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1.
PLoS One ; 19(5): e0302941, 2024.
Article En | MEDLINE | ID: mdl-38709777

Insecticidal Bacillus thuringiensis Berliner (Bt) toxins produced by transgenic cotton (Gossypium hirsutum L.) plants have become an essential component of cotton pest management. Bt toxins are the primary management tool in transgenic cotton for lepidopteran pests, the most important of which is the bollworm (Helicoverpa zea Boddie) (Lepidoptera: Noctuidae) in the United States (U.S.). However, bollworm larvae that survive after consuming Bt toxins may experience sublethal effects, which could alter interactions with other organisms, such as natural enemies. Experiments were conducted to evaluate how sublethal effects of a commercial Bt product (Dipel) incorporated into artificial diet and from Bt cotton flowers impact predation from the convergent lady beetle (Hippodamia convergens Guérin-Méneville) (Coleoptera: Coccinellidae), common in cotton fields of the mid-southern U.S. Sublethal effects were detected through reduced weight and slower development in bollworm larvae which fed on Dipel incorporated into artificial diet, Bollgard II, and Bollgard 3 cotton flowers. Sublethal effects from proteins incorporated into artificial diet were found to significantly alter predation from third instar lady beetle larvae. Predation of bollworm larvae also increased significantly after feeding for three days on a diet incorporated with Bt proteins. These results suggest that the changes in larval weight and development induced by Bt can be used to help predict consumption of bollworm larvae by the convergent lady beetle. These findings are essential to understanding the potential level of biological control in Bt cotton where lepidopteran larvae experience sublethal effects.


Bacillus thuringiensis , Coleoptera , Flowers , Gossypium , Larva , Plants, Genetically Modified , Predatory Behavior , Animals , Coleoptera/drug effects , Coleoptera/physiology , Gossypium/parasitology , Gossypium/genetics , Predatory Behavior/drug effects , Larva/drug effects , Pest Control, Biological , Moths/drug effects , Moths/physiology , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Bacillus thuringiensis Toxins
2.
Int J Biol Macromol ; 267(Pt 1): 131459, 2024 May.
Article En | MEDLINE | ID: mdl-38593893

Insect resistance evolution poses a significant threat to the advantages of biopesticides and transgenic crops utilizing insecticidal Cry-toxins from Bacillus thuringiensis (Bt). However, there is limited research on the relationship between transcriptional regulation of specific toxin receptors in lepidopteran insects and their resistance to Bt toxins. Here, we report the positive regulatory role of the SfGATAe transcription factor on the expression of the ABCC2 gene in Spodoptera frugiperda. DNA regions in the SfABCC2 promoter that are vital for regulation by SfGATAe, utilizing DAP-seq technology and promoter deletion mapping. Through yeast one-hybrid assays, DNA pull-down experiments, and site-directed mutagenesis, we confirmed that the transcription factor SfGATAe regulates the core control site PBS2 in the ABCC2 target gene. Tissue-specific expression analysis has revealed that SfGATAe is involved in the regulation and expression of midgut cells in the fall armyworm. Silencing SfGATAe in fall armyworm larvae resulted in reduced expression of SfABCC2 and decreased sensitivity to Cry1Ac toxin. Overall, this study elucidated the regulatory mechanism of the transcription factor SfGATAe on the expression of the toxin receptor gene SfABCC2 and this transcriptional control mechanism impacts the resistance of the fall armyworm to Bt toxins.


Bacillus thuringiensis Toxins , Hemolysin Proteins , Insecticide Resistance , Multidrug Resistance-Associated Protein 2 , Multidrug Resistance-Associated Proteins , Promoter Regions, Genetic , Spodoptera , Transcription Factors , Animals , Spodoptera/genetics , Spodoptera/drug effects , Multidrug Resistance-Associated Proteins/genetics , Multidrug Resistance-Associated Proteins/metabolism , Transcription Factors/genetics , Transcription Factors/metabolism , Insecticide Resistance/genetics , Hemolysin Proteins/genetics , Promoter Regions, Genetic/genetics , Bacillus thuringiensis/genetics , Bacterial Proteins/genetics , Insect Proteins/genetics , Insect Proteins/metabolism , Endotoxins/genetics , Gene Expression Regulation/drug effects , Larva/drug effects , Larva/genetics
3.
Methods Mol Biol ; 2788: 209-226, 2024.
Article En | MEDLINE | ID: mdl-38656516

Coffea arabica L. is a crucial crop globally, but its genetic homogeneity leads to its susceptibility to diseases and pests like the coffee berry borer (CBB). Chemical and cultural control methods are difficult due to the majority of the CBB life cycle taking place inside coffee beans. One potential solution is the use of the gene cyt1Aa from Bacillus thuringiensis as a biological insecticide. To validate candidate genes against CBB, a simple, rapid, and efficient transient expression system is necessary. This study uses cell suspensions as a platform for expressing the cyt1Aa gene in the coffee genome (C. arabica L. var. Catuaí) to control CBB. The Agrobacterium tumefaciens strain GV3101::pMP90 containing the bar and cyt1Aa genes are used to genetically transform embryogenic cell suspensions. PCR amplification of the cyt1Aa gene is observed 2, 5, and 7 weeks after infection. This chapter describes a protocol that can be used for the development of resistant varieties against biotic and abiotic stresses and CRISPR/Cas9-mediated genome editing.


