1
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Abstract
Protein synthesis by the ribosome is the final stage of biological information transfer and represents an irreversible commitment to gene expression. Accurate translation of messenger RNA is therefore essential to all life, and spontaneous errors by the translational machinery are highly infrequent (∼1/100,000 codons). Programmed -1 ribosomal frameshifting (-1PRF) is a mechanism in which the elongating ribosome is induced at high frequency to slip backward by one nucleotide at a defined position and to continue translation in the new reading frame. This is exploited as a translational regulation strategy by hundreds of RNA viruses, which rely on -1PRF during genome translation to control the stoichiometry of viral proteins. While early investigations of -1PRF focused on virological and biochemical aspects, the application of X-ray crystallography and cryo-electron microscopy (cryo-EM), and the advent of deep sequencing and single-molecule approaches have revealed unexpected structural diversity and mechanistic complexity. Molecular players from several model systems have now been characterized in detail, both in isolation and, more recently, in the context of the elongating ribosome. Here we provide a summary of recent advances and discuss to what extent a general model for -1PRF remains a useful way of thinking.
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Affiliation(s)
- Chris H Hill
- York Structural Biology Laboratory, York Biomedical Research Institute, Department of Biology, University of York, York, United Kingdom;
| | - Ian Brierley
- Department of Pathology, University of Cambridge, Cambridge, United Kingdom;
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2
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Vladimirov M, Gautam V, Davidson AR. Identification of the tail assembly chaperone genes of T4-Like phages suggests a mechanism other than translational frameshifting for biogenesis of their encoded proteins. Virology 2021; 566:9-15. [PMID: 34826709 DOI: 10.1016/j.virol.2021.11.003] [Citation(s) in RCA: 3] [Impact Index Per Article: 1.0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 09/02/2021] [Revised: 11/11/2021] [Accepted: 11/11/2021] [Indexed: 11/29/2022]
Abstract
Tape measure (TM) proteins are essential for the formation of long-tailed phages. TM protein assembly into tails requires the action of tail assembly chaperones (TACs). TACs (e.g. gpG and gpT of E. coli phage lambda) are usually produced in a short (TAC-N) and long form (TAC-NC) with the latter comprised of TAC-N with an additional C-terminal domain (TAC-C). TAC-NC is generally synthesized through a ribosomal frameshifting mechanism. TAC encoding genes have never been identified in the intensively studied Escherichia coli phage T4, or any related phages. Here, we have bioinformatically identified putative TAC encoding genes in diverse T4-like phage genomes. The frameshifting mechanism for producing TAC-NC appears to be conserved in several T4-like phage groups. However, the group including phage T4 itself likely employs a different strategy whereby TAC-N and TAC-NC are encoded by separate genes (26 and 51 in phage T4).
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Affiliation(s)
- Maria Vladimirov
- Department of Biochemistry, University of Toronto, Toronto, Ontario, Canada
| | - Vasu Gautam
- Department of Molecular Genetics, University of Toronto, Toronto, Ontario, Canada
| | - Alan R Davidson
- Department of Biochemistry, University of Toronto, Toronto, Ontario, Canada; Department of Molecular Genetics, University of Toronto, Toronto, Ontario, Canada.
