the biopesticide performance model was run using this canopy temperature and compared to field trials results, the model predictions were more accurate than when the model was run with the other temperature variables. The accuracy of the biopesticide performance model was impacted by vegetation cover, but across the areas most associated with locust oviposition, growth and migration, the model predictions were satisfactorily accurate to guide biopesticide operational use. CONCLUSION: We validated the model in six provinces in China, representing the three agro-ecological zones largely representative of the oriental migratory locust problem areas in China, Thailand, Cambodia and Vietnam. Whilst further validation work is needed, this model could be used in these countries to assess, at a fine spatial scale, the appropriateness of M. anisopliae for controlling the oriental migratory locust. © 2023 The Authors. Pest Management Science published by John Wiley & Sons Ltd on behalf of Society of Chemical Industry.


Subject(s)
Grasshoppers , Locusta migratoria , Animals , Biological Control Agents , Pest Control , China , Vietnam
14.
Insect Sci ; 31(2): 435-447, 2024 Apr.
Article in English | MEDLINE | ID: mdl-37489033

ABSTRACT

Locust (Locusta migratoria) has a single striated muscle myosin heavy chain (Mhc) gene, which contains 5 clusters of alternative exclusive exons and 1 differently included penultimate exon. The alternative exons of Mhc gene encode 4 distinct regions in the myosin motor domain, that is, the N-terminal SH3-like domain, one lip of the nucleotide-binding pocket, the relay, and the converter. Here, we investigated the role of the alternative regions on the motor function of locust muscle myosin. Using Sf9-baculovirus protein expression system, we expressed and purified 5 isoforms of the locust muscle myosin heavy meromyosin (HMM), including the major isoform in the thorax dorsal longitudinal flight muscle (FL1) and 4 isoforms expressed in the abdominal intersegmental muscle (AB1 to AB4). Among these 5 HMMs, FL1-HMM displayed the highest level of actin-activated adenosine triphosphatase (ATPase) activity (hereafter referred as ATPase activity). To identify the alternative region(s) responsible for the elevated ATPase activity of FL1-HMM, we produced a number of chimeras of FL1-HMM and AB4-HMM. Substitution with the relay of AB4-HMM (encoded by exon-14c) substantially decreased the ATPase activity of FL1-HMM, and conversely, the relay of FL1-HMM (encoded by exon-14a) enhanced the ATPase activity of AB4-HMM. Mutagenesis showed that the exon-14a-encoded residues Gly474 and Asn509 are responsible for the elevated ATPase activity of FL1-HMM. Those results indicate that the alternative relay encoded by exon-14a/c play a key role in regulating the ATPase activity of FL1-HMM and AB4-HMM.


Subject(s)
Locusta migratoria , Muscle, Striated , Animals , Locusta migratoria/genetics , Locusta migratoria/metabolism , Amino Acid Sequence , Myosins/chemistry , Myosins/genetics , Myosins/metabolism , Protein Isoforms/genetics , Myosin Heavy Chains/chemistry , Myosin Heavy Chains/genetics , Myosin Heavy Chains/metabolism , Adenosine Triphosphatases/genetics , Adenosine Triphosphatases/metabolism , Muscle, Striated/metabolism
15.
Food Funct ; 15(2): 493-502, 2024 Jan 22.
Article in English | MEDLINE | ID: mdl-38099620

ABSTRACT

Edible insects have been proposed as an environmentally and economically sustainable source of protein, and are considered as an alternative food, especially to meat. The migratory locust, Locusta migratoria, is an edible species authorised by the European Union as a novel food. In addition to their nutritional value, edible insects are also sources of bioactive compounds. This study used an in silico approach to simulate the gastrointestinal digestion of selected L. migratoria proteins and posteriorly identify peptides capable of selectively inhibiting the N-subunit of the somatic angiotensin-I converting enzyme (sACE). The application of the molecular docking protocol enabled the identification of three peptides, namely TCDSL, IDCSR and EAEEGQF, which were predicted to act as potential selective inhibitors of the sACE N-domain and, therefore, possess bioactivity against cardiac and pulmonary fibrosis.