Agrobacterium tumefaciens , Coffea , Coffea/genetics , Agrobacterium tumefaciens/genetics , CRISPR-Cas Systems , Plants, Genetically Modified/genetics , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Bacillus thuringiensis/genetics , Endotoxins/genetics , Bacillus thuringiensis Toxins , Gene Editing/methods , Hemolysin Proteins/genetics , Gene Expression Regulation, Plant , Transformation, Genetic , Coffee/genetics
4.
BMC Genomics ; 25(1): 355, 2024 Apr 09.
Article En | MEDLINE | ID: mdl-38594617

BACKGROUND: Genetically modified (GM) crop plants with transgenic expression of Bacillus thuringiensis (Bt) pesticidal proteins are used to manage feeding damage by pest insects. The durability of this technology is threatened by the selection for resistance in pest populations. The molecular mechanism(s) involved in insect physiological response or evolution of resistance to Bt is not fully understood. RESULTS: To investigate the response of a susceptible target insect to Bt, the soybean pod borer, Leguminivora glycinivorella (Lepidoptera: Tortricidae), was exposed to soybean, Glycine max, expressing Cry1Ac pesticidal protein or the non-transgenic parental cultivar. Assessment of larval changes in gene expression was facilitated by a third-generation sequenced and scaffolded chromosome-level assembly of the L. glycinivorella genome (657.4 Mb; 27 autosomes + Z chromosome), and subsequent structural annotation of 18,197 RefSeq gene models encoding 23,735 putative mRNA transcripts. Exposure of L. glycinivorella larvae to transgenic Cry1Ac G. max resulted in prediction of significant differential gene expression for 204 gene models (64 up- and 140 down-regulated) and differential splicing among isoforms for 10 genes compared to unexposed cohorts. Differentially expressed genes (DEGs) included putative peritrophic membrane constituents, orthologs of Bt receptor-encoding genes previously linked or associated with Bt resistance, and those involved in stress responses. Putative functional Gene Ontology (GO) annotations assigned to DEGs were significantly enriched for 36 categories at GO level 2, respectively. Most significantly enriched cellular component (CC), biological process (BP), and molecular function (MF) categories corresponded to vacuolar and microbody, transport and metabolic processes, and binding and reductase activities. The DEGs in enriched GO categories were biased for those that were down-regulated (≥ 0.783), with only MF categories GTPase and iron binding activities were bias for up-regulation genes. CONCLUSIONS: This study provides insights into pathways and processes involved larval response to Bt intoxication, which may inform future unbiased investigations into mechanisms of resistance that show no evidence of alteration in midgut receptors.


Bacillus thuringiensis , Moths , Pesticides , Animals , Larva/genetics , Larva/metabolism , Glycine max/genetics , Endotoxins/genetics , Bacillus thuringiensis Toxins , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Pest Control, Biological/methods , Moths/metabolism , Bacillus thuringiensis/genetics , Bacillus thuringiensis/chemistry , Bacillus thuringiensis/metabolism , Chromosomes/metabolism , Hemolysin Proteins/genetics , Plants, Genetically Modified/genetics , Plants, Genetically Modified/metabolism , Insecticide Resistance/genetics
5.
Toxins (Basel) ; 16(4)2024 Apr 16.
Article En | MEDLINE | ID: mdl-38668618

The fall armyworm (FAW), Spodoptera frugiperda (J.E. Smith), is one of the most important insect pests affecting corn crops worldwide. Although planting transgenic corn expressing Bacillus thuringiensis (Bt) toxins has been approved as being effective against FAW, its populations' resistance to Bt crops has emerged in different locations around the world. Therefore, it is important to understand the interaction between different Bt proteins, thereby delaying the development of resistance. In this study, we performed diet-overlay bioassays to evaluate the toxicity of Cry1Ab, Cry1Ac, Cry1B, Cry1Ca, Cry1F, Cry2Aa, Cry2Ab, Vip3Aa11, Vip3Aa19, and Vip3Aa20, as well as the interaction between Cry1Ab-, Cry1F-, Cry2Ab-, and Vip3Aa-class proteins against FAW. According to our results, the LC50 values of Bt proteins varied from 12.62 ng/cm2 to >9000 ng/cm2 (protein/diet), among which the Vip3Aa class had the best insecticidal effect. The combination of Cry1Ab and Vip3Aa11 exhibited additive effects at a 5:1 ratio. Cry1F and Vip3Aa11 combinations exhibited additive effects at 1:1, 1:2, and 5:1 ratios. The combination of Cry1F and Vip3Aa19 showed an antagonistic effect when the ratio was 1:1 and an additive effect when the ratio was 1:2, 2:1, 1:5, and 5:1. Additionally, the combinations of Cry1F and Vip3Aa20 showed antagonistic effects at 1:2 and 5:1 ratios and additive effects at 1:1 and 2:1 ratios. In addition to the above combinations, which had additive or antagonistic effects, other combinations exhibited synergistic effects, with variations in synergistic factors (SFs). These results can be applied to the establishment of new pyramided transgenic crops with suitable candidates, providing a basis for FAW control and resistance management strategies.


