The hidden diversity of ancient bornaviral sequences from X and P genes in vertebrate genomes
Abstract Endogenous bornavirus–like elements (EBLs) are heritable sequences derived from bornaviruses in vertebrate genomes that originate from transcripts of ancient bornaviruses. EBLs have been detected using sequence similarity searches such as tBLASTn, whose technical limitations may hinder the...
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Published in | Virus evolution Vol. 9; no. 1; p. vead038 |
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Main Authors | , , , |
Format | Journal Article |
Language | English |
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UK
Oxford University Press
2023
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Abstract | Abstract
Endogenous bornavirus–like elements (EBLs) are heritable sequences derived from bornaviruses in vertebrate genomes that originate from transcripts of ancient bornaviruses. EBLs have been detected using sequence similarity searches such as tBLASTn, whose technical limitations may hinder the detection of EBLs derived from small and/or rapidly evolving viral X and P genes. Indeed, no EBLs derived from the X and P genes of orthobornaviruses have been detected to date in vertebrate genomes. Here, we aimed to develop a novel strategy to detect such ‘hidden’ EBLs. To this aim, we focused on the 1.9-kb read-through transcript of orthobornaviruses, which encodes a well-conserved N gene and small and rapidly evolving X and P genes. We show a series of evidence supporting the existence of EBLs derived from orthobornaviral X and P genes (EBLX/Ps) in mammalian genomes. Furthermore, we found that an EBLX/P is expressed as a fusion transcript with the cellular gene, ZNF451, which potentially encodes the ZNF451/EBLP fusion protein in miniopterid bat cells. This study contributes to a deeper understanding of ancient bornaviruses and co-evolution between bornaviruses and their hosts. Furthermore, our data suggest that endogenous viral elements are more abundant than those previously appreciated using BLAST searches alone, and further studies are required to understand ancient viruses more accurately. |
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AbstractList | Endogenous bornavirus–like elements (EBLs) are heritable sequences derived from bornaviruses in vertebrate genomes that originate from transcripts of ancient bornaviruses. EBLs have been detected using sequence similarity searches such as tBLASTn, whose technical limitations may hinder the detection of EBLs derived from small and/or rapidly evolving viral X and P genes. Indeed, no EBLs derived from the X and P genes of orthobornaviruses have been detected to date in vertebrate genomes. Here, we aimed to develop a novel strategy to detect such ‘hidden’ EBLs. To this aim, we focused on the 1.9-kb read-through transcript of orthobornaviruses, which encodes a well-conserved N gene and small and rapidly evolving X and P genes. We show a series of evidence supporting the existence of EBLs derived from orthobornaviral X and P genes (EBLX/Ps) in mammalian genomes. Furthermore, we found that an EBLX/P is expressed as a fusion transcript with the cellular gene, ZNF451, which potentially encodes the ZNF451/EBLP fusion protein in miniopterid bat cells. This study contributes to a deeper understanding of ancient bornaviruses and co-evolution between bornaviruses and their hosts. Furthermore, our data suggest that endogenous viral elements are more abundant than those previously appreciated using BLAST searches alone, and further studies are required to understand ancient viruses more accurately. Endogenous bornavirus–like elements (EBLs) are heritable sequences derived from bornaviruses in vertebrate genomes that originate from transcripts of ancient bornaviruses. EBLs have been detected using sequence similarity searches such as tBLASTn, whose technical limitations may hinder the detection of EBLs derived from small and/or rapidly evolving viral X and P