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1.
J Mol Biol ; 436(12): 168595, 2024 Jun 15.
Article in English | MEDLINE | ID: mdl-38724003

ABSTRACT

During the late stage of infection, alphabaculoviruses produce many occlusion bodies (OBs) in the nuclei of the insect host's cells through the hyperexpression of polyhedrin (POLH), a major OB component encoded by polh. The strong polh promoter has been used to develop a baculovirus expression vector system for recombinant protein expression in cultured insect cells and larvae. However, the relationship between POLH accumulation and the polh coding sequence remains largely unelucidated. This study aimed to assess the importance of polh codon usage and/or nucleotide sequences in POLH accumulation by generating a baculovirus Bombyx mori nucleopolyhedrovirus (BmNPV) expressing mutant polh (co-polh) optimized according to the codon preference of its host insect. Although the deduced amino acid sequence of CO-POLH was the same as that of wild-type POLH, POLH accumulation was significantly lower in cells infected with the co-polh mutant. This reduction was due to decreased polh mRNA levels rather than translational repression. Analysis of mutant viruses with chimeric polh revealed that a 30 base-pair (bp) 5' proximal polh coding region was necessary for maintaining high polh mRNA levels. Sequence comparison of wild-type polh and co-polh identified five nucleotide differences in this region, indicating that these nucleotides were critical for polh hyperexpression. Furthermore, luciferase reporter assays showed that the 30 bp 5' coding region was sufficient for maintaining the polh promoter-driven high level of polh mRNA. Thus, our whole-gene scanning by codon optimization identified important hidden nucleotides for polh hyperexpression in alphabaculoviruses.


Subject(s)
Bombyx , Nucleopolyhedroviruses , Occlusion Body Matrix Proteins , Nucleopolyhedroviruses/genetics , Animals , Occlusion Body Matrix Proteins/genetics , Bombyx/virology , Bombyx/genetics , Nucleotides/genetics , Nucleotides/metabolism , Promoter Regions, Genetic , Viral Structural Proteins/genetics , Viral Structural Proteins/metabolism , Codon/genetics , Gene Expression Regulation, Viral , Cell Line
2.
Arch Virol ; 169(5): 108, 2024 Apr 24.
Article in English | MEDLINE | ID: mdl-38658418

ABSTRACT

The occlusion bodies of Autographa californica multiple nucleopolyhedrovirus are proteinaceous formations with significant biotechnological potential owing to their capacity to integrate foreign proteins through fusion with polyhedrin, their primary component. However, the strategy for successful heterologous protein inclusion still requires further refinement. In this study, we conducted a comparative assessment of various conditions to achieve the embedding of recombinant proteins within polyhedra. Two baculoviruses were constructed: AcPHGFP (polh+), with GFP as a fusion to wild type (wt) polyhedrin and AcΔPHGFP (polh+), with GFP fused to a fragment corresponding to amino acids 19 to 110 of polyhedrin. These baculoviruses were evaluated by infecting Sf9 cells and stably transformed Sf9, Sf9POLH, and Sf9POLHE44G cells. The stably transformed cells contributed another copy of wt or a mutant polyhedrin, respectively. Polyhedra of each type were isolated and characterized by classical methods. The fusion PHGFP showed more-efficient incorporation into polyhedra than ΔPHGFP in the three cell lines assayed. However, ΔPHGFP polyhedron yields were higher than those of PHGFP in Sf9 and Sf9POLH cells. Based on an integral analysis of the studied parameters, it can be concluded that, except for the AcΔPHGFP/Sf9POLHE44G combination, deficiencies in one factor can be offset by improved performance by another. The combinations AcPHGFP/Sf9POLHE44G and AcΔPHGFP/Sf9POLH stand out due to their high level of incorporation and the large number of recombinant polyhedra produced, respectively. Consequently, the choice between these approaches becomes dependent on the intended application.


