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Archetypal organization of the amphioxus Hox gene cluster.

Organization into gene clusters is an essential and diagnostic feature of Hox genes. Insect and nematode genomes possess single Hox gene clusters (split in Drosophila); in mammals, there are 38 Hox genes in four clusters on different chromosomes. A collinear relationship between chromosomal position, activation time and anterior expression limit of vertebrate Hox genes suggests that clustering may be important for precise spatiotemporal gene regulation and hence embryonic patterning. Hox genes have a wide phylogenetic distribution within the metazoa, and are implicated in the control of regionalization along the anteroposterior body axis. It has been suggested that changes in Hox gene number and genomic organization played a role in metazoan body-plan evolution, but identifying significant changes is difficult because Hox gene organization is known from only very few and widely divergent taxa (principally insects, nematodes and vertebrates). Here we analyse the complexity and organization of Hox genes in a cephalochordate, amphioxus, the taxon thought to be the sister group of the vertebrates. We find that the amphioxus genome has only one Hox gene cluster. It has similar genomic organization to the four mammalian Hox clusters, and contains homologues of at least the first ten paralogous groups of vertebrate Hox genes in a collinear array. Remarkably, this organization is compatible with that inferred for a direct ancestor of the vertebrates; we conclude that amphioxus is a living representative of a critical intermediate stage in Hox cluster evolution.

Amino Acid Sequence↗

[Insect-resistant transgenic poplar expressing AaIT gene].

Insect-specific scorpion neurotoxin AaIT gene inserted into a binary vector was transferred into a hybrid poplar clone N-106(P. deltoides x P. simonii) growing in the Southern of China. We obtained sixty-two regenerated plants by Agrobacterium tumefaciens transferring system. PCR and PCR-Southern analysis showed that AaIT gene was incorporated into the genome of some recovered poplar plants. One of the transformed plants named A5 was significantly resistant to feeding by first instar larvae of Lymantria dispar, compared with the untransformed control plant. It caused a decrease in leaf consumption by larvae, a lower larval weight gain and a higher larval motality rate of Lymantria dispar. ELISA analysis proved that AaIT gene was expressed in this transfomed poplar plant.

Animals↗

Evidence that the E4 and FE4 esterase genes responsible for insecticide resistance in the aphid Myzus persicae (Sulzer) are part of a gene family.

The amplification of genes encoding the esterases E4 and FE4 is a widespread mechanism of insecticide resistance in the peach-potato aphid, Myzus persicae (Sulzer). We present evidence that in susceptible aphids the two genes are adjacent to each other in a head-to-tail arrangement with E4 upstream of FE4 and with approx. 19 kb of intervening sequence. There are also at least two other closely related sequences which might come from other members of an esterase gene family, in line with reports of other insect gene families encoding detoxifying enzymes. The close identity between E4 and FE4 genes indicates a recent duplication and divergence. The subsequent amplifications giving multiple copies of either E4 or FE4 must have involved two separate events, each probably occurring once and then being selected by insecticide exposure and spread by migration. The cloning of sequences upstream of the FE4 gene suggest, by comparison with E4, that the two genes are regulated in different ways. FE4 has sequences corresponding to a conventional promoter (TATA box and CAP site) that are not present in E4; on the other hand, FE4 lacks the CpG island present 5' of E4 genes that may control expression through changes in DNA methylation. The differences are likely to have occurred by the duplication event that gave rise to E4 and FE4 leading to different 5' sequences.

Animals↗

Transcriptome analysis of the cowpea weevil bruchid: identification of putative proteinases and alpha-amylases associated with food breakdown.

We describe here the first systematic work to discover insect genes involved in food breakdown using a cDNA library enriched for gut-expressed transcripts from Callosobruchus maculatus. A total of 1056 clones were screened for cDNA insert-containing plasmids, and 503 nonredundant open reading frames were discovered. Twenty-three inferred genes potentially involved in digestive processes in cowpea weevil were identified, including proteinases and amylases. The predicted catalytic sites were identified in the inferred cysteine and aspartic acid proteinases, and in alpha-amylases. Transcriptome analysis of the cowpea bruchid will potentially permit gene discovery in other beetles, an insect order of major economic and ecological importance that is poorly represented in genomic databases.