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3
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Seul A, Brasilès S, Petitpas I, Lurz R, Campanacci V, Cambillau C, Weise F, Zairi M, Tavares P, Auzat I. Biogenesis of a Bacteriophage Long Non-Contractile Tail. J Mol Biol 2021; 433:167112. [PMID: 34153288 DOI: 10.1016/j.jmb.2021.167112] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Key Words] [Journal Information] [Subscribe] [Scholar Register] [Received: 03/10/2021] [Revised: 05/22/2021] [Accepted: 06/15/2021] [Indexed: 10/21/2022]
Abstract
Siphoviruses are main killers of bacteria. They use a long non-contractile tail to recognize the host cell and to deliver the genome from the viral capsid to the bacterial cytoplasm. Here, we define the molecular organization of the Bacillus subtilis bacteriophage SPP1 ~ 6.8 MDa tail and uncover its biogenesis mechanisms. A complex between gp21 and the tail distal protein (Dit) gp19.1 is assembled first to build the tail cap (gp19.1-gp21Nter) connected by a flexible hinge to the tail fiber (gp21Cter). The tip of the gp21Cter fiber is loosely associated to gp22. The cap provides a platform where tail tube proteins (TTPs) initiate polymerization around the tape measure protein gp18 (TMP), a reaction dependent on the non-structural tail assembly chaperones gp17.5 and gp17.5* (TACs). Gp17.5 is essential for stability of gp18 in the cell. Helical polymerization stops at a precise tube length followed by binding of proteins gp16.1 (TCP) and gp17 (THJP) to build the tail interface for attachment to the capsid portal system. This finding uncovers the function of the extensively conserved gp16.1-homologs in assembly of long tails. All SPP1 tail components, apart from gp22, share homology to conserved proteins whose coding genes' synteny is broadly maintained in siphoviruses. They conceivably represent the minimal essential protein set necessary to build functional long tails. Proteins homologous to SPP1 tail building blocks feature a variety of add-on modules that diversify extensively the tail core structure, expanding its capability to bind host cells and to deliver the viral genome to the bacterial cytoplasm.
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Affiliation(s)
- Anait Seul
- Unité de Virologie Moléculaire et Structurale, Centre de Recherche de Gif, CNRS UPR 3296 and IFR115, CNRS, Gif-sur-Yvette, France
| | - Sandrine Brasilès
- Unité de Virologie Moléculaire et Structurale, Centre de Recherche de Gif, CNRS UPR 3296 and IFR115, CNRS, Gif-sur-Yvette, France; Institute for Integrative Biology of the Cell, Université Paris-Saclay, CEA, CNRS, 91198 Gif-sur-Yvette, France
| | - Isabelle Petitpas
- Unité de Virologie Moléculaire et Structurale, Centre de Recherche de Gif, CNRS UPR 3296 and IFR115, CNRS, Gif-sur-Yvette, France
| | - Rudi Lurz
- Max Planck Institute for Molecular Genetics, D-14195 Berlin, Germany
| | - Valérie Campanacci
- Institute for Integrative Biology of the Cell, Université Paris-Saclay, CEA, CNRS, 91198 Gif-sur-Yvette, France; Architecture et Fonction des Macromolécules Biologiques, UMR 6098 CNRS and Universités d'Aix-Marseille I & II, Campus de Luminy, Marseille, France
| | - Christian Cambillau
- Architecture et Fonction des Macromolécules Biologiques, UMR 6098 CNRS and Universités d'Aix-Marseille I & II, Campus de Luminy, Marseille, France
| | - Frank Weise
- Max Planck Institute for Molecular Genetics, D-14195 Berlin, Germany
| | - Mohamed Zairi
- Unité de Virologie Moléculaire et Structurale, Centre de Recherche de Gif, CNRS UPR 3296 and IFR115, CNRS, Gif-sur-Yvette, France
| | - Paulo Tavares
- Unité de Virologie Moléculaire et Structurale, Centre de Recherche de Gif, CNRS UPR 3296 and IFR115, CNRS, Gif-sur-Yvette, France; Institute for Integrative Biology of the Cell, Université Paris-Saclay, CEA, CNRS, 91198 Gif-sur-Yvette, France.
| | - Isabelle Auzat
- Unité de Virologie Moléculaire et Structurale, Centre de Recherche de Gif, CNRS UPR 3296 and IFR115, CNRS, Gif-sur-Yvette, France; Institute for Integrative Biology of the Cell, Université Paris-Saclay, CEA, CNRS, 91198 Gif-sur-Yvette, France.