Subject(s)
Biotechnology , Nucleopolyhedroviruses , Spodoptera , Nucleopolyhedroviruses/genetics , Nucleopolyhedroviruses/metabolism , Animals , Sf9 Cells , Biotechnology/methods , Spodoptera/virology , Green Fluorescent Proteins/genetics , Green Fluorescent Proteins/metabolism , Occlusion Body Matrix Proteins , Occlusion Bodies, Viral/metabolism , Occlusion Bodies, Viral/genetics , Cell Line , Recombinant Fusion Proteins/genetics , Recombinant Fusion Proteins/metabolism , Recombinant Proteins/genetics , Recombinant Proteins/metabolism
3.
Viruses ; 14(1)2022 01 14.
Article in English | MEDLINE | ID: mdl-35062357

ABSTRACT

Hyperexpression of polh and p10, two very late genes, is one of the remarkable characteristics in the baculovirus life cycle. However, the mechanisms underlying the hyperexpression of these two genes are still incompletely understood. In this study, actin was identified as a highly potential binding partner of polh and p10 promoters by conducting DNA pull-down and LC-MS/MS analyses. Inhibiting actin dynamics delayed and decreased the transcription of polh and p10. Actin interacted with viral RNA polymerase and transcription regulators, and the nuclear import of viral polymerase was inhibited with the disruption of actin dynamics. Simultaneously, the high enrichment of actin in polh and p10 promoters discovered via a chromatin immunoprecipitation (ChIP) assay indicated that actin was a component of the viral polymerase TIC. Moreover, overexpression of actin surprisingly upregulated the expression of luciferase (Luc) under the control of polh and p10 promoters. Taken together, actin participated in the hyperexpression of polh and p10 as a component of TIC. These results facilitate the promotion of the expression efficiency of foreign genes in the baculovirus expression vector system (BEVS).


Subject(s)
Actins/genetics , Bombyx/genetics , Gene Expression , Nucleopolyhedroviruses/genetics , Occlusion Body Matrix Proteins/genetics , Transcription, Genetic , Viral Proteins/genetics , Animals , Cell Line , Chromatography, Liquid , Gene Expression Regulation, Viral , Tandem Mass Spectrometry , Transcription Factors/genetics
4.
Gene ; 814: 146129, 2022 Mar 10.
Article in English | MEDLINE | ID: mdl-34971751

ABSTRACT

One of the amazing phenomena in the baculovirus life cycle is the hyperexpression of the very late gene, polyhedrin (polh), causing the production of the occlusion bodies where progeny virions are embedded. However, to date, the molecular mechanism underlying its hyperexpression is not completely elucidated. Considering that, in this review, the mechanism responsible for its hyperexpression from the previous studies up to now was comprehensively summarized from three aspects, namely, the structure characteristics of the polh promoter and transcription regulation, the structure and translation regulation of the polh mRNA, and especially the regulators that influence the expression of polh gene. Moreover, this review will help us obtain a better understanding about the hyperexpression of polh, and also provide guidance for improving the expression efficiency of the foreign proteins by adopting the baculovirus expression vector system.


Subject(s)
Baculoviridae/genetics , Gene Expression Regulation, Viral , Occlusion Body Matrix Proteins/genetics , Occlusion Body Matrix Proteins/biosynthesis , Promoter Regions, Genetic
5.
Nat Commun ; 11(1): 996, 2020 02 21.
Article in English | MEDLINE | ID: mdl-32081905

ABSTRACT

Serial X-ray crystallography at free-electron lasers allows to solve biomolecular structures from sub-micron-sized crystals. However, beam time at these facilities is scarce, and involved sample delivery techniques are required. On the other hand, rotation electron diffraction (MicroED) has shown great potential as an alternative means for protein nano-crystallography. Here, we present a method for serial electron diffraction of protein nanocrystals combining the benefits of both approaches. In a scanning transmission electron microscope, crystals randomly dispersed on a sample grid are automatically mapped, and a diffraction pattern at fixed orientation is recorded from each at a high acquisition rate. Dose fractionation ensures minimal radiation damage effects. We demonstrate the method by solving the structure of granulovirus occlusion bodies and lysozyme to resolutions of 1.55 Å and 1.80 Å, respectively. Our method promises to provide rapid structure determination for many classes of materials with minimal sample consumption, using readily available instrumentation.