Amino Acid Sequence↗

A new cell line from the embryonic tissue of Helicoverpa armigera HBN. (Lepidoptera: Noctuidae).

A new cell line from the embryonic tissue of Helicoverpa armigera was established and designated as NIV-HA-197. It was maintained in TNM-FH medium supplemented with 10% fetal bovine serum. The cell line at passage 20 had a heterogeneous population of cells consisting of mainly epithelial-like cells (70%), followed by fibroblast-like (27%), and multinucleated giant (3%) cells. The chromosome number ranged from 45 to 185. The growth curve at passage 40 showed a fivefold increase in cell number with a population-doubling time of approximately 60 h. The cell line was found infected with the microsporidium Nosema heliothids at passage 9. Using the antiprotozoan drug Metrogyl 400 and simultaneous heat treatment, the parasite was removed from the culture. The cell line can be cryopreserved for 30 mo. The species specificity of the new cell line was determined by studying the isoenzyme profile of four enzymes, viz., lactate dehydrogenase, malate dehydrogenase, isocitrate dehydrogenase, and glucose 6-phosphate dehydrogenase, and by heteroduplex analysis. Heteroduplex analysis was used to analyze the mitochondrial 16S ribosomal ribonucleic acid gene sequences along with the host insect gene sequences, and 100% homology was obtained, confirming the conspecificity of the cell line. The cell line was found to be susceptible to the baculoviruses Autographa californica multiple nucleopolyhedrovirus, Spodoptera litura multiple nucleopolyhedrovirus, and H. armigera single nucleopolyhedrovirus (HaSNPV). More than 90% of the cells were infected by HaSNPV on the seventh post infection day (PID), and 28.8 x 10(6) NPV/ml was yielded on the 10th PID. The in vitro-grown HaSNPV caused 100% mortality, when fed to the second instar H. armigera larvae, in 6 d. Cessation of feeding was observed on the second PID.

Animals↗

Virus-derived genes for insect-resistant transgenic plants.

Insect viruses have evolved to counter physiological barriers to infection presented by the host insect. For the Lepidoptera (butterflies and moths), these barriers include (1) the peritrophic membrane (PM) lining the gut, which presents a physical barrier to virus infection of the midgut epithelial cells, (2) the basement membrane (BM) that overlies the gut thereby restricting secondary infection of other tissues, and (3) the immune system of the host insect. Hence, insect viruses provide a resource for genes that disrupt host physiology in a specific manner, and these genes in turn serve as a resource both for the study of physiological processes, and for disruption of these processes for pest management purposes. There are several examples of the application of genes used by an insect virus to overcome the PM barrier for production of insect-resistant transgenic plants. There are other examples of intrahemocoelic effectors, such as BM-degrading proteases that can only be used with an appropriate system for delivery of the agent from the gut into the hemocoel (body cavity) of the insect pest. In this chapter, we describe (1) baculovirus- and entomopoxvirus-derived genes that alter the physiology of the host insect, (2) use of these and homologous genes for production of insect-resistant transgenic plants, (3) other viral genes that have potential for use in development of insect-resistant transgenic plants, and (4) the use of plant lectins for delivery of intrahemocoelic toxins from transgenic plants. Plant expression of polydnavirus-derived genes is described by Gill et al. (this volume, pp. 393-426).

Animals↗

The exon-intron organization of the prohormone convertase PC2 gene from the insect Lucilia cuprina.

Prohormone or proprotein convertases are members of the subtilisin family of serine proteases. They are involved in the activation of precursor molecules by endoproteolytic cleavage at basic amino acid residues. Among the different members of this prohormone convertase family, the prohormone convertase 2 (PC2) is almost exclusively expressed in endocrine and neuroendocrine tissues and plays an important role in the endoproteolytic processing of prohormones. Here we describe the exon-intron organization of the PC2 gene from the insect Lucilia cuprina by characterization of PCR-amplified genomic DNA fragments. The insect PC2 gene contains 12 exons with an estimated size of over 14.5 kb. The exon sizes range from 38 bp to > 448 bp. All identified intron-exon boundaries are consistent with the GT-AG-rule. A comparison of the genomic structures of the thus far known prohormone convertase genes with that of the insect PC2 gene revealed a conservation of the positions of most introns interrupting the exons coding for the amino-terminal and catalytic domains. This conservation is consistent with the suggestion of a common evolutionary origin for the prohormone convertase gene family.