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4
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Structure, function and assembly of the long, flexible tail of siphophages. Curr Opin Virol 2020; 45:34-42. [DOI: 10.1016/j.coviro.2020.06.010] [Citation(s) in RCA: 14] [Impact Index Per Article: 3.5] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/01/2020] [Revised: 06/15/2020] [Accepted: 06/23/2020] [Indexed: 12/25/2022]
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5
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Baquero DP, Liu Y, Wang F, Egelman EH, Prangishvili D, Krupovic M. Structure and assembly of archaeal viruses. Adv Virus Res 2020; 108:127-164. [PMID: 33837715 DOI: 10.1016/bs.aivir.2020.09.004] [Citation(s) in RCA: 29] [Impact Index Per Article: 7.3] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/19/2022]
Abstract
Viruses of archaea represent one of the most enigmatic parts of the virosphere. Most of the characterized archaeal viruses infect extremophilic hosts and display remarkable diversity of virion morphotypes, many of which have never been observed among bacteriophages or viruses of eukaryotes. However, recent environmental studies have shown that archaeal viruses are widespread also in moderate ecosystems, where they play an important ecological role by influencing the turnover of microbial communities, with a global impact on the carbon and nitrogen cycles. In this review, we summarize recent advances in understanding the molecular details of virion organization and assembly of archaeal viruses. We start by briefly introducing the 20 officially recognized families of archaeal viruses and then outline the similarities and differences of archaeal virus assembly with the morphogenesis pathways used by bacterial and eukaryotic viruses, and discuss the evolutionary implications of these observations. Generally, the assembly of the icosahedral archaeal viruses closely follows the mechanisms employed by evolutionarily related bacterial and eukaryotic viruses with the HK97 fold and double jelly-roll major capsid proteins, emphasizing the overall conservation of these pathways over billions of years of evolution. By contrast, archaea-specific viruses employ unique virion assembly mechanisms. We also highlight some of the molecular adaptations underlying the stability of archaeal viruses in extreme environments. Despite considerable progress during the past few years, the archaeal virosphere continues to represent one of the least studied parts of the global virome, with many molecular features awaiting to be discovered and characterized.
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Affiliation(s)
- Diana P Baquero
- Archaeal Virology Unit, Department of Microbiology, Institut Pasteur, Paris, France; Sorbonne Université, Collège Doctoral, Paris, France
| | - Ying Liu
- Archaeal Virology Unit, Department of Microbiology, Institut Pasteur, Paris, France
| | - Fengbin Wang
- Department of Biochemistry and Molecular Genetics, University of Virginia, Charlottesville, VA, United States
| | - Edward H Egelman
- Department of Biochemistry and Molecular Genetics, University of Virginia, Charlottesville, VA, United States
| | - David Prangishvili
- Archaeal Virology Unit, Department of Microbiology, Institut Pasteur, Paris, France; Ivane Javakhishvili Tbilisi State University, Tbilisi, Georgia
| | - Mart Krupovic
- Archaeal Virology Unit, Department of Microbiology, Institut Pasteur, Paris, France.
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6
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Campbell PL, Duda RL, Nassur J, Conway JF, Huet A. Mobile Loops and Electrostatic Interactions Maintain the Flexible Tail Tube of Bacteriophage Lambda. J Mol Biol 2019; 432:384-395. [PMID: 31711962 DOI: 10.1016/j.jmb.2019.10.031] [Citation(s) in RCA: 23] [Impact Index Per Article: 4.6] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 07/25/2019] [Revised: 10/26/2019] [Accepted: 10/31/2019] [Indexed: 12/11/2022]
Abstract
The long flexible tail tube of bacteriophage lambda connects its capsid to the tail tip. On infection, a DNA ejection signal is passed from the tip, along the tube to the capsid that triggers passage of the DNA down the tube and into the host bacterium. The tail tube is built from repeating units of the major tail protein, gpV, which has two distinctive domains. Its N-terminal domain has the same fold as proteins that form the rigid inner tubes of contractile tail phages, such as T4, and its C-terminal domain adopt an Ig-like fold of unknown function. We determined structures of the lambda tail tube in free tails and in virions before and after DNA ejection using cryoelectron microscopy. Modeling of the density maps reveals how electrostatic interactions and a mobile loop participate in assembly and also impart flexibility to the tube while maintaining its integrity. We also demonstrate how a common protein fold produces rigid tubes in some phages but flexible tubes in others.