Bacillus thuringiensis Toxins , Bacterial Proteins , Endotoxins , Hemolysin Proteins , Spodoptera , Animals , Spodoptera/drug effects , Bacterial Proteins/toxicity , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Hemolysin Proteins/toxicity , Hemolysin Proteins/genetics , Bacillus thuringiensis Toxins/toxicity , Endotoxins/toxicity , Insecticides/toxicity , Larva/drug effects , Plants, Genetically Modified/genetics , Pest Control, Biological , Bacillus thuringiensis/genetics
6.
Biomolecules ; 14(4)2024 Apr 01.
Article En | MEDLINE | ID: mdl-38672442

By 2013, it had been shown that the genes cadherin-like receptor (Cad) and ATP-binding cassette transporter subfamily C2 (ABCC2) were responsible for insect resistance to several Cry1A toxins, acting as susceptibility-determining receptors, and many review articles have been published. Therefore, this review focuses on information about receptors and receptor-binding sites that have been revealed since 2014. Since 2014, studies have revealed that the receptors involved in determining susceptibility vary depending on the Cry toxin subfamily, and that binding affinity between Cry toxins and receptors plays a crucial role. Consequently, models have demonstrated that ABCC2, ABCC3, and Cad interact with Cry1Aa; ABCC2 and Cad with Cry1Ab and Cry1Ac; ABCC2 and ABCC3 with Cry1Fa; ABCB1 with Cry1Ba, Cry1Ia, Cry9Da, and Cry3Aa; and ABCA2 with Cry2Aa and Cry2Ba, primarily in the silkworm, Bombyx mori. Furthermore, since 2017, it has been suggested that the binding sites of BmCad and BmABCC2 on Cry1Aa toxin overlap in the loop region of domain II, indicating that Cry toxins use various molecules as receptors due to their ability to bind promiscuously in this region. Additionally, since 2017, several ABC transporters have been identified as low-efficiency receptors that poorly induce cell swelling in heterologously expressing cultured cells. In 2024, research suggested that multiple molecules from the ABC transporter subfamily, including ABCC1, ABCC2, ABCC3, ABCC4, ABCC10, and ABCC11, act as low-efficiency receptors for a single Cry toxin in the midgut of silkworm larvae. This observation led to the hypothesis that the presence of such low-efficiency receptors contributes to the evolution of Cry toxins towards the generation of highly functional receptors that determine the susceptibility of individual insects. Moreover, this evolutionary process is considered to offer valuable insights for the engineering of Cry toxins to overcome resistance and develop countermeasures against resistance.


Multidrug Resistance-Associated Protein 2 , Animals , Binding Sites , Hemolysin Proteins/metabolism , Hemolysin Proteins/chemistry , Humans , Bacillus thuringiensis Toxins/metabolism , Multidrug Resistance-Associated Proteins/metabolism , Multidrug Resistance-Associated Proteins/genetics , Multidrug Resistance-Associated Proteins/chemistry , Endotoxins/metabolism , Endotoxins/chemistry , Bombyx/metabolism , Bombyx/genetics , Protein Binding , Insect Proteins/metabolism , Insect Proteins/genetics , Insect Proteins/chemistry
7.
Pestic Biochem Physiol ; 201: 105881, 2024 May.
Article En | MEDLINE | ID: mdl-38685247

Insect pests cause immense agronomic losses worldwide. One of the most destructive of major crops is the Fall Armyworm (Spodoptera frugiperda, FAW). The ability to migrate long distances, a prodigious appetite, and a demonstrated ability to develop resistance to insecticides, make it a difficult target to control. Insecticidal proteins, for example those produced by the bacterium Bacillus thuringiensis, are among the safest and most effective insect control agents. Genetically modified (GM) crops expressing such proteins are a key part of a successful integrated pest management (IPM) program for FAW. However, due to the development of populations resistant to commercialized GM products, new GM traits are desperately needed. Herein, we describe a further characterization of the newly engineered trait protein eCry1Gb.1Ig. Similar to other well characterized Cry proteins, eCry1Gb.1Ig is shown to bind FAW midgut cells and induce cell-death. Binding competition assays using trait proteins from other FAW-active events show a lack of competition when binding FAW brush border membrane vesicles (BBMVs) and when utilizing non-pore-forming versions as competitors in in vivo bioassays. Similarly, insect cell lines expressing SfABCC2 and SfABCC3 (well characterized receptors of existing commercial Cry proteins) are insensitive to eCry1Gb.1Ig. These findings are consistent with results from our previous work showing that eCry1Gb.1Ig is effective in controlling insects with resistance to existing traits. This underscores the value of eCry1Gb.1Ig as a new GM trait protein with a unique site-of-action and its potential positive impact to global food production.


