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Characterization and cloning of a Tenebrio molitor hemolymph protein with sequence similarity to insect odorant-binding proteins.

The yellow mealworm beetle, Tenebrio molitor, produces a number of moderately abundant low molecular weight hemolymph proteins ( approximately 12 kDa) which behave in a similar manner during purification and share antigenic epitopes. The cDNA sequence of the major component (THP12) was determined and the deduced protein sequence was found to be similar to those of insect odorant-binding proteins. Southern blot analysis suggests that at least some of the diversity in this family of proteins is encoded at the gene level. Both northern and western blot analysis indicate that THP12 is present in a variety of developmental stages and both sexes. THP12 was originally classified as an antifreeze protein, but the lack of antifreeze activity in the recombinant protein, as well as the clear separation of the antifreeze activity from THP12 following HPLC purification, has ruled out this function. The abundance of THP12, the similarity of THP12 to insect odorant-binding proteins, and the presence of hydrophobic cavities inside the protein (Rothemund et al., A new class of hexahelical insect proteins revealed as putative carriers of small hydrophobic ligands. Structure, 7 (1999) 1325-1332.) suggest that THP12 may function to carry non-water soluble compounds in the hemolymph. THP12 is also similar, particularly in structurally important regions, to other insect proteins from non-sensory tissues, suggesting the existence of a large family of carrier proteins which may perform diverse functions throughout the insect.

Amino Acid Sequence↗

Functional expression of the Aequorea victoria green fluorescent protein in insect cells using the baculovirus expression system.

A DNA fragment encoding the green fluorescent protein (GFP) was isolated via PCR from a jellyfish Aequorea victoria cDNA, cloned and sequenced. Subsequently, a recombinant baculovirus bearing the coding region of the GFP under the transcriptional control of the Autographa californica nuclear polyhedrosis virus (AcMNPV) polyhedrin gene promoter was constructed and isolated. High-level expression of GFP could be easily monitored in Spodoptera frugiperda (Sf9) insect cells after infection with recombinant baculovirus, due to the intrinsic fluorescence (lambda(max) = 508 nm) of the recombinant protein after excitation with blue light (lambda(max) = 400 nm). The functional recombinant GFP displayed an apparent molecular mass of approximately 43 kDa and the fluorescence emission spectrum of the recombinant protein was virtually identical to that of the native green fluorescent protein.

Animals↗

Bioreactor development for production of viral pesticides or heterologous proteins in insect cell cultures.

The insect cell-baculovirus expression system has significant potential for producing proteins requiring some degree of posttranslational modification. T. ni cells appear to be as good a host as S. frugiperda cells for heterologous protein production as demonstrated by production of beta-galactosidase. Attachment-dependent cells of T. ni can be effectively cultured in a packed-bed reactor using glass beads. When cell in such a reactor were infected, they produced 35% of the total protein as beta-galactosidase. No cell detachment was observed even 70 h postinfection. A model of viral entry has been proposed and tested.

Animals↗

N-Terminal protein modifications in an insect cell-free protein synthesis system and their identification by mass spectrometry.

To evaluate the ability of an insect cell-free protein synthesis system to generate proper N-terminal cotranslational protein modifications such as removal of the initiating Met, N-acetylation, and N-myristoylation, several mutants were constructed using truncated human gelsolin (tGelsolin) as a model protein. Tryptic digests of these mutants were analyzed by MALDI-TOF MS and MALDI-quadrupole-IT-TOF MS. The wild-type tGelsolin, which is an N-myristoylated protein, was found to be N-myristoylated when myristoyl-CoA was added to the in vitro translation reaction mixture. N-myristoylation did not occur on the Gly-2 to Ala mutant, in which the N-myristoylation motif was disrupted, whereas this mutant was found to be N-acetylated after removal of the initiating Met. Analyses of Gly-2 to His and Leu-3 to Asp mutants revealed that the amino acids at positions 2 and 3 strongly affect the susceptibility of the nascent peptide chain to removal of the initiating Met and to N-acetylation, respectively. These results suggest that N-terminal modifications occurring in the insect cell-free protein synthesis system are quite similar to those observed in the mammalian protein synthesis system. Thus, a combination of the cell-free protein synthesis system with MS is an effective strategy to analyze protein modifications.