genes. Indeed, no EBLs derived from the X and P genes of orthobornaviruses have been detected to date in vertebrate genomes. Here, we aimed to develop a novel strategy to detect such ‘hidden’ EBLs. To this aim, we focused on the 1.9-kb read-through transcript of orthobornaviruses, which encodes a well-conserved N gene and small and rapidly evolving X and P genes. We show a series of evidence supporting the existence of EBLs derived from orthobornaviral X and P genes (EBLX/Ps) in mammalian genomes. Furthermore, we found that an EBLX/P is expressed as a fusion transcript with the cellular gene, ZNF451 , which potentially encodes the ZNF451/EBLP fusion protein in miniopterid bat cells. This study contributes to a deeper understanding of ancient bornaviruses and co-evolution between bornaviruses and their hosts. Furthermore, our data suggest that endogenous viral elements are more abundant than those previously appreciated using BLAST searches alone, and further studies are required to understand ancient viruses more accurately. Endogenous bornavirus-like elements (EBLs) are heritable sequences derived from bornaviruses in vertebrate genomes that originate from transcripts of ancient bornaviruses. EBLs have been detected using sequence similarity searches such as tBLASTn, whose technical limitations may hinder the detection of EBLs derived from small and/or rapidly evolving viral X and P genes. Indeed, no EBLs derived from the X and P genes of orthobornaviruses have been detected to date in vertebrate genomes. Here, we aimed to develop a novel strategy to detect such 'hidden' EBLs. To this aim, we focused on the 1.9-kb read-through transcript of orthobornaviruses, which encodes a well-conserved N gene and small and rapidly evolving X and P genes. We show a series of evidence supporting the existence of EBLs derived from orthobornaviral X and P genes (EBLX/Ps) in mammalian genomes. Furthermore, we found that an EBLX/P is expressed as a fusion transcript with the cellular gene, ZNF451, which potentially encodes the ZNF451/EBLP fusion protein in miniopterid bat cells. This study contributes to a deeper understanding of ancient bornaviruses and co-evolution between bornaviruses and their hosts. Furthermore, our data suggest that endogenous viral elements are more abundant than those previously appreciated using BLAST searches alone, and further studies are required to understand ancient viruses more accurately.Endogenous bornavirus-like elements (EBLs) are heritable sequences derived from bornaviruses in vertebrate genomes that originate from transcripts of ancient bornaviruses. EBLs have been detected using sequence similarity searches such as tBLASTn, whose technical limitations may hinder the detection of EBLs derived from small and/or rapidly evolving viral X and P genes. Indeed, no EBLs derived from the X and P genes of orthobornaviruses have been detected to date in vertebrate genomes. Here, we aimed to develop a novel strategy to detect such 'hidden' EBLs. To this aim, we focused on the 1.9-kb read-through transcript of orthobornaviruses, which encodes a well-conserved N gene and small and rapidly evolving X and P genes. We show a series of evidence supporting the existence of EBLs derived from orthobornaviral X and P genes (EBLX/Ps) in mammalian genomes. Furthermore, we found that an EBLX/P is expressed as a fusion transcript with the cellular gene, ZNF451, which potentially encodes the ZNF451/EBLP fusion protein in miniopterid bat cells. This study contributes to a deeper understanding of ancient bornaviruses and co-evolution between bornaviruses and their hosts. Furthermore, our data suggest that endogenous viral elements are more abundant than those previously appreciated using BLAST searches alone, and further studies are required to understand ancient viruses more accurately. Endogenous bornavirus-like elements (EBLs) are heritable sequences derived from bornaviruses in vertebrate genomes that originate from transcripts of ancient bornaviruses. EBLs have been detected