Bacterial Proteins , Spodoptera , Animals , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Hemolysin Proteins/pharmacology , Hemolysin Proteins/metabolism , Hemolysin Proteins/genetics , Endotoxins/pharmacology , Endotoxins/metabolism , Bacillus thuringiensis Toxins/pharmacology , Bacillus thuringiensis/genetics , Bacillus thuringiensis/metabolism , Insecticides/pharmacology , Plants, Genetically Modified , Pest Control, Biological/methods
8.
Genes (Basel) ; 15(4)2024 Apr 19.
Article En | MEDLINE | ID: mdl-38674449

The expression of Bacillus thuringiensis (Bt) toxins in transgenic cotton confers resistance to insect pests. However, it has been demonstrated that its effectiveness varies among cotton cultivars and different tissues. In this study, we evaluated the expression of Bt protein in 28 cotton cultivars and selected 7 cultivars that differed in Bt protein expression for transcriptome analysis. Based on their Bt protein expression levels, the selected cultivars were categorized into three groups: H (high Bt protein expression), M (moderate expression), and L (low expression). In total, 342, 318, and 965 differentially expressed genes were detected in the H vs. L, M vs. L, and H vs. M comparison groups, respectively. And three modules significantly associated with Bt protein expression were identified by weighted gene co-expression network analysis. Three hub genes were selected to verify their relationships with Bt protein expression using virus-induced gene silencing (VIGS). Silencing GhM_D11G1176, encoding an MYC transcription factor, was confirmed to significantly decrease the expression of Bt protein. The present findings contribute to an improved understanding of the mechanisms that influence Bt protein expression in transgenic cotton.


Bacillus thuringiensis , Gene Expression Regulation, Plant , Gossypium , Plants, Genetically Modified , Gossypium/genetics , Gossypium/parasitology , Gossypium/metabolism , Bacillus thuringiensis/genetics , Plants, Genetically Modified/genetics , Bacillus thuringiensis Toxins/genetics , Bacterial Proteins/genetics , Transcriptome , Gene Expression Profiling/methods , Gene Regulatory Networks , Hemolysin Proteins/genetics , Plant Proteins/genetics , Endotoxins/genetics
9.
J Agric Food Chem ; 72(14): 8180-8188, 2024 Apr 10.
Article En | MEDLINE | ID: mdl-38556749

Juvenile hormone binding protein (JHBP) is a key regulator of JH signaling, and crosstalk between JH and 20-hydroxyecdysone (20E) can activate and fine-tune the mitogen-activated protein kinase cascade, leading to resistance to insecticidal proteins from Bacillis thuringiensis (Bt). However, the involvement of JHBP in the Bt Cry1Ac resistance of Plutella xylostella remains unclear. Here, we cloned a full-length cDNA encoding JHBP, and quantitative real-time PCR (qPCR) analysis showed that the expression of the PxJHBP gene in the midgut of the Cry1Ac-susceptible strain was significantly higher than that of the Cry1Ac-resistant strain. Furthermore, CRISPR/Cas9-mediated knockout of the PxJHBP gene significantly increased Cry1Ac susceptibility, resulting in a significantly shorter lifespan and reduced fertility. These results demonstrate that PxJHBP plays a critical role in the resistance to Cry1Ac protoxin and in the regulation of physiological metabolic processes associated with reproduction in adult females, providing valuable insights to improve management strategies of P. xylostella.


Bacillus thuringiensis , Moths , Animals , Female , Moths/genetics , Moths/metabolism , Larva/metabolism , Bacillus thuringiensis/genetics , Bacillus thuringiensis/metabolism , Longevity , CRISPR-Cas Systems , Endotoxins/genetics , Endotoxins/metabolism , Bacillus thuringiensis Toxins/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Hemolysin Proteins/genetics , Hemolysin Proteins/metabolism , Insecticide Resistance/genetics
10.
Biomolecules ; 14(4)2024 Mar 26.
Article En | MEDLINE | ID: mdl-38672415

The ATP-binding cassette (ABC) transporters are a superfamily of membrane proteins. These active transporters are involved in the export of different substances such as xenobiotics. ABC transporters from subfamily C (ABCC) have also been described as functional receptors for different insecticidal proteins from Bacillus thuringiensis (Bt) in several lepidopteran species. Numerous studies have characterized the relationship between the ABCC2 transporter and Bt Cry1 proteins. Although other ABCC transporters sharing structural and functional similarities have been described, little is known of their role in the mode of action of Bt proteins. For Heliothis virescens, only the ABCC2 transporter and its interaction with Cry1A proteins have been studied to date. Here, we have searched for paralogs to the ABCC2 gene in H. virescens, and identified two new ABC transporter genes: HvABCC3 and HvABCC4. Furthermore, we have characterized their gene expression in the midgut and their protein topology, and compared them with that of ABCC2. Finally, we discuss their possible interaction with Bt proteins by performing protein docking analysis.