Acetylation↗

Resolving the DDT target protein in insects as a subunit of the ATP synthase.

1,1-bis-(p-Chlorophenyl)-2,2,2-trichloroethane (DDT) inhibited the ATP hydrolytic activity of the ATP synthase from a DDT-susceptible insect (Apis mellifera) as well as a DDT-tolerant insect (Spodoptera littoralis), and from rat liver and bovine heart in a parallel way to its insecticidal properties and selectivity of action. Inhibition of the ATPase activity of these preparations by DDT was parallel to the poisoning of the source organism with DDT. Furthermore, both the inhibition and poisoning of insects were affected similarly by temperature. Inhibition of the insect enzyme activity by DDT was specific and differed from that by oligomycin or N,N-dicyclohexylcarbodi-imide (DCCD). PAGE analysis of the various preparations of the enzyme showed that the inhibition of the enzyme activity by DDT was associated with the presence of a selective protein band with an apparent molecular mass of 23 kDa. This protein band exists in the preparations from the DDT-susceptible insects but was absent from the preparations of the enzyme from the DDT-insensitive sources. Removal of this protein band from the enzyme rendered its activity insensitive to inhibition by DDT. The protein was purified directly from mitochondria and the DDT sensitivity was reconstituted upon its addition to the DDT-insensitive F1-ATPase. We conclude that this identified protein of the ATP synthase is the DDT target protein in insects.

Adenosine Triphosphate↗

Expression of minute virus of mice major nonstructural protein in insect cells: purification and identification of ATPase and helicase activities.

The gene encoding the major nonstructural (NS-1) protein of minute virus of mice (MVM) has been expressed in insect cells using a baculovirus expression system. This 83-kDa polypeptide was found to be localized in the soluble (cytosolic) fraction in insect cells, in contrast with the nuclear localization of NS-1 expressed in MVM-infected mouse LA-9 cells. The protein was purified by immunoaffinity chromatography using a monoclonal antibody (MAb) prepared to an NS-1 fusion peptide [(Yeung et al., Virology 185, 35-45 (1991)]. Recombinant NS-1 was eluted using either low pH or a synthetic peptide corresponding to the epitope of the MAb. The peptide-eluted material is greater than 95% pure and biologically active in that it has ATPase activity and ATP-dependent helicase activity as determined by a strand displacement assay.

Adenosine Triphosphatases↗

Insect virus proteins (FALPE and p10) self-associate to form filaments in infected cells.

Entomopoxviruses and baculoviruses are pathogens of insects which replicate in the cytoplasm and nuclei of their host cells, respectively. During the late stages of infection, both groups of viruses produce occlusion bodies which serve to protect virions from the external environment. Immunofluorescence and electron microscopy studies have shown that large bundles of filaments are associated with these occlusion bodies. Entomopoxviruses produce cytoplasmic fibrils which appear to be composed of the filament-associated late protein of entomopoxviruses (FALPE). Baculoviruses, on the other hand, yield filaments in the nuclei and cytoplasm of the infected cell which are composed of a protein called p10. Despite significant differences in their sequences, FALPE and p10 have similar hydrophilicity profiles, and each has a proline-rich stretch of amino acids at its carboxyl terminus. Evidence that FALPE and p10 could produce filaments in the absence of other viral proteins is presented. When FALPE was expressed in insect cells from a recombinant baculovirus, filaments similar to those produced by the wild-type Amsacta moorei entomopoxvirus were observed. In addition, when expression plasmids containing FALPE or p10 genes were transfected into Vero monkey kidney cells, filament structures similar to those found in infected insect cells were produced. The manner in which FALPE and p10 subunits interact to form polymers was investigated through deletion and site-specific mutagenesis in conjunction with immunofluorescence microscopy, yeast two-hybrid protein interaction analysis, and chemical cross-linking of adjacent molecules. These studies indicated that the amino termini of FALPE and p10 were essential for subunit interaction. Although deletion of the carboxy termini did not affect this interaction, it did inhibit filament formation. In addition, modification of several potential sites for phosphorylation also abolished filament assembly. We concluded that although the sequences of FALPE and p10 were different, the structural and functional properties of the two polypeptides appeared to be similar.