Subject(s)
Crystallography/methods , Proteins/chemistry , Microscopy, Electron, Scanning Transmission , Models, Molecular , Muramidase/chemistry , Muramidase/ultrastructure , Nanoparticles/chemistry , Nanoparticles/ultrastructure , Occlusion Body Matrix Proteins/chemistry , Occlusion Body Matrix Proteins/ultrastructure , Particle Size , Protein Conformation , Proteins/ultrastructure
6.
BMC Biotechnol ; 20(1): 1, 2020 01 21.
Article in English | MEDLINE | ID: mdl-31959159

ABSTRACT

BACKGROUND: The use of biomaterials has been expanded to improve the characteristics of vaccines. Recently we have identified that the peptide PH(1-110) from polyhedrin self-aggregates and incorporates foreign proteins to form particles. We have proposed that this peptide can be used as an antigen carrying system for vaccines. However, the immune response generated by the antigen fused to the peptide has not been fully characterized. In addition, the adjuvant effect and thermostability of the particles has not been evaluated. RESULTS: In the present study we demonstrate the use of a system developed to generate nano and microparticles carrying as a fusion protein peptides or proteins of interest to be used as vaccines. These particles are purified easily by centrifugation. Immunization of animals with the particles in the absence of adjuvant result in a robust and long-lasting immune response. Proteins contained inside the particles are maintained for over 1 year at ambient temperature, preserving their immunological properties. CONCLUSION: The rapid and efficient production of the particles in addition to the robust immune response they generate position this system as an excellent method for the rapid response against emerging diseases. The thermostability conferred by the particle system facilitates the distribution of the vaccines in developing countries or areas with no electricity.


Subject(s)
Antigens/immunology , Immunoglobulins/metabolism , Occlusion Body Matrix Proteins/chemistry , Peptides/chemistry , Vaccines/immunology , Animals , Antigens/chemistry , Drug Stability , Female , Green Fluorescent Proteins/chemistry , Green Fluorescent Proteins/immunology , Immunization , Mice , Nanoparticles , Particle Size , Protein Aggregates , Recombinant Fusion Proteins/immunology , Thermodynamics , Vaccines/chemistry
7.
J Biotechnol ; 307: 175-181, 2020 Jan 10.
Article in English | MEDLINE | ID: mdl-31715205

ABSTRACT

Polyhedron envelope protein (PEP) is the major component of the calyx that surrounds the baculovirus occlusion body (OB). PEP has been associated with the stabilization and resistance of polyhedra in the environment. Due to the abundant levels of PEP in OBs, we decided to use this protein as a fusion partner to redirect foreign proteins to baculovirus polyhedra. In this study we developed a strategy that involves the generation of a monoclonal transformed insect cell line expressing a protein of interest fused to the the Anticarsia gemmatalis multiple nucleopolyhedrovirus (AgMNPV) N-terminus of PEP that enables the packaging of foreign proteins into the OBs without generating a recombinant baculovirus. This proved to be an efficient platform that could be exploited to improve wild type baculovirus for their use as bioinsecticides without facing the concerns of releasing genetically modified DNA to the environment and bypassing the associated regulatory issues. We demonstrated, using immunological, proteomic and microscopy techniques, that the envelope of AgMNPV OBs can effectively trap chimeric proteins in an infected insect cell line expressing AgMNPV PEP fused to the enhanced green fluorescent protein (eGFP). Furthermore, packaging of chimeric PEP also took place with heterologous OBs such as those of Autographa californica multiple nucleopolyhedrovirus (AcMNPV), another group I alphabaculovirus.


Subject(s)
Baculoviridae/metabolism , Nucleopolyhedroviruses/metabolism , Occlusion Bodies, Viral/metabolism , Occlusion Body Matrix Proteins/metabolism , Proteomics , Animals , Baculoviridae/genetics , Cell Line , Genes, Reporter , Insecta , Nucleopolyhedroviruses/genetics , Occlusion Bodies, Viral/genetics , Occlusion Body Matrix Proteins/genetics , Recombinant Proteins
8.
Protein Expr Purif ; 167: 105531, 2020 03.
Article in English | MEDLINE | ID: mdl-31734266

ABSTRACT

Cypovirus is an insect virus that is encapsulated in stable cubic protein crystals composed of polyhedrin protein produced in virus-infected cells. Molecular technology developed over the last decade is now able to immobilise proteins of interest on polyhedrin crystals. Modified polyhedrin crystals can be used in cell cultures for implantation in animals and vaccines, among other applications. However, this technique does not work for some proteins. Here, we developed and tested an alternative approach for immobilising foreign proteins in polyhedrin crystals using a linker method; diverse proteins, such as fluorescent proteins, enzymes, antibodies, and streptavidin were successfully contained. The immobilised antibodies retained their binding activity on filter paper, implying their potential for new immunochromatography applications. Moreover, this immobilisation method allows enzymes to be collected from one reaction reagent and transferred to another reagent. These results demonstrate the potential of this immobilisation method and the likelihood of expanding the applications of polyhedrin crystals using this approach.