Bacillus thuringiensis Toxins , Bacterial Proteins , Endotoxins , Hemolysin Proteins , Multidrug Resistance-Associated Protein 2 , Multidrug Resistance-Associated Proteins , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/chemistry , Animals , Bacillus thuringiensis Toxins/metabolism , Endotoxins/metabolism , Endotoxins/genetics , Endotoxins/chemistry , Hemolysin Proteins/metabolism , Hemolysin Proteins/genetics , Hemolysin Proteins/chemistry , Multidrug Resistance-Associated Proteins/metabolism , Multidrug Resistance-Associated Proteins/genetics , Multidrug Resistance-Associated Proteins/chemistry , Insect Proteins/genetics , Insect Proteins/metabolism , Insect Proteins/chemistry , Moths/metabolism , Moths/genetics , Bacillus thuringiensis/metabolism , Bacillus thuringiensis/genetics , Molecular Docking Simulation , ATP-Binding Cassette Transporters/metabolism , ATP-Binding Cassette Transporters/genetics , ATP-Binding Cassette Transporters/chemistry
11.
Biomolecules ; 14(3)2024 Feb 23.
Article En | MEDLINE | ID: mdl-38540692

Recent studies have suggested that ABC transporters are the main receptors of Cry toxins. However, the receptors of many Cry toxins have not been identified. In this study, we used a heterologous cell expression system to identify Bombyx mori ABC transporter subfamily C members (BmABCCs) that function as receptors for five Cry toxins active in Lepidopteran insects: Cry1Aa, Cry1Ca, Cry1Da, Cry8Ca, and Cry9Aa. All five Cry toxins can use multiple ABCCs as low-efficiency receptors, which induce cytotoxicity only at high concentrations. Surface plasmon resonance analysis revealed that the KD values between the toxins and BmABCC1 and BmABCC4 were 10-5 to 10-9 M, suggesting binding affinities 8- to 10,000-fold lower than those between Cry1Aa and BmABCC2, which are susceptibility-determining receptors for Cry1Aa. Bioassays in BmABCC-knockout silkworm strains showed that these low-efficiency receptors are not involved in sensitivity to Cry toxins. The findings suggest that each family of Cry toxins uses multiple BmABCCs as low-efficiency receptors in the insect midgut based on the promiscuous binding of their receptor-binding regions. Each Cry toxin seems to have evolved to utilize one or several ABC transporters as susceptibility-determining receptors.


ATP-Binding Cassette Transporters , Bacillus thuringiensis Toxins , Bombyx , Hemolysin Proteins , Animals , ATP-Binding Cassette Transporters/genetics , ATP-Binding Cassette Transporters/metabolism , Bombyx/metabolism , Multidrug Resistance-Associated Protein 2 , Endotoxins , Insecta/metabolism , Bacterial Proteins/metabolism
13.
Appl Environ Microbiol ; 90(4): e0177823, 2024 Apr 17.
Article En | MEDLINE | ID: mdl-38470126

The Bacillus cereus sensu stricto (s.s.) species comprises strains of biovar Thuringiensis (Bt) known for their bioinsecticidal activity, as well as strains with foodborne pathogenic potential. Bt strains are identified (i) based on the production of insecticidal crystal proteins, also known as Bt toxins, or (ii) based on the presence of cry, cyt, and vip genes, which encode Bt toxins. Multiple bioinformatics tools have been developed for the detection of crystal protein-encoding genes based on whole-genome sequencing (WGS) data. However, the performance of these tools is yet to be evaluated using phenotypic data. Thus, the goal of this study was to assess the performance of four bioinformatics tools for the detection of crystal protein-encoding genes. The accuracy of sequence-based identification of Bt was determined in reference to phenotypic microscope-based screening for the production of crystal proteins. A total of 58 diverse B. cereus sensu lato strains isolated from clinical, food, environmental, and commercial biopesticide products underwent WGS. Isolates were examined for crystal protein production using phase contrast microscopy. Crystal protein-encoding genes were detected using BtToxin_Digger, BTyper3, IDOPS (identification of pesticidal sequences), and Cry_processor. Out of 58 isolates, the phenotypic production of crystal proteins was confirmed for 18 isolates. Specificity and sensitivity of Bt identification based on sequences were 0.85 and 0.94 for BtToxin_Digger, 0.97 and 0.89 for BTyper3, 0.95 and 0.94 for IDOPS, and 0.88 and 1.00 for Cry_processor, respectively. Cry_processor predicted crystal protein production with the highest specificity, and BtToxin_Digger and IDOPS predicted crystal protein production with the highest sensitivity. Three out of four tested bioinformatics tools performed well overall, with IDOPS achieving high sensitivity and specificity (>0.90).IMPORTANCEStrains of Bacillus cereus sensu stricto (s.s.) biovar Thuringiensis (Bt) are used as organic biopesticides. Bt is differentiated from the foodborne pathogen Bacillus cereus s.s. by the production of insecticidal crystal proteins. Thus, reliable genomic identification of biovar Thuringiensis is necessary to ensure food safety and facilitate risk assessment. This study assessed the accuracy of whole-genome sequencing (WGS)-based identification of Bt compared to phenotypic microscopy-based screening for crystal protein production. Multiple bioinformatics tools were compared to assess their performance in predicting crystal protein production. Among them, identification of pesticidal sequences performed best overall at WGS-based Bt identification.