Amino Acid Sequence↗

Expression of potyvirus proteins in insect cells infected with a recombinant baculovirus.

The N-terminal portion (P1-HC-Pro-P3) of the tobacco vein mottling virus (TVMV) polyprotein was expressed in insect cells and larvae by a recombinant baculovirus. The proteases necessary to process this TVMV polyprotein fragment were active in insect cells, since mature P1, HC-Pro and P3 proteins were detected by specific antisera in Western blots. Antisera to P1, HC-Pro and P3 also recognized polypeptides with apparent M(r) values predicted for the intermediate processing products of the polyprotein fragment. The results of this study indicate that the autocatalytic processing of TVMV HC-Pro from the polyprotein is supported by insect cells. Helper component activity in extracts of cells infected with recombinant baculovirus was not detected by aphid transmission assay.

Animals↗

Synthesis of biologically active adenovirus preterminal protein in insect cells using a baculovirus vector.

A DNA fragment encoding the polyhedrin promoter of Autographa californica multiple nuclear polyhedrosis virus (AcMNPV strain) was constructed using overlapping oligodeoxyribonucleotides (oligos), which included the 5'-untranslated leader sequence of the polyhedrin-encoding gene. This DNA fragment was cloned into an intermediate transfer vector (pKX105) providing a unique BamHI site for the insertion of foreign genes. The Escherichia coli lacZ gene was first cloned at the BamHI site of pKX105 and the XhoI-KpnI fragment containing the lacZ gene was transferred to another plasmid vector (pEI) consisting of flanking AcMNPV sequences (pEI-lacZ). The E. coli beta-galactosidase that was produced in the infected insect cells using the recombinant virus constituted about 10% of the total cytoplasmic proteins. The pKX105 plasmid was also modified to give rise to pTT-lacZ which consisted of the lacZ gene under the control of the Rous sarcoma virus long terminal repeat promoter to facilitate rapid screening of the baculoviral recombinants in which the gene of interest was cloned under the control of the polyhedrin promoter. The efficiency of these transfer vectors was verified by obtaining high levels of expression of the adenovirus(Ad)-encoded preterminal protein (pTP) which is involved as a protein primer in the initiation of Ad DNA replication. The baculovirus-produced pTP was immunoprecipitable using rabbit polyclonal antibodies raised against a hydrophilic domain of pTP. The pTP protein was localized in the nucleus of the infected insect cells, and was biologically active in the in vitro Ad type 2 (Ad2) replication initiation assay.

Adenoviruses, Human↗

Recombinant expression of Garlic virus C (GARV-C) capsid protein in insect cells and its potential for the production of specific antibodies.

Garlic cultivars in Brazil are infected by a complex of viruses and for some virus species, such as the allexivirus, purification of the virions is sometimes cumbersume. To overcome this problem, recombinant expression of viral proteins in heterologous systems is an alternative method for producing antibodies. The capsid gene from Garlic virus C (GarV-C), an Allexivirus, was inserted into the genome of Autographa californica multiple nucleopolyhedrovirus (AcMNPV) generating the recombinant virus vSynGarV-C. The recombinant protein expression was confirmed by SDS-PAGE and western-blot of extracts from recombinant virus infected insect cells, where a protein band of approximately 32KDa was observed only in extracts from recombinant infected cells. This protein corresponded to the predicted size of the capsid protein of the GarV-C. A rabbit polyclonal antibody was raised against this protein, shown to be specific for the GarV-C protein in western-blot and dot-Elisa, however with a low titer.

Animals↗

Amino acid sequence and entomocidal activity of the P2 crystal protein. An insect toxin from Bacillus thuringiensis var. kurstaki.