Subject(s)
Locusta migratoria , Animals , Locusta migratoria/chemistry , Molecular Docking Simulation , Peptides/pharmacology , Peptides/metabolism , Proteins , Food
16.
ACS Nano ; 17(24): 25311-25321, 2023 Dec 26.
Article in English | MEDLINE | ID: mdl-38064446

ABSTRACT

Natural materials, such as locust mandibles and squid beaks, define significant mechanical gradients that have been attributed to the chemical gradients of their specialized structural proteins (SPs). However, the mechanism by which SPs form chemical gradients in these materials remains unknown. In this study, a highly abundant histidine-rich structural protein (LmMHSP) was identified in the mandible of a migratory locust (Locusta migratoria). LmMHSP was proven by both in vivo and in vitro evidence to act as a core building block of the mandible with a variety of synergistic functions including chitin binding, matrix formation via liquid-liquid phase separation, chemical cross-linking, and metal coordination. Furthermore, we found that the SP gradient in the locust mandible stems from the chitin-binding activity of LmMHSP and different microstructures of chitin scaffolds in different regions. These findings advance our understanding of the formation mechanisms of natural biomaterials and have implications for the fabrication of biomimetic materials.


Subject(s)
Biomimetic Materials , Locusta migratoria , Animals , Insect Proteins/chemistry , Insect Proteins/metabolism , Chitin/chemistry , Locusta migratoria/metabolism
17.
Pestic Biochem Physiol ; 196: 105620, 2023 Nov.
Article in English | MEDLINE | ID: mdl-37945256

ABSTRACT

Cytochrome P450 monooxygenases (P450s) are a superfamily of multifunctional heme-containing proteins and could function as odorant-degrading enzymes (ODEs) in insect olfactory systems. In our previous study, we identified a P450 gene from the antennal transcriptome of Locusta migratoria, LmCYP6MU1, which could be induced by a variety of volatiles. However, the regulatory mechanisms of this gene in response to volatiles remain unknown. In current study, we investigated the tissues and development stages expression patterns of LmCYP6MU1 and determined its olfactory function in the recognition of the main host plant volatiles which induced LmCYP6MU1 expression. The results showed that LmCYP6MU1 was antenna-rich and highly expressed throughout the antennal developmental stages of locusts. LmCYP6MU1 played important roles in the recognition of trans-2-hexen-1-al and nonanal. Insect CncC regulates the expression of P450 genes. We tested whether LmCncC regulates LmCYP6MU1 expression. It was found that LmCncC knockdown in the antennae resulted in the downregulation of LmCYP6MU1 and repressed the volatiles-mediated induction of LmCYP6MU1. LmCncC knockdown reduced the electroantennogram (EAG) and behavioral responses of locusts to volatiles. These results suggested that LmCncC could regulate the basal and volatiles-mediated inducible expression of LmCYP6MU1 responsible for the recognition of trans-2-hexen-1-al and nonanal. These findings provide an original basis for understanding the regulation mechanisms of LmCncC on LmCYP6MU1 expression and help us better understand the LmCncC-mediated olfactory plasticity.


Subject(s)
Locusta migratoria , Animals , Locusta migratoria/genetics , Locusta migratoria/metabolism , Transcription Factors/genetics , Transcription Factors/metabolism , Transcriptome , Gene Expression Regulation , Insect Proteins/genetics , Insect Proteins/metabolism , Arthropod Antennae/metabolism
18.
Pestic Biochem Physiol ; 196: 105627, 2023 Nov.
Article in English | MEDLINE | ID: mdl-37945261

ABSTRACT

BACKGROUND: The cap 'n' collar (Cnc) belongs to the Basic Leucine Zipper (bZIP) transcription factor super family. Cap 'n' collar isoform C (CncC) is highly conserved in the animal kingdom. CncC contributes to the regulation of growth, development, and aging and takes part in the maintenance of homeostasis and the defense against endogenous and environmental stress. Insect CncC participates in the regulation of various kinds of stress-responsive genes and is involved in the development of insecticide resistance. RESULTS: In this study, one full-length CncC sequence of Locusta migratoria was identified and characterized. Upon RNAi silencing of LmCncC, insecticide bioassays showed that LmCncC played an essential role in deltamethrin and imidacloprid susceptibility. To fully investigate the downstream genes regulated by LmCncC and further identify the LmCncC-regulated genes involved in deltamethrin and imidacloprid susceptibility, a comparative transcriptome was constructed. Thirty-five up-regulated genes and 73 down-regulated genes were screened from dsLmCncC-knockdown individuals. We selected 22 LmCncC-regulated genes and verified their gene expression levels using RT-qPCR. Finally, six LmCYP450 genes belonging to the CYP6 family were selected as candidate detoxification genes, and LmCYP6FD1 and LmCYP6FE1 were further validated as detoxification genes of insecticides via RNAi, insecticide bioassays, and metabolite identification. CONCLUSIONS: Our data suggest that the locust CncC gene is associated with deltamethrin and imidacloprid susceptibility via the regulation of LmCYP6FD1 and LmCYP6FE1, respectively.