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Affiliation(s)
- Patricia L Campbell
- Department of Biological Sciences, Dietrich School of Arts and Sciences, Pittsburgh, PA 15260, USA; Department of Structural Biology, School of Medicine, University of Pittsburgh, Pittsburgh, PA 15260, USA
| | - Robert L Duda
- Department of Biological Sciences, Dietrich School of Arts and Sciences, Pittsburgh, PA 15260, USA
| | - Jamie Nassur
- Department of Structural Biology, School of Medicine, University of Pittsburgh, Pittsburgh, PA 15260, USA
| | - James F Conway
- Department of Structural Biology, School of Medicine, University of Pittsburgh, Pittsburgh, PA 15260, USA.
| | - Alexis Huet
- Department of Biological Sciences, Dietrich School of Arts and Sciences, Pittsburgh, PA 15260, USA; Department of Structural Biology, School of Medicine, University of Pittsburgh, Pittsburgh, PA 15260, USA
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7
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DNA Packaging and Genomics of the Salmonella 9NA-Like Phages. J Virol 2019; 93:JVI.00848-19. [PMID: 31462565 DOI: 10.1128/jvi.00848-19] [Citation(s) in RCA: 6] [Impact Index Per Article: 1.2] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/21/2019] [Accepted: 08/26/2019] [Indexed: 12/14/2022] Open
Abstract
We present the genome sequences of Salmonella enterica tailed phages Sasha, Sergei, and Solent. These phages, along with Salmonella phages 9NA, FSL_SP-062, and FSL_SP-069 and the more distantly related Proteus phage PmiS-Isfahan, have similarly sized genomes of between 52 and 57 kbp in length that are largely syntenic. Their genomes also show substantial genome mosaicism relative to one another, which is common within tailed phage clusters. Their gene content ranges from 80 to 99 predicted genes, of which 40 are common to all seven and form the core genome, which includes all identifiable virion assembly and DNA replication genes. The total number of gene types (pangenome) in the seven phages is 176, and 59 of these are unique to individual phages. Their core genomes are much more closely related to one another than to the genome of any other known phage, and they comprise a well-defined cluster within the family Siphoviridae To begin to characterize this group of phages in more experimental detail, we identified the genes that encode the major virion proteins and examined the DNA packaging of the prototypic member, phage 9NA. We show that it uses a pac site-directed headful packaging mechanism that results in virion chromosomes that are circularly permuted and about 13% terminally redundant. We also show that its packaging series initiates with double-stranded DNA cleavages that are scattered across a 170-bp region and that its headful measuring device has a precision of ±1.8%.IMPORTANCE The 9NA-like phages are clearly highly related to each other but are not closely related to any other known phage type. This work describes the genomes of three new 9NA-like phages and the results of experimental analysis of the proteome of the 9NA virion and DNA packaging into the 9NA phage head. There is increasing interest in the biology of phages because of their potential for use as antibacterial agents and for their ecological roles in bacterial communities. 9NA-like phages that infect two bacterial genera have been identified to date, and related phages infecting additional Gram-negative bacterial hosts are likely to be found in the future. This work provides a foundation for the study of these phages, which will facilitate their study and potential use.
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8
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Abstract
Klebsiella pneumoniae is a Gram-negative opportunistic pathogen and a leading cause of antibiotic-resistant nosocomial infections. The genome sequence of siphophage Skenny, which infects K. pneumoniae, is described here. Skenny encodes 78 genes and is closely related to Klebsiella phages KPN N141 and MezzoGao, which are T1-like phages.
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9
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The Revisited Genome of Bacillus subtilis Bacteriophage SPP1. Viruses 2018; 10:v10120705. [PMID: 30544981 PMCID: PMC6316719 DOI: 10.3390/v10120705] [Citation(s) in RCA: 12] [Impact Index Per Article: 2.0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 10/23/2018] [Revised: 12/06/2018] [Accepted: 12/06/2018] [Indexed: 02/05/2023] Open
Abstract
Bacillus subtilis bacteriophage SPP1 is a lytic siphovirus first described 50 years ago [1]. Its complete DNA sequence was reported in 1997 [2]. Here we present an updated annotation of the 44,016 bp SPP1 genome and its correlation to different steps of the viral multiplication process. Five early polycistronic transcriptional units encode phage DNA replication proteins and lysis functions together with less characterized, mostly non-essential, functions. Late transcription drives synthesis of proteins necessary for SPP1 viral particles assembly and for cell lysis, together with a short set of proteins of unknown function. The extensive genetic, biochemical and structural biology studies on the molecular mechanisms of SPP1 DNA replication and phage particle assembly rendered it a model system for tailed phages research. We propose SPP1 as the reference species for a new SPP1-like viruses genus of the Siphoviridae family.