Animals↗

Intron-containing globin genes in the insect Chironomus thummi.

All previously reported chironomid globin genes are intronless, suggesting that the ancestral chironomid globin gene was also intronless. In this study, the coding regions of the closely linked Chironomus thummi globin (Gbs) II beta and IX genes are shown to be interrupted by noncoding DNA bounded by a 5'-GT and a 3'-AG. Both genes have appropriately placed transcription and translation signals. Polymerase chain reactions on genomic DNA with oligonucleotides flanking and within the putative Gb II beta intron generated products the size predicted for a gene with a 64-nucleotide intron, and sequencing of a cloned PCR fragment also revealed the intron. A partial-length Gb II beta cDNA sequence exactly matches that of the Gb II beta coding regions. We conclude that the intron-containing chironomid globin genes are functional. Regions of the Gb II beta and IX genes spanning the introns are more similar (86%) than the exons themselves (72% similarity), possibly due to partial gene correction. Surprisingly, Gb II beta and IX gene homologues in C. tentans are intronless. If the common ancestor of chironomid globin genes was not intronless, introns were lost in at least three C. thummi globin-gene lineages, and more recently by Gb II beta and Gb IX genes in C. tentans. If, as previously believed, the ancestral chironomid globin gene was intronless, the ancestral chironomid globin gene was intronless, then an intron was recently acquired in only one C. thummi globin sublineage. These alternatives are discussed.

Amino Acid Sequence↗

Single-cell transcriptomic landscape of the southern green stink bug (Nezara viridula) midgut.

BACKGROUND: The southern green stink bug (SGSB), Nezara viridula, is a globally distributed hemipteran pest that damages many economically important crops. Its midgut supports digestion, defense, symbiosis, and interactions with orally delivered control agents, yet the cellular composition of this tissue remains poorly characterized. We therefore developed a single-cell transcriptomic atlas of the N. viridula midgut. RESULTS: Single-cell RNA sequencing of two biological replicates yielded a quality-filtered data set of 13,763 cells. Unsupervised clustering identified 12 transcriptionally distinct populations with putative annotations, including a stem cell/enteroblast (SC/EB)-like population, seven enterocyte-related populations, goblet-like cells, enteroendocrine cells, visceral muscle cells, and an extracellular-matrix-associated epithelial population. Enterocyte-related populations accounted for more than 77% of recovered cells. Putative annotations were assigned primarily from marker gene enrichment and homology to markers reported in other insects. Gene Ontology and Kyoto Encyclopedia of Genes and Genomes analyses identified population-associated functional enrichment patterns, and pseudotime analysis suggested transcriptional relationships between the SC/EB-like population and several enterocyte- and secretory-associated populations without establishing developmental lineages. Immune- and defense-associated transcripts were preferentially enriched in the pEC2 population, and genes associated with symbiont recognition, insecticide action, xenobiotic transport, and orally delivered double-stranded RNA showed population-biased expression. Descriptive comparisons with published insect midgut data sets identified shared and data-set-specific patterns among annotated populations. CONCLUSION: This atlas provides the first single-cell transcriptomic resource for a stink bug midgut and establishes a descriptive cellular framework for SGSB midgut biology. The dataset prioritizes candidate genes and cell populations for future spatial validation, functional testing, and studies of hemipteran midgut physiology, symbiosis, immunity, and pest-management-relevant traits. © 2026 Society of Chemical Industry.

Nezara viridula↗

Genomic organization and developmental pattern of expression of the engrailed gene from the brine shrimp Artemia.