The gene encoding the 66-kDa entomocidal protein (P2 protein or mosquito factor) from Bacillus thuringiensis var. kurstaki has been isolated by the use of a 62-mer oligonucleotide probe that encoded 21 amino acids of the P2 protein NH2 terminus. The DNA sequence of the gene, designated cryBI, was unique from the published sequences of other B. thuringiensis genes. However, the amino acid sequence of the P2 protein, as deduced from the DNA sequence of the cryBI gene, was found to contain a sequence of 100 amino acids having 37% homology to a group of B. thuringiensis entomocidal proteins, the P1 proteins. Late stationary phase Bacillus megaterium cells harboring the cloned B. thuringiensis cryBI gene contained large aggregates of the P2 protein, and the cells were highly toxic to both lepidopteran and dipteran larvae. In contrast, Escherichia coli cells harboring the cloned cryBI gene contained very low levels of the P2 protein. DNA blot hybridization experiments showed that certain B. thuringiensis strains contained at least one cryBI-related DNA sequence in addition to the cryBI gene itself.

Amino Acid Sequence↗

Evolution of a transcriptional repression domain in an insect Hox protein.

Homeotic (Hox) genes code for principal transcriptional regulators of animal body regionalization. The duplication and divergence of Hox genes, changes in their regulation, and changes in the regulation of Hox target genes have all been implicated in the evolution of animal diversity. It is not known whether Hox proteins have also acquired new activities during the evolution of specific lineages. Amino-acid sequences outside the DNA-binding homeodomains of Hox orthologues diverge significantly. These sequence differences may be neutral with respect to protein function, or they could be involved in the functional divergence of Hox proteins and the evolutionary diversification of animals. Here, we identify a transcriptional repression domain in the carboxy-terminal region of the Drosophila Ultrabithorax (Ubx) protein. This domain is highly conserved among Ubx orthologues in other insects, but is absent from Ubx in other arthropods and onychophorans. The evolution of this domain may have facilitated the greater morphological diversification of posterior thoracic and anterior abdominal segments characteristic of modern insects.

Amino Acid Sequence↗

Ligands and receptors: common theme in insect storage protein transport.

The passage of macromolecules through biological membranes is an essential process for all multicellular organisms. Insects have developed a mechanism different from that known for all other eukaryotes investigated so far. This review discusses the function and evolution of this mechanism. Insect pupae do not feed during metamorphosis. Therefore they depend on material that has been accumulated during the larval life. At the end of this period, shortly before pupariation, a rise in titer of ecdysteroid hormones induces the incorporation of a large fraction of storage proteins (hexamerins) from the body fluid into the fat body cells. The transport of hexamerins across the cell-membrane is mediated by a specific ecdysteroid-controlled receptor. It is synthesized as a precursor protein that is subsequently processed into the active receptor. This receptor protein is very unusual because it is closely related to its own hexamerin ligand. Sequence comparison shows that the hexamerins and hexamerin receptors diverged early in insect evolution and derive from a common hemocyanin ancestor.

Amino Acid Sequence↗

Methionine-independent initiation of translation in the capsid protein of an insect RNA virus.

Protein synthesis is believed to be initiated with the amino acid methionine because the AUG translation initiation codon of mRNAs is recognized by the anticodon of initiator methionine transfer RNA. A group of positive-stranded RNA viruses of insects, however, lacks an AUG translation initiation codon for their capsid protein gene, which is located at the downstream part of the genome. The capsid protein of one of these viruses, Plautia stali intestine virus, is synthesized by internal ribosome entry site-mediated translation. Here we report that methionine is not the initiating amino acid in the translation of the capsid protein in this virus. Its translation is initiated with glutamine encoded by a CAA codon that is the first codon of the capsid-coding region. The nucleotide sequence immediately upstream of the capsid-coding region interacts with a loop segment in the stem-loop structure located 15-43 nt upstream of the 5' end of the capsid-coding region. The pseudoknot structure formed by this base pair interaction is essential for translation of the capsid protein. This mechanism for translation initiation differs from the conventional one in that the initiation step controlled by the initiator methionine transfer RNA is not necessary.