Subject(s)
Immobilized Proteins/chemistry , Occlusion Body Matrix Proteins/chemistry , Animals , Protein Engineering/methods , Reoviridae/chemistry , Viral Proteins/chemistry , Viral Structural Proteins/chemistry
9.
Biomolecules ; 9(10)2019 09 20.
Article in English | MEDLINE | ID: mdl-31546991

ABSTRACT

The spatial and temporal availability of cytokines, and the microenvironments this creates, is critical to tissue development and homeostasis. Creating concentration gradients in vitro using soluble proteins is challenging as they do not provide a self-sustainable source. To mimic the sustained cytokine secretion seen in vivo from the extracellular matrix (ECM), we encapsulated a cargo protein into insect virus-derived proteins to form nanoparticle co-crystals and studied the release of this cargo protein mediated by matrix metalloproteinase-2 (MMP-2) and MMP-8. Specifically, when nerve growth factor (NGF), a neurotrophin, was encapsulated into nanoparticles, its release was promoted by MMPs secreted by a PC12 neuronal cell line. When these NGF nanoparticles were spotted onto a cover slip to create a uniform circular field, movement and alignment of PC12 cells via their extended axons along the periphery of the NGF nanoparticle field was observed. Neural cell differentiation was confirmed by the expression of specific markers of tau, neurofilament, and GAP-43. Connections between the extended axons and the growth cones were also observed, and expression of connexin 43 was consistent with the formation of gap junctions. Extensions and connection of very fine filopodia occurred between growth cones. Our studies indicate that crystalline protein nanoparticles can be utilized to generate a highly stable cytokine gradient microenvironment that regulates the alignment and differentiation of nerve cells. This technique greatly simplifies the creation of protein concentration gradients and may lead to therapies for neuronal injuries and disease.


Subject(s)
Cytokines/metabolism , Matrix Metalloproteinases/metabolism , Nerve Growth Factor/pharmacology , Neurons/cytology , Occlusion Body Matrix Proteins/genetics , Reoviridae/physiology , Animals , Biomarkers/metabolism , Cell Differentiation/drug effects , Delayed-Action Preparations , Matrix Metalloproteinase 2/metabolism , Matrix Metalloproteinase 8/metabolism , Nanoparticles , Nerve Growth Factor/chemistry , Nerve Growth Factor/genetics , Neurons/drug effects , Neurons/metabolism , Occlusion Body Matrix Proteins/metabolism , PC12 Cells , Particle Size , Rats , Reoviridae/genetics , Reoviridae/metabolism , Signal Transduction
10.
Virus Res ; 273: 197758, 2019 11.
Article in English | MEDLINE | ID: mdl-31541668

ABSTRACT

The baculovirus expression vector system (BEVS) is one of the most powerful eukaryotic expression systems. Recombinant protein expression is usually controlled by promoters of the baculovirus very late genes (i.e., polyhedrin and p10); therefore, identifying novel regulatory factors for these promoters is key to increasing BEVS productivity. Autographa californica multiple nucleopolyhedrovirus (AcMNPV) is the viral vector most frequently used in BEVS. VP39 is the major nucleocapsid protein of AcMNPV and plays a pivotal role in nucleocapsid assembly in the nucleus. In this study, we found that knocking out vp39 from the AcMNPV genome resulted in decreased protein abundance of polyhedrin and P10. Further assays revealed that the mRNA transcripts and the promoter activities of polyhedrin and p10 were decreased in the absence of vp39, suggesting that VP39 contributes to the activity of the very late viral gene promoters and may represent a means of optimizing the current BEVS.


Subject(s)
Capsid Proteins/genetics , Nucleopolyhedroviruses/chemistry , Promoter Regions, Genetic , Transcription, Genetic , Animals , Cell Line , Gene Knockout Techniques , Genome, Viral , Nucleopolyhedroviruses/genetics , Occlusion Body Matrix Proteins/genetics , Sf9 Cells , Spodoptera , Viral Proteins/genetics
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