using sequence similarity searches such as tBLASTn, whose technical limitations may hinder the detection of EBLs derived from small and/or rapidly evolving viral X and P genes. Indeed, no EBLs derived from the X and P genes of orthobornaviruses have been detected to date in vertebrate genomes. Here, we aimed to develop a novel strategy to detect such 'hidden' EBLs. To this aim, we focused on the 1.9-kb read-through transcript of orthobornaviruses, which encodes a well-conserved N gene and small and rapidly evolving X and P genes. We show a series of evidence supporting the existence of EBLs derived from orthobornaviral X and P genes (EBLX/Ps) in mammalian genomes. Furthermore, we found that an EBLX/P is expressed as a fusion transcript with the cellular gene, , which potentially encodes the ZNF451/EBLP fusion protein in miniopterid bat cells. This study contributes to a deeper understanding of ancient bornaviruses and co-evolution between bornaviruses and their hosts. Furthermore, our data suggest that endogenous viral elements are more abundant than those previously appreciated using BLAST searches alone, and further studies are required to understand ancient viruses more accurately. Abstract Endogenous bornavirus–like elements (EBLs) are heritable sequences derived from bornaviruses in vertebrate genomes that originate from transcripts of ancient bornaviruses. EBLs have been detected using sequence similarity searches such as tBLASTn, whose technical limitations may hinder the detection of EBLs derived from small and/or rapidly evolving viral X and P genes. Indeed, no EBLs derived from the X and P genes of orthobornaviruses have been detected to date in vertebrate genomes. Here, we aimed to develop a novel strategy to detect such ‘hidden’ EBLs. To this aim, we focused on the 1.9-kb read-through transcript of orthobornaviruses, which encodes a well-conserved N gene and small and rapidly evolving X and P genes. We show a series of evidence supporting the existence of EBLs derived from orthobornaviral X and P genes (EBLX/Ps) in mammalian genomes. Furthermore, we found that an EBLX/P is expressed as a fusion transcript with the cellular gene, ZNF451, which potentially encodes the ZNF451/EBLP fusion protein in miniopterid bat cells. This study contributes to a deeper understanding of ancient bornaviruses and co-evolution between bornaviruses and their hosts. Furthermore, our data suggest that endogenous viral elements are more abundant than those previously appreciated using BLAST searches alone, and further studies are required to understand ancient viruses more accurately. |
Author | Mukai, Yahiro Garcia, Bea Clarise B Tomonaga, Keizo Horie, Masayuki |
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References | Chen (2023062310520162000_R5) 2018; 34 Prat (2023062310520162000_R36) 2009; 5 Rubbenstroth (2023062310520162000_R38) 2021; 102 Drozdetskiy (2023062310520162000_R9) 2015; 43 Duggal (2023062310520162000_R10) 2012; 12 Robinson (2023062310520162000_R37) 2011; 29 (2023062310520162000_R43) 2021; 118 (2023062310520162000_R11) 2010; 463 Maeda (2023062310520162000_R28) 2008; 14 Coordinators (2023062310520162000_R8) 2018; 46 Muhire (2023062310520162000_R31) 2014; 9 Hirai (2023062310520162000_R16) 2021; 192 (2023062310520162000_R7) 2013; 368 Kawasaki (2023062310520162000_R23) 2021; 118 Aiewsakun (2023062310520162000_R1) 2015; 479–480 Finn (2023062310520162000_R13) 2011; 39 Katoh (2023062310520162000_R21) 2013; 30 Schmid (2023062310520162000_R39) 2007; 81 Jurka (2023062310520162000_R20) 1996; 20 Gilbert (2023062310520162000_R15) 2014; 281 (2023062310520162000_R35) 2008; 82 (2023062310520162000_R6) 1997; 46 Kumar (2023062310520162000_R26) 2017; 34 Jern (2023062310520162000_R19) 2008; 42 Fujino (2023062310520162000_R14) 2012; 7 Pearson (2023062310520162000_R33) 2016; 53 Kojima (2023062310520162000_R25) 2019; 93 Li (2023062310520162000_R27) 2013; 45 Maruyama (2023062310520162000_R29) 2014; 88 Banerjee (2023062310520162000_R2) 1991; 51 Kim (2023062310520162000_R24) 2019; 37 Walker (2023062310520162000_R44) 2005 Katzourakis (2023062310520162000_R22) 2010; 6 Shoya (2023062310520162000_R41) 1998; 72 Unterstab (2023062310520162000_R42) 2005; 102 Horie (2023062310520162000_R17) 2017; 25 Schwemmle (2023062310520162000_R40) 1999; 80 Horie (2023062310520162000_R18) 2019; 262 Ferre (2023062310520162000_R12) 2016; 30 Mukai (2023062310520162000_R32) 2022; 596 Camacho (2023062310520162000_R4) 2009; 10 Poenisch (2023062310520162000_R34) 2009; 83 Belyi (2023062310520162000_R3) 2010; 6 Morrish (2023062310520162000_R30) 2002; 31 Wolff (2023062310520162000_R45) 2002; 277 |