Bacillus thuringiensis , Insecticides , Bacillus thuringiensis/genetics , Bacillus thuringiensis/metabolism , Bacillus cereus/genetics , Bacillus thuringiensis Toxins , Genome, Bacterial , Genomics , Insecticides/metabolism , Bacterial Proteins/chemistry
14.
Lett Appl Microbiol ; 77(3)2024 Mar 01.
Article En | MEDLINE | ID: mdl-38429983

The insecticidal crystal proteins produced by Bacillus thuringiensis during sporulation are active ingredients against lepidopteran, dipteran, and coleopteran insects. Several methods have been reported for their quantification, such as crystal counting, ELISA, and SDS-PAGE/densitometry. One of the major tasks in industrial processes is the analysis of raw material dependency and costs. Thus, the crystal protein quantification method is expected to be compatible with the presence of complex and inexpensive culture medium components. This work presents a revalidated elution-based method for the quantification of insecticidal crystal proteins produced by the native strain B. thuringiensis RT. To quantify proteins, a calibration curve was generated by varying the amount of BSA loaded into SDS-PAGE gels. First, SDS-PAGE was performed for quality control of the bioinsecticide. Then, the stained protein band was excised from 10% polyacrylamide gel and the protein-associated dye was eluted with an alcoholic solution of SDS (3% SDS in 50% isopropanol) during 45 min at 95°C. This protocol was a sensitive procedure to quantify proteins in the range of 2.0-10.0 µg. As proof of concept, proteins of samples obtained from a complex fermented broth were separated by SDS-PAGE. Then, Cry1 and Cry2 proteins were properly quantified.


Bacillus thuringiensis , Insecticides , Insecticides/analysis , Endotoxins/analysis , Endotoxins/chemistry , Waste Products/analysis , Bacillus thuringiensis Toxins/analysis , Bacterial Proteins/chemistry , Hemolysin Proteins , Electrophoresis, Polyacrylamide Gel
15.
Pestic Biochem Physiol ; 199: 105777, 2024 Feb.
Article En | MEDLINE | ID: mdl-38458684

The fall armyworm (Spodoptera frugiperda) is a major global pest causing severe damage to various crops, especially corn. Transgenic corn producing the Cry1F pesticidal protein from the bacterium Bacillus thuringiensis (Cry1F corn) showed effectiveness in controlling this pest until S. frugiperda populations at locations in North and South America evolved practical resistance. The mechanism for practical resistance involved disruptive mutations in an ATP binding cassette transporter subfamily C2 gene (SfABCC2), which serves as a functional Cry1F receptor in the midgut cells of susceptible S. frugiperda. The SfABCC2 protein contains two transmembrane domains (TMD1 and TMD2), each with a cytosolic nucleotide (ATP) binding domain (NBD1 and NBD2, respectively). Previous reports have demonstrated that disruptive mutations in TMD2 were linked with resistance to Cry1F, yet whether the complete SfABCC2 structure is needed for receptor functionality or if a single TMD-NBD protein can serve as functional Cry1F receptor remains unknown. In the present study, we separately expressed TMD1 and TMD2 with their corresponding NBDs in cultured insect cells and tested their Cry1F receptor functionality. Our results show that the complete SfABCC2 structure is required for Cry1F receptor functionality. Moreover, binding competition assays revealed that Cry1F specifically bound to SfABCC2, whereas neither SfTMD1-NBD1 nor SfTMD2-NBD2 exhibited any significant binding. These results provide insights into the molecular mechanism of Cry1F recognition by SfABCC2 in S. frugiperda, which could facilitate the development of more effective insecticidal proteins.


Bacillus thuringiensis , Endotoxins , Animals , Spodoptera , Endotoxins/genetics , Insecticide Resistance/genetics , Bacillus thuringiensis Toxins/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Bacillus thuringiensis/metabolism , Zea mays , Hemolysin Proteins/genetics , Plants, Genetically Modified/genetics
16.
Int J Biol Macromol ; 266(Pt 1): 130815, 2024 May.
Article En | MEDLINE | ID: mdl-38537847