Subject(s)
Insecticides , Locusta migratoria , Humans , Animals , Insecticides/pharmacology , Insecticides/metabolism , Transcription Factors/genetics , Transcription Factors/metabolism , Locusta migratoria/genetics , Locusta migratoria/metabolism , Cytochrome P-450 Enzyme System/genetics , Cytochrome P-450 Enzyme System/metabolism , Protein Isoforms/genetics , Protein Isoforms/metabolism
19.
Arch Insect Biochem Physiol ; 114(4): e22055, 2023 Dec.
Article in English | MEDLINE | ID: mdl-37786392

ABSTRACT

Paranosema locustae is an entomopathogenic microsporidia with promising potential for controlling agricultural pests, including Locusta migratoria manilensis. However, it has the disadvantage of having a slow insecticidal rate, and how P. locustae infection impacts the host immune response is currently unknown. The present study investigated the effect of P. locustae on the natural immune response of L. migratoria and the activities of enzymes that protect against oxidative stress. Infection with P. locustae increased the hemocytes and nodulation number of L. migratoria at the initial stage of infection. The hemocyte-mediated modulation of immune response was also affected by a decrease in the number of hemocytes 12 days postinfection. Superoxide dismutase activity in locusts increased in the early stages of infection but decreased in the later stages, whereas the activities of peroxidase (POD) and catalase (CAT) showed opposite trends may be due to their different mechanisms of action. Furthermore, the transcription levels of mRNA of antimicrobial peptide-related genes and phenoloxidase activity in hemolymph in L. migratoria were suppressed within 15 days of P. locustae infection. Overall, our data suggest that P. locustae create a conducive environment for its own proliferation in the host by disrupting the immune defense against it. These findings provide useful information for the potential application of P. locustae as a biocontrol agent.


Subject(s)
Locusta migratoria , Microsporidia , Animals , Locusta migratoria/genetics , Microsporidia/physiology , Peroxidase
20.
Molecules ; 28(19)2023 Oct 06.
Article in English | MEDLINE | ID: mdl-37836800

ABSTRACT

(1) Background: Few studies have been carried out to appraise abamectin toxicity toward Locusta migratoria nymphs. (2) Methods: This study aimed to evaluate the cytotoxic effect of abamectin as an insecticide through examining the changes and damage caused by this drug, in both neurosecretory cells and midgut, using L. migratoria nymphs as a model of the cytotoxic effect. Histopathological change in the brain was examined in both normal and abamectin-treated fifth-instar nymphs. Neurosecretory cells (NSCs) were also examined where there were loosely disintegrated cells or vacuolated cytoplasm. (3) Results: The results showed distinct histological changes in the gastrointestinal tract of L. migratoria nymphs treated with abamectin, with significant cellular damage and disorganization, i.e., characteristic symptoms of cell necrosis, a destroyed epithelium, enlarged cells, and reduced nuclei. The observed biochemical changes included an elevation in all measured oxidative stress parameters compared to untreated controls. The malondialdehyde activities (MDAs) of the treated nymphs had a five- to six-fold increase, with a ten-fold increase in superoxide dismutase (SOD), nine-fold increase in glutathione-S-transferase (GST), and four-fold increase in nitric oxide (NO). (4) Conclusions: To further investigate the theoretical method of action, a molecular docking simulation was performed, examining the possibility that abamectin is an inhibitor of the fatty acid-binding protein Lm-FABP (2FLJ) and that it binds with two successive electrostatic hydrogen bonds.


Subject(s)
Insecticides , Locusta migratoria , Animals , Molecular Docking Simulation , Locusta migratoria/metabolism , Insecticides/toxicity , Insecticides/metabolism , Oxidative Stress , Insect Proteins/chemistry
SELECTION OF CITATIONS
SEARCH DETAIL