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10
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Merrill BD, Fajardo CP, Hilton JA, Payne AM, Ward AT, Walker JK, Dhalai A, Imahara C, Mangohig J, Monk J, Pascacio C, Rai P, Salisbury A, Velez K, Bloomfield TJ, Buhler B, Duncan SG, Fuhriman DA, George J, Graves K, Heaton K, Hill HL, Kim M, Knabe BK, Ririe DB, Rogers SL, Stamereilers C, Stephenson MB, Usher BK, Ward CS, Withers JM, Wright CK, Breakwell DP, Grose JH, Hope S, Tsourkas PK. Complete Genome Sequences of 18 Paenibacillus larvae Phages from the Western United States. Microbiol Resour Announc 2018; 7:e00966-18. [PMID: 30533693 PMCID: PMC6256562 DOI: 10.1128/mra.00966-18] [Citation(s) in RCA: 4] [Impact Index Per Article: 0.7] [Reference Citation Analysis] [Abstract] [Grants] [Track Full Text] [Download PDF] [Journal Information] [Subscribe] [Scholar Register] [Received: 08/06/2018] [Accepted: 09/05/2018] [Indexed: 11/28/2022] Open
Abstract
We present here the complete genomes of 18 phages that infect Paenibacillus larvae, the causative agent of American foulbrood in honeybees. The phages were isolated between 2014 and 2016 as part of an undergraduate phage discovery course at Brigham Young University. The phages were isolated primarily from bee debris and lysogens.
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Affiliation(s)
- Bryan D. Merrill
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Christopher P. Fajardo
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Jared A. Hilton
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Ashley M. Payne
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Andy T. Ward
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Jamison K. Walker
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Aziza Dhalai
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Cameron Imahara
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - James Mangohig
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Josh Monk
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Cristian Pascacio
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Padmani Rai
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Alicia Salisbury
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Kathie Velez
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Travis J. Bloomfield
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Brett Buhler
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Steven G. Duncan
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - David A. Fuhriman
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Josil George
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Kiel Graves
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Karli Heaton
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Hunter L. Hill
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Michelle Kim
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Bradley K. Knabe
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Devin B. Ririe
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Spencer L. Rogers
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | | | - Michael B. Stephenson
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Brittian K. Usher
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Colton S. Ward
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Jacob M. Withers
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Cole K. Wright
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Donald P. Breakwell
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Julianne H. Grose
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Sandra Hope
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
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11
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Yost DG, Chang C, LeBlanc L, Cassin E, Peterman C, Rai P, Salisbury A, Barroga N, Cisneros R, Fersini J, Juste J, Ines J, Leyva G, Macalinao D, Muscelli S, Reyes GS, Rhoden H, Tan R, Torres E, Tran K, Uriarte-Valle G, Wallace C, Wong S, Ayala-Pineda K, Cadiz V, Jeanite T, Nhan S, Grose JH, Strong C, Amy PS, Tsourkas PK. Complete Genome Sequences of Paenibacillus larvae Phages Halcyone, Heath, Scottie, and Unity from Las Vegas, Nevada. Microbiol Resour Announc 2018; 7:e00977-18. [PMID: 30533661 PMCID: PMC6256684 DOI: 10.1128/mra.00977-18] [Citation(s) in RCA: 9] [Impact Index Per Article: 1.5] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Journal Information] [Subscribe] [Scholar Register] [Received: 08/07/2018] [Accepted: 08/31/2018] [Indexed: 11/20/2022] Open
Abstract
We present the complete genome sequences of four phages that infect Paenibacillus larvae, the causative agent of American foulbrood disease in honeybees. The phages were isolated from beehives and beeswax products from Las Vegas, Nevada. The genomes are 50 to 55 kbp long and use the "direct terminal repeats" DNA-packaging strategy.