We report the isolation and characterization of an engrailed gene in the crustacean Artemia franciscana. The Artemia gene spans a genomic region of 15 kilobases and the coding sequence is interrupted by two introns. It appears to be the only gene of the engrailed family present in the Artemia genome. The predicted engrailed-like protein is 349 amino acids long and contains several domains including the homeodomain, well conserved when compared to other proteins of the engrailed family. Based on sequence comparisons we have detected, in the Artemia engrailed protein, several features which are in common with the Drosophila and Bombyx engrailed proteins. It also has some features specific for invected proteins. Therefore, this gene appears to have diverged from an ancestral gene common to both the engrailed and invected insect genes. Whole-mount in situ hybridization experiments show that the expression of this gene in postembryonic development of Artemia is restricted to the posterior part of at least the thoracic and maxillary segments. The pattern is generated sequentially from a growth zone organized in columns of cells close to the caudal region of the larvae. Cell proliferation in the growth zone follows an interspersed pattern without evidence of early lineage restrictions. The engrailed expression is detected in the growth zone before any segmentation is visible and continues to be expressed in a posterior location in the segments that are morphologically defined. Initially expressed in isolated cells, it spreads into rows broadening to two-three cells as segments mature. The evidence presented here is compatible with the hypothesis that intercellular signaling mechanisms are in part responsible of the early activation of selector genes.

Amino Acid Sequence↗

[Expression of rice dwarf virus outer coat protein gene(S8) in insect cells].

Outer coat protein gene(S8) of RDV was cloned into the transfer vector pVL 1393 to construct a recombinant vector pVL1393-S8. The recombinant vector pVL1393-S8 and the linear baculovirus RP23. LacZ were cotransfected into sf9 cells to produce the recombinant virus RP23-S8. RP23-S8 infected sf9 cells were collected and analysed by SDS-PAGE and Western-blot. The results showed that the S8 gene of RDV was expressed in sf9 cells and the expression level of sf9 cells was higher between 72-96 h after infected.

Animals↗

A novel homeobox cluster expressed in repeated structures of the midgut.

A gene cluster (LOX3-C) containing three duplicated homeobox sequences (Lox3A, Lox3B, and Lox3C) was characterized in the leech Hirudo medicinalis. The leech homeoboxes have a limited homology to those of Antennapedia-class genes, but do not have homologs among currently characterized insect genes. The Lox3 genes belong to a new family, named Xlox, that also includes genes from mouse, rat, frog, and a distantly related leech, Helobdella triserialis. All members of the Xlox family are expressed in specific regions of the embryonic gut, where they seem to affect morphogenesis and cell differentiation. The three homeoboxes of LOX3-C described here are contained within nearly identical direct tandem repeats. The LOX3-C region produces at least two transcripts, one present in both embryos and adults and the other only in early embryos. Early Lox3 expression is restricted to specific regions of the midgut primordium, in 12 segmentally repeated, transverse stripes of fusiform cells found at the positions where the midgut will constrict to form the 11 diverticula of the crop. A role in the development of segmentally iterated structures in an initially homogeneous midgut is proposed for LOX3-C.

Amino Acid Sequence↗

Isolation, cloning and expression of DNA fragments reflecting open reading frames of 1.8 and 4.6 kb RNAs of the I-18 C gene of Chironomus tentans.

This study, based on the genetic engineering approach, concerns the regulation of the insect gene expression, but it has also a strong significance for plant protection, which is associated with the future possibility to control insect development more effectively, especially in those species that are pests of cultivated plants. The I-18 C gene of Chironomus tentans is activated by heat-shock and the steroid hormone--ecdysone. This gene produces different transcripts (at least four) by alternative splicing. Two different open reading frames, i.e. ORFs I and II of the two main transcripts of this gene, i.e. the 1.8 and 4.6 kb RNA, had been isolated, at the DNA level, as the ORFs reflecting DNA fragments, using the polymerase chain reaction, then were cloned into the bluescript vector and finally were cloned into the pET-3a vector to be translated in the T7 RNA polymerase/promoter system of E. coli. As the preliminary outcome of these experiments it was possible to obtain ORF I overexpressed as the polypeptide, whereas ORF II was expressed as the polypeptide that was strongly visible on SDS-polyacrylamide gel. This could facilitate further studies regarding the mechanisms of expression of this gene, including the level of expression of this gene during the C. tentans development.

Amino Acid Sequence↗

Purification of triosephosphate isomerase and isolation of its gene from the mosquito Culex tarsalis.