References_xml | – volume: 262 start-page: 2 year: 2019 ident: 2023062310520162000_R18 article-title: Paleovirology of Bornaviruses: What Can Be Learned from Molecular Fossils of Bornaviruses publication-title: Virus Research doi: 10.1016/j.virusres.2018.04.006 – volume: 5 year: 2009 ident: 2023062310520162000_R36 article-title: Mutation of the Protein Kinase C Site in Borna Disease Virus Phosphoprotein Abrogates Viral Interference with Neuronal Signaling and Restores Normal Synaptic Activity publication-title: PLoS Pathogens doi: 10.1371/journal.ppat.1000425 – volume: 46 start-page: 24 year: 1997 ident: 2023062310520162000_R6 article-title: Comparison of DNA Sequences with Protein Sequences publication-title: Genomics doi: 10.1006/geno.1997.4995 – volume: 102 year: 2021 ident: 2023062310520162000_R38 article-title: ICTV Virus Taxonomy Profile: Bornaviridae publication-title: Journal of General Virology doi: 10.1099/jgv.0.001613 – volume: 118 year: 2021 ident: 2023062310520162000_R43 article-title: Virus-like Insertions with Sequence Signatures Similar to Those of Endogenous Nonretroviral RNA Viruses in the Human Genome publication-title: Proceedings of the National Academy of Sciences – volume: 53 start-page: 3.9.1 year: 2016 ident: 2023062310520162000_R33 article-title: Finding Protein and Nucleotide Similarities with FASTA publication-title: Current Protocols in Bioinformatics doi: 10.1002/0471250953.bi0309s53 – volume: 463 start-page: 84 year: 2010 ident: 2023062310520162000_R11 article-title: Endogenous Non-retroviral RNA Virus Elements in Mammalian Genomes publication-title: Nature doi: 10.1038/nature08695 – volume: 83 start-page: 4297 year: 2009 ident: 2023062310520162000_R34 article-title: Protein X of Borna Disease Virus Inhibits Apoptosis and Promotes Viral Persistence in the Central Nervous Systems of Newborn-infected Rats publication-title: Journal of Virology doi: 10.1128/JVI.02321-08 – volume: 46 start-page: D8 year: 2018 ident: 2023062310520162000_R8 article-title: Database Resources of the National Center for Biotechnology Information publication-title: Nucleic Acids Research doi: 10.1093/nar/gkx1095 – volume: 277 start-page: 12151 year: 2002 ident: 2023062310520162000_R45 article-title: Characterization of an Unusual Importin Alpha Binding Motif in the Borna Disease Virus P10 Protein That Directs Nuclear Import publication-title: Journal of Biological Chemistry doi: 10.1074/jbc.M109103200 – volume: 88 start-page: 99 year: 2014 ident: 2023062310520162000_R29 article-title: Characterization of the Envelope Glycoprotein of a Novel Filovirus, Lloviu Virus publication-title: Journal of Virology doi: 10.1128/JVI.02265-13 – volume: 93 start-page: e01621 year: 2019 ident: 2023062310520162000_R25 article-title: Splicing-Dependent Subcellular Targeting of Borna Disease Virus Nucleoprotein Isoforms publication-title: Journal of Virology doi: 10.1128/JVI.01621-18 – volume: 34 start-page: 1812 year: 2017 ident: 2023062310520162000_R26 article-title: TimeTree: A Resource for Timelines, Timetrees, and Divergence Times publication-title: Molecular Biology and Evolution doi: 10.1093/molbev/msx116 – volume: 81 start-page: 5497 year: 2007 ident: 2023062310520162000_R39 article-title: Functional Characterization of the Major and Minor Phosphorylation Sites of the P Protein of Borna Disease Virus publication-title: Journal of Virology doi: 10.1128/JVI.02233-06 – volume: 6 year: 2010 ident: 