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Affiliation(s)
- Diane G. Yost
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Carolyn Chang
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Lucy LeBlanc
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Erin Cassin
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Ceara Peterman
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Padmani Rai
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Alicia Salisbury
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Nicolas Barroga
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Ramiro Cisneros
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Joseph Fersini
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Jonathan Juste
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Juvie Ines
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Gabriel Leyva
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Dyanne Macalinao
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Spencer Muscelli
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Gustavo S. Reyes
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Heather Rhoden
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Rodney Tan
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Erika Torres
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Krystal Tran
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | | | | | - Simon Wong
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | | | - Vanessa Cadiz
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Tiffany Jeanite
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Sophia Nhan
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Julianne H. Grose
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Christy Strong
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Penny S. Amy
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
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12
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Stamereilers C, Fajardo CP, Walker JK, Mendez KN, Castro-Nallar E, Grose JH, Hope S, Tsourkas PK. Genomic Analysis of 48 Paenibacillus larvae Bacteriophages. Viruses 2018; 10:E377. [PMID: 30029517 PMCID: PMC6070908 DOI: 10.3390/v10070377] [Citation(s) in RCA: 17] [Impact Index Per Article: 2.8] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 06/29/2018] [Revised: 07/08/2018] [Accepted: 07/16/2018] [Indexed: 11/17/2022] Open
Abstract
The antibiotic-resistant bacterium Paenibacillus larvae is the causative agent of American foulbrood (AFB), currently the most destructive bacterial disease in honeybees. Phages that infect P. larvae were isolated as early as the 1950s, but it is only in recent years that P. larvae phage genomes have been sequenced and annotated. In this study we analyze the genomes of all 48 currently sequenced P. larvae phage genomes and classify them into four clusters and a singleton. The majority of P. larvae phage genomes are in the 38⁻45 kbp range and use the cohesive ends (cos) DNA-packaging strategy, while a minority have genomes in the 50⁻55 kbp range that use the direct terminal repeat (DTR) DNA-packaging strategy. The DTR phages form a distinct cluster, while the cos phages form three clusters and a singleton. Putative functions were identified for about half of all phage proteins. Structural and assembly proteins are located at the front of the genome and tend to be conserved within clusters, whereas regulatory and replication proteins are located in the middle and rear of the genome and are not conserved, even within clusters. All P. larvae phage genomes contain a conserved N-acetylmuramoyl-l-alanine amidase that serves as an endolysin.
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Affiliation(s)
- Casey Stamereilers
- School of Life Sciences, University of Nevada Las Vegas, Las Vegas, NV 89154, USA.
| | - Christopher P Fajardo
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, UT 84602, USA.
| | - Jamison K Walker
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, UT 84602, USA.
| | - Katterinne N Mendez
- Center for Bioinformatics and Integrative Biology, Faculty of the Life Sciences, Universidad Andres Bello, Santiago 8370186, Chile.
| | - Eduardo Castro-Nallar
- Center for Bioinformatics and Integrative Biology, Faculty of the Life Sciences, Universidad Andres Bello, Santiago 8370186, Chile.
| | - Julianne H Grose
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, UT 84602, USA.
| | - Sandra Hope
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, UT 84602, USA.
| | - Philippos K Tsourkas
- School of Life Sciences, University of Nevada Las Vegas, Las Vegas, NV 89154, USA.
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13
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Walker JK, Merrill BD, Berg JA, Dhalai A, Dingman DW, Fajardo CP, Graves K, Hill HL, Hilton JA, Imahara C, Knabe BK, Mangohig J, Monk J, Mun H, Payne AM, Salisbury A, Stamereilers C, Velez K, Ward AT, Breakwell DP, Grose JH, Hope S, Tsourkas PK. Complete Genome Sequences of Paenibacillus larvae Phages BN12, Dragolir, Kiel007, Leyra, Likha, Pagassa, PBL1c, and Tadhana. GENOME ANNOUNCEMENTS 2018; 6:e01602-17. [PMID: 29903825 PMCID: PMC6003738 DOI: 10.1128/genomea.01602-17] [Citation(s) in RCA: 11] [Impact Index Per Article: 1.8] [Reference Citation Analysis] [Abstract] [Grants] [Track Full Text] [Download PDF] [Subscribe] [Scholar Register] [Received: 01/03/2018] [Accepted: 05/08/2018] [Indexed: 11/25/2022]
Abstract
We present here the complete genomes of eight phages that infect Paenibacillus larvae, the causative agent of American foulbrood in honeybees. Phage PBL1c was originally isolated in 1984 from a P. larvae lysogen, while the remaining phages were isolated in 2014 from bee debris, honeycomb, and lysogens from three states in the USA.