Capsid↗

Molecular cloning, sequencing and expression of cDNA encoding a G0-protein from insect.

A locust cDNA clone encoding the complete sequence of a guanine nucleotide-binding protein was isolated and its nucleotide sequence determined. Comparing the deduced amino acid sequence with primary structures of other G-proteins revealed striking homologies with the vertebrate G0-protein. The cloned cDNA was expressed and the translation product detected by specific antibodies. Northern blot analysis revealed that the corresponding mRNA exists in two forms, preferentially expressed in the nervous tissue.

Amino Acid Sequence↗

Identification of the gene encoding the major capsid protein of insect iridescent virus type 6 by polymerase chain reaction.

The gene encoding the major capsid protein of Chilo iridescent virus (CIV) has been identified by PCR using oligonucleotide primers corresponding to different regions of the major capsid proteins of Tipula iridescent virus (TIV) and iridescent virus 22 (IV22). A DNA fragment of 0.5 kbp was amplified using two oligonucleotide primers corresponding to the amino acid positions 146 to 153 and 304 to 313 of the major capsid protein of TIV, respectively. The radioactively labelled DNA fragment derived from PCR was hybridized to a CIV gene library. This analysis revealed that only the EcoRI CIV DNA fragment X [2.85 kbp; 0.589 to 0.603 viral map units (m.u.)] hybridized to the amplified DNA fragment. An RNA transcript of about 1.5 kb was identified when the PCR product was used as a hybridization probe. The same RNA transcript was detected when the EcoRI fragments X and Q (5.9 kbp; 0.603 to 0.631 viral m.u.) were used as probes. This indicates that the expected gene is located within map coordinates 0.589 to 0.631 and harbours part of the DNA sequences of fragments Q and X. The analysis of the DNA sequences of this particular region of the CIV genome revealed the presence of one open reding frame of 1401 bp. The DNA sequences of this region encode a protein of 467 amino acid residues with an M(r) of 51.4K. A high degree (64.7%) of amino acid sequence identity was detected between the major capsid protein of TIV and/or IV22 and the amino acid composition of the identified CIV protein.

Amino Acid Sequence↗

Differential fatty acid selection during biosynthetic S-acylation of a transmembrane protein (HEF) and other proteins in insect cells (Sf9) and in mammalian cells (CV1).

The transmembrane glycoprotein HEF and its acylation deficient mutant M1 were expressed in Sf9 insect cells infected with recombinant baculovirus and in CV1 mammalian cells using the vaccinia T7 system. In insect cells (Sf9), both wild type HEF and HEF(M1) are synthesized in their precursor form HEF0, which appears as a double band in SDS gels. Digestion with glycopeptidase F and endoglycosidase H reveals that the larger 84-kDa form is modified by the attachment of unprocessed carbohydrates of the high mannose type whereas the smaller 76-kDa form is non-glycosylated. As revealed by in vitro labeling experiments with palmitic acid another modification of HEF is the attachment of a long chain fatty acid to cysteine residue Cys-652 which is located at the internal border of the cytoplasmic membrane. After labeling with [3H]palmitic acid in both systems only HEF(WT) is acylated, whereas HEF(M1) is not. High performance liquid chromatography analysis of the fatty acids bound to HEF(WT) expressed in Sf9 insect cells reveals nearly 80% of palmitic acid. In contrast to this finding, the acylation pattern of HEF expressed in CV1 cells shows nearly the same amounts of stearic and palmitic acid (40%). Since the interconversion of the input [3H]palmitic acid to stearic acid is even lower in CV1 cells than in insect cells, it follows that only HEF expressed in mammalian, but not in insect cells selects for stearic acid during its biosynthetic acylation. We extended our study to acylation of endogenous proteins in Sf9 cells. In finding only palmitate linked to protein we present evidence that, in contrast to mammalian cells, insect cells (Sf9) cannot transfer stearic acid to polypeptide. This finding favors the hypothesis of enzymatic acylation over non-enzymatic mechanisms of acyl transfer to protein.

Acylation↗