2023062310520162000_R22 article-title: Endogenous Viral Elements in Animal Genomes publication-title: PLoS Genetics doi: 10.1371/journal.pgen.1001191 – volume: 31 start-page: 159 year: 2002 ident: 2023062310520162000_R30 article-title: DNA Repair Mediated by Endonuclease-independent LINE-1 Retrotransposition publication-title: Nature Genetics doi: 10.1038/ng898 – volume: 102 start-page: 13640 year: 2005 ident: 2023062310520162000_R42 article-title: Viral Targeting of the Interferon-{beta}-inducing Traf Family Member-associated NF-{kappa}B Activator (Tank)-binding Kinase-1 publication-title: Proceedings of the National Academy of Sciences of the United States of America doi: 10.1073/pnas.0502883102 – volume: 30 start-page: 1523 year: 2016 ident: 2023062310520162000_R12 article-title: Manipulation of the N-terminal Sequence of the Borna Disease Virus X Protein Improves Its Mitochondrial Targeting and Neuroprotective Potential publication-title: The FASEB Journal doi: 10.1096/fj.15-279620 – volume: 6 year: 2010 ident: 2023062310520162000_R3 article-title: Unexpected Inheritance: Multiple Integrations of Ancient Bornavirus and Ebolavirus/Marburgvirus Sequences in Vertebrate Genomes publication-title: PLoS Pathogens doi: 10.1371/journal.ppat.1001030 – volume: 82 start-page: 9537 year: 2008 ident: 2023062310520162000_R35 article-title: Polymerase Read-through at the First Transcription Termination Site Contributes to Regulation of Borna Disease Virus Gene Expression publication-title: Journal of Virology doi: 10.1128/JVI.00639-08 – volume: 51 start-page: 47 year: 1991 ident: 2023062310520162000_R2 article-title: Gene Expression of Nonsegmented Negative Strand RNA Viruses publication-title: Pharmacology & Therapeutics doi: 10.1016/0163-7258(91)90041-J – volume: 368 year: 2013 ident: 2023062310520162000_R7 article-title: Comprehensive Analysis of Endogenous Bornavirus-like Elements in Eukaryote Genomes publication-title: Philosophical Transactions of the Royal Society of London. Series B, Biological Sciences – volume: 45 start-page: 1546 year: 2013 ident: 2023062310520162000_R27 article-title: MAVS-mediated Host Cell Defense Is Inhibited by Borna Disease Virus publication-title: The International Journal of Biochemistry & Cell Biology doi: 10.1016/j.biocel.2013.05.012 – volume: 479–480 start-page: 26 year: 2015 ident: 2023062310520162000_R1 article-title: Endogenous Viruses: Connecting Recent and Ancient Viral Evolution publication-title: Virology doi: 10.1016/j.virol.2015.02.011 – volume: 118 year: 2021 ident: 2023062310520162000_R23 article-title: 100-My History of Bornavirus Infections Hidden in Vertebrate Genomes publication-title: Proceedings of the National Academy of Sciences of the United States of America – volume: 9 year: 2014 ident: 2023062310520162000_R31 article-title: SDT: A Virus Classification Tool Based on Pairwise Sequence Alignment and Identity Calculation publication-title: PLoS One doi: 10.1371/journal.pone.0108277 – volume: 42 start-page: 709 year: 2008 ident: 2023062310520162000_R19 article-title: Effects of Retroviruses on Host Genome Function publication-title: Annual Review of Genetics doi: 10.1146/annurev.genet.42.110807.091501 – volume: 192 start-page: 55 year: 2021 ident: 2023062310520162000_R16 article-title: Borna Disease Virus Phosphoprotein Triggers the Organization of Viral Inclusion Bodies by Liquid-liquid Phase Separation publication-title: International Journal of Biological Macromolecules doi: 10.1016/j.ijbiomac.2021.09.153 – volume: 80 start-page: 97 year: 1999 ident: 2023062310520162000_R40 article-title: Characterization of the Major Nuclear Localization Signal of the Borna Disease Virus Phosphoprotein publication-title: Journal of General Virology doi: 10.1099/0022-1317-80-1-97 – volume: 43 start-page: W389 year: 2015 ident: 2023062310520162000_R9 article-title: JPred4: A Protein Secondary Structure Prediction Server publication-title: Nucleic Acids Research doi: 10.1093/nar/gkv332 – volume: 25 start-page: 1 year: 2017 ident: 