The enzyme triosephosphate isomerase (TPI) was purified to homogeneity from the mosquito Culex tarsalis. Anti-C. tarsalis TPI antibodies cross-reacted with TPIs from other organisms but bands on western blots were most intense with proteins from closely related Dipterans. Using a degenerate primer corresponding to the amino-terminal sequence of the protein in a polymerase chain reaction (PCR), a cDNA corresponding to the TPI gene (Tpi) was isolated and sequenced. Subsequently, a genomic sequence including 305 bp to the 5'-end of the coding sequence was obtained. Comparison of C. tarsalis Tpi to that of Drosophila melanogaster revealed that although the two genes had little similarity in the intron and 5' flanking sequences, they were highly similar (73% identity) in their coding sequence. The rate of synonymous substitution in insect genes may be slower than that of vertebrates, but the nonsynonymous substitution rate, and hence the rate of TPI evolution, appears to be faster in insects than in vertebrates.

Amino Acid Sequence↗

The Drosophila melanogaster multidrug-resistance protein 1 (MRP1) homolog has a novel gene structure containing two variable internal exons.

Drosophila melanogaster has a gene very similar to human MRP1 that encodes a full ABC-transporter containing three membrane-spanning domains and two nucleotide-binding domains. This 19 exon insect gene, dMRP (FBgn0032456), spans slightly more than 22 kb. The cDNA SD07655 representing this gene was sequenced and found to contain sequences from 12 exons including single copies of two exons having multiple genomic copies. The gene contains two variant copies of exon 4 and seven of exon 8. While a cDNA contains only one version of each variable exon, all forms of these variable exons were detected in adult fly mRNA. These results predict that Drosophila could make 14 different MRP isoforms from a single gene by substituting different variable exons. This is the first report of any organism using differential splicing of alternative, internal exons, to produce such a large array of MRP isoforms having the same size, but with limited and defined internal variations. Defining the functional differences in the dMRP isoforms should provide clues to the structure/function relationships of the amino acids in these MRP domains, both for the insect enzyme and for those of other species.

Amino Acid Sequence↗

Differential gene expression in insects: transcriptional control.

Studies on transcriptional control of gene expression play a pivotal role in many areas of biology. In non-Drosophilid insects, the cuticle, chorion, immune response, silk gland, storage proteins, and vitellogenin are foci for advances in basic research on promoter elements and transcription factors. Insects offer other advantages for gene regulation studies, including the availability of applied problems. In non-Drosophilid insects, the most serious problem for transcriptional control studies is the lack of homologous in vivo expression systems. Once this deficiency is addressed, the full impact of research on transcription control will be realized throughout the field of entomology.

Animals↗

Cloning and expression of an evolutionary conserved single-domain angiotensin converting enzyme from Drosophila melanogaster.

Mammalian somatic angiotensin converting enzyme (EC 3.4.15.1, ACE) consists of two highly homologous (N- and C-) domains encoded by a duplicated gene. We have identified an apparent single-domain (67 kDa) insect angiotensin converting enzyme (AnCE) in embryos of Drosophila melanogaster which converts angiotensin I to angiotensin II (Km, 365 microM), removes Phe-Arg from the C terminus of bradykinin (Km, 22 microM), and is inhibited by ACE inhibitors, captopril (IC50 = 1.1 x 10(-9) M) and trandolaprilat (IC50 = 1.6 x 10(-8) M). We also report the cloning and expression of a Drosophila AnCE cDNA which codes for a single-domain 615-amino acid protein with a predicted 17-amino acid signal peptide and regions with high levels of homology to both the N- and C-domains of mammalian somatic ACE, especially around the active site consensus sequence. Northern analysis identified a single 2.1-kilobase mRNA in Drosophila embryos, and Southern analysis of Drosophila genomic DNA indicates that the insect gene is not duplicated. When expressed in COS-7 cells, the AnCE protein is a secreted enzyme, which converts angiotensin I to angiotensin II and is inhibited by captopril (IC50 = 5.6 x 10(-9) M) and trandolaprilat (IC50 = 2 x 10(-8) M). The evolutionary significance of these results is discussed.

Amino Acid Sequence↗