Bacillus thuringiensis (Bt) toxins have provided exceptional control of agricultural insect pests, however, over reliance on the proteins would potentially contribute to the development of field tolerance. Developing new sustainable insect pest control methods that target the mechanisms underlying Bt tolerance can potentially support the Bt control paradigm while also providing insights into basic insect physiology. The MAPK p38 pathway is strongly associated with Bt tolerance in Chilo suppressalis, a major pest of rice. To gain insights into how this pathway impacts tolerance, high-throughput screening of C. suppressalis larval midguts initially identified eight novel target genes. Increased larval sensitivity to the transgenic cry1Ca rice strain T1C-19 was observed following RNA interference-mediated knockdown of four of the genes, Cscnc, Csgcp, Cszfp26 and CsZMYM1. Similar enhanced sensitivity to the TT51 (expressing Cry1Ab/1Ac) and T2A-1 (expressing Cry2Aa) transgenic rice lines occurred when Cszfp26 and CsZMYM1 were knocked down. All four target genes are downstream of the MAPK p38 pathway but do not participate in negative feedback loop of the pathway. These results implicate Cscnc, Csgcp, Cszfp and CsZMYM1 in the C. suppressalis transgenic cry1Ca rice tolerance mechanism regulated by MAPK p38. These findings further enhance our understanding of the MAPK p38-dependent molecular mechanisms underlying Bt tolerance in C. suppressalis and open new avenues of tolerance management to develop.


Gene Knockdown Techniques , Larva , Oryza , Plants, Genetically Modified , p38 Mitogen-Activated Protein Kinases , Oryza/genetics , Oryza/parasitology , Plants, Genetically Modified/genetics , Animals , Larva/genetics , p38 Mitogen-Activated Protein Kinases/metabolism , p38 Mitogen-Activated Protein Kinases/genetics , Bacillus thuringiensis/genetics , Bacillus thuringiensis Toxins , Endotoxins/genetics , Moths/genetics , Hemolysin Proteins/genetics
17.
Int J Biol Macromol ; 263(Pt 1): 130271, 2024 Apr.
Article En | MEDLINE | ID: mdl-38373570

Overuse of insecticides has accelerated the evolution of insecticide resistance and created serious environmental concerns worldwide, thus incentivizing development of alternative methods. Bacillus thuringiensis (Bt) is an insecticidal bacterium that has been developed as a biopesticide to successfully control multiple species of pests. It operates by secreting several insect toxins such as Cry1Ac. However, metabolic resistance based on ATP-binding cassette (ABC) transporters may play a crucial role in the development of metabolic resistance to Bt. Here, we characterized an ABCG gene from the agricultural pest Plutella xylostella (PxABCG3) and found that it was highly expressed in a Cry1Ac-resistant strain, up-regulated after Cry1Ac protoxin treatment. Binding miR-8510a-3p to the coding sequence (CDS) of PxABCG3 was then confirmed by a luciferase reporter assay and RNA immunoprecipitation. miR-8510a-3p agomir delivery markedly reduced PxABCG3 expression in vivo and consequently decreased the tolerance of P. xylostella to Cry1Ac, while reduction of miR-8510a-3p significantly increased PxABCG3 expression, accompanied by an increased tolerance to Cry1Ac. Our results suggest that miR-8510a-3p could potentially be used as a novel molecular target against P. xylostella or other lepidopterans, providing novel insights into developing effective and environmentally friendly pesticides.


Bacillus thuringiensis , Insecticides , MicroRNAs , Moths , Animals , Moths/metabolism , Larva/genetics , Endotoxins/genetics , Endotoxins/metabolism , Bacillus thuringiensis Toxins/metabolism , Bacillus thuringiensis/chemistry , Insecticides/pharmacology , Insecticides/metabolism , ATP-Binding Cassette Transporters/genetics , ATP-Binding Cassette Transporters/metabolism , MicroRNAs/genetics , MicroRNAs/metabolism , Hemolysin Proteins/genetics , Hemolysin Proteins/pharmacology , Hemolysin Proteins/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/metabolism
18.
Toxins (Basel) ; 16(2)2024 02 07.
Article En | MEDLINE | ID: mdl-38393170

Paralipsa gularis (Zeller) is a storage pest; however, in recent years it has evolved into a considerable maize pest during the late growth stage in the border region between China and other Southeast Asian countries. Bt transgenic insect-resistant maize is an effective measure in controlling a wide range of lepidopteran pests, but there is a lack of research on the toxic effects of storage pests. We tested the toxicity of Bt-Cry1Ab, Vip3Aa, and their complex proteins against P. gularis via bioassay and investigated the efficiency of Bt-(Cry1Ab+Vip3Aa) maize in controlling P. gularis during the late growth stage of maize in the period 2022-2023. The bioassay results show that the susceptibilities of P. gularis to the two Bt proteins and their complex proteins were significantly different. The LC50 values of DBNCry1Ab ("DBN9936" event), DBNVip3Aa ("DBN9501" event), DBN Cry1Ab+Vip3Aa ("DBN3601T" event), and Syngenta Cry1Ab+Vip3Aa ("Bt11" event × "MIR162" event) were 0.038 µg/g, 0.114 µg/g, 0.110 µg/g, and 0.147 µg/g, and the GIC50 values were 0.014 µg/g, 0.073 µg/g, 0.027 µg/g, and 0.026 µg/g, respectively. Determination of the expression content of the insecticidal protein in different tissues of Bt-(Cry1Ab+Vip3Aa) maize shows that the total Bt protein content in different tissues was in the following order: stalk > bract > cob > kernel. However, the bioassay results show that the mortalities of P. gularis feeding on Bt-(Cry1Ab+Vip3Aa) maize in different tissues at different growth stages were all above 93.00%. The field trial indicates that the occurrence density of larvae and plant damage rate for conventional maize were 422.10 individuals/100 plants and 94.40%, respectively, whereas no larvae were found on Bt-(Cry1Ab+Vip3Aa) maize. In summary, this study implies that Bt-(Cry1Ab+Vip3Aa) maize has a high potential for control of P. gularis, providing a new technical measure for the management of the pest.