2023062310520162000_R17 article-title: The Biological Significance of Bornavirus-derived Genes in Mammals publication-title: Current Opinion in Virology doi: 10.1016/j.coviro.2017.06.004 – volume: 20 start-page: 119 year: 1996 ident: 2023062310520162000_R20 article-title: CENSOR—a Program for Identification and Elimination of Repetitive Elements from DNA Sequences publication-title: Computers & Chemistry doi: 10.1016/S0097-8485(96)80013-1 – volume: 30 start-page: 772 year: 2013 ident: 2023062310520162000_R21 article-title: MAFFT Multiple Sequence Alignment Software Version 7: Improvements in Performance and Usability publication-title: Molecular Biology and Evolution doi: 10.1093/molbev/mst010 – volume: 72 start-page: 9755 year: 1998 ident: 2023062310520162000_R41 article-title: Two Proline-rich Nuclear Localization Signals in the Amino- and Carboxyl-terminal Regions of the Borna Disease Virus Phosphoprotein publication-title: Journal of Virology doi: 10.1128/JVI.72.12.9755-9762.1998 – volume: 596 start-page: 323 year: 2022 ident: 2023062310520162000_R32 article-title: An Endogenous Bornavirus-like Nucleoprotein in Miniopterid Bats Retains the RNA-binding Properties of the Original Viral Protein publication-title: FEBS Letters doi: 10.1002/1873-3468.14290 – volume: 34 start-page: i884 year: 2018 ident: 2023062310520162000_R5 article-title: Fastp: An Ultra-fast All-in-one FASTQ Preprocessor publication-title: Bioinformatics doi: 10.1093/bioinformatics/bty560 – volume: 10 year: 2009 ident: 2023062310520162000_R4 article-title: BLAST+: Architecture and Applications publication-title: BMC Bioinformatics doi: 10.1186/1471-2105-10-421 – volume: 37 start-page: 907 year: 2019 ident: 2023062310520162000_R24 article-title: Graph-based Genome Alignment and Genotyping with HISAT2 and HISAT-genotype publication-title: Nature Biotechnology doi: 10.1038/s41587-019-0201-4 – volume-title: The Proteomics Protocols Handbook year: 2005 ident: 2023062310520162000_R44 doi: 10.1385/1592598900 – volume: 14 start-page: 347 year: 2008 ident: 2023062310520162000_R28 article-title: Isolation of Novel Adenovirus from Fruit Bat (Pteropus dasymallus yayeyamae) publication-title: Emerging Infectious Diseases doi: 10.3201/eid1402.070932 – volume: 12 start-page: 687 year: 2012 ident: 2023062310520162000_R10 article-title: Evolutionary Conflicts between Viruses and Restriction Factors Shape Immunity publication-title: Nature Reviews Immunology doi: 10.1038/nri3295 – volume: 7 year: 2012 ident: 2023062310520162000_R14 article-title: Evolutionarily Conserved Interaction between the Phosphoproteins and X Proteins of Bornaviruses from Different Vertebrate Species publication-title: PLoS One doi: 10.1371/journal.pone.0051161 – volume: 39 start-page: W29 year: 2011 ident: 2023062310520162000_R13 article-title: HMMER Web Server: Interactive Sequence Similarity Searching publication-title: Nucleic Acids Research doi: 10.1093/nar/gkr367 – volume: 281 year: 2014 ident: 2023062310520162000_R15 article-title: Endogenous Hepadnaviruses, Bornaviruses and Circoviruses in Snakes publication-title: Proceedings. Biological Sciences – volume: 29 start-page: 24 year: 2011 ident: 2023062310520162000_R37 article-title: Integrative Genomics Viewer publication-title: Nature Biotechnology doi: 10.1038/nbt.1754 |
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Endogenous bornavirus–like elements (EBLs) are heritable sequences derived from bornaviruses in vertebrate genomes that originate from transcripts of... Endogenous bornavirus–like elements (EBLs) are heritable sequences derived from bornaviruses in vertebrate genomes that originate from transcripts of ancient... Endogenous bornavirus-like elements (EBLs) are heritable sequences derived from bornaviruses in vertebrate genomes that originate from transcripts of ancient... |
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Title | The hidden diversity of ancient bornaviral sequences from X and P genes in vertebrate genomes |
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