Bacillus thuringiensis , Lepidoptera , Humans , Animals , Zea mays/genetics , Zea mays/metabolism , Bacillus thuringiensis/genetics , Bacillus thuringiensis/metabolism , Plants, Genetically Modified/genetics , Plants, Genetically Modified/metabolism , Endotoxins/metabolism , Bacillus thuringiensis Toxins/metabolism , Bacterial Proteins/toxicity , Bacterial Proteins/genetics , Hemolysin Proteins/toxicity , Hemolysin Proteins/genetics , Pest Control, Biological/methods , Lepidoptera/metabolism , Larva
19.
Toxins (Basel) ; 16(2)2024 02 06.
Article En | MEDLINE | ID: mdl-38393166

Bacillus thuringiensis Vip3 toxins form a tetrameric structure crucial for their insecticidal activity. Each Vip3Aa monomer comprises five domains. Interaction of the first four α-helices in domain I with the target cellular membrane was proposed to be a key step before pore formation. In this study, four N-terminal α-helix-deleted truncations of Vip3Aa were produced and, it was found that they lost both liposome permeability and insecticidal activity against Spodoptera litura. To further probe the role of domain I in membrane permeation, the full-length domain I and the fragments of N-terminal α-helix-truncated domain I were fused to green fluorescent protein (GFP), respectively. Only the fusion carrying the full-length domain I exhibited permeability against artificial liposomes. In addition, seven Vip3Aa-Cry1Ac fusions were also constructed by combination of α-helices from Vip3Aa domains I and II with the domains II and III of Cry1Ac. Five of the seven combinations were determined to show membrane permeability in artificial liposomes. However, none of the Vip3Aa-Cry1Ac combinations exhibited insecticidal activity due to the significant reduction in proteolytic stability. These results indicated that the N-terminal helix α1 in the Vip3Aa domain I is essential for both insecticidal activity and liposome permeability and that domain I of Vip3Aa preserved a high liposome permeability independently from domains II-V.


Bacillus thuringiensis , Insecticides , Animals , Bacillus thuringiensis/metabolism , Liposomes/metabolism , Protein Conformation, alpha-Helical , Insecticides/chemistry , Bacillus thuringiensis Toxins/metabolism , Bacterial Proteins/metabolism , Larva/metabolism , Endotoxins/metabolism , Hemolysin Proteins/genetics , Hemolysin Proteins/metabolism
20.
Pest Manag Sci ; 80(6): 2610-2618, 2024 Jun.
Article En | MEDLINE | ID: mdl-38252693

BACKGROUND: Insect-resistance genetically modified (GM) plants derived from Bacillus thuringiensis (Bt) have been cultivated to control pests, but continuous cultivation of Bt-transgenic plants at large-scale regions leads to the resistance evolution of target insects to transgenic plants. RNA interference (RNAi) technology is considered an effective strategy in delaying the resistance evolution of target insects. RESULTS: We here developed a single transgenic oilseed rape (Brassica napus) line with hairpin RNA of the chitin-synthase 1 gene (CHS1) of Plutella xylostella (hpPxCHS1) and a pyramid transgenic B. napus line harboring hpPxCHS1 and Bt gene (Cry1Ac). Escherichia coli HT115 delivered hpPxCHS1 showed negative effects on the growth of P. xylostella. The single transgenic and pyramid transgenic B. napus significantly reduced the larval weight and length of P. xylostella and increased its lethality rate, with down-regulation expression of the PxCHS1 gene in insects. CONCLUSION: Compared to Bt-transgenic B. napus, pyramid-transgenic B. napus shorted the mortality time of P. xylostella, indicating that RNAi technology synergistic with Bt protein improves the effectiveness of controlling target insects. Our results proved that RNAi can delay the resistance evolution of target insects to Bt-transgenic plants. © 2024 Society of Chemical Industry.


Bacterial Proteins , Brassica napus , Larva , Moths , Plants, Genetically Modified , RNA Interference , Animals , Brassica napus/genetics , Plants, Genetically Modified/genetics , Moths/genetics , Moths/growth & development , Larva/growth & development , Larva/genetics , Bacterial Proteins/genetics , Hemolysin Proteins/genetics , Bacillus thuringiensis Toxins , Bacillus thuringiensis/genetics , Endotoxins/genetics , Pest Control, Biological , Insect Proteins/genetics , Insect Proteins/metabolism
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