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Affiliation(s)
- Jamison K Walker
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Bryan D Merrill
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Jordan A Berg
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Aziza Dhalai
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Douglas W Dingman
- Department of Entomology, Connecticut Agricultural Experiment Station, New Haven, Connecticut, USA
| | - Chris P Fajardo
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Kiel Graves
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Hunter L Hill
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Jared A Hilton
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Cameron Imahara
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Bradley K Knabe
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - James Mangohig
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Josh Monk
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Heejin Mun
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Ashley M Payne
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Alicia Salisbury
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | | | - Kathie Velez
- School of Life Sciences, University of Nevada, Las Vegas, Nevada, USA
| | - Andy T Ward
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Donald P Breakwell
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Julianne H Grose
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
| | - Sandra Hope
- Department of Microbiology and Molecular Biology, Brigham Young University, Provo, Utah, USA
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14
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Identification and Analysis of a Novel Group of Bacteriophages Infecting the Lactic Acid Bacterium Streptococcus thermophilus. Appl Environ Microbiol 2016; 82:5153-65. [PMID: 27316953 DOI: 10.1128/aem.00835-16] [Citation(s) in RCA: 47] [Impact Index Per Article: 5.9] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 03/15/2016] [Accepted: 06/09/2016] [Indexed: 01/18/2023] Open
Abstract
UNLABELLED We present the complete genome sequences of four members of a novel group of phages infecting Streptococcus thermophilus, designated here as the 987 group. Members of this phage group appear to have resulted from genetic exchange events, as evidenced by their "hybrid" genomic architecture, exhibiting DNA sequence relatedness to the morphogenesis modules of certain P335 group Lactococcus lactis phages and to the replication modules of S. thermophilus phages. All four identified members of the 987 phage group were shown to elicit adsorption affinity to both their cognate S. thermophilus hosts and a particular L. lactis starter strain. The receptor binding protein of one of these phages (as a representative of this novel group) was defined using an adsorption inhibition assay. The emergence of a novel phage group infecting S. thermophilus highlights the continuous need for phage monitoring and development of new phage control measures. IMPORTANCE Phage predation of S. thermophilus is an important issue for the dairy industry, where viral contamination can lead to fermentation inefficiency or complete fermentation failure. Genome information and phage-host interaction studies of S. thermophilus phages, particularly those emerging in the marketplace, are an important part of limiting the detrimental impact of these viruses in the dairy environment.
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15
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Atkins JF, Loughran G, Bhatt PR, Firth AE, Baranov PV. Ribosomal frameshifting and transcriptional slippage: From genetic steganography and cryptography to adventitious use. Nucleic Acids Res 2016; 44:7007-78. [PMID: 27436286 PMCID: PMC5009743 DOI: 10.1093/nar/gkw530] [Citation(s) in RCA: 170] [Impact Index Per Article: 21.3] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 03/21/2016] [Accepted: 05/26/2016] [Indexed: 12/15/2022] Open
Abstract
Genetic decoding is not ‘frozen’ as was earlier thought, but dynamic. One facet of this is frameshifting that often results in synthesis of a C-terminal region encoded by a new frame. Ribosomal frameshifting is utilized for the synthesis of additional products, for regulatory purposes and for translational ‘correction’ of problem or ‘savior’ indels. Utilization for synthesis of additional products occurs prominently in the decoding of mobile chromosomal element and viral genomes. One class of regulatory frameshifting of stable chromosomal genes governs cellular polyamine levels from yeasts to humans. In many cases of productively utilized frameshifting, the proportion of ribosomes that frameshift at a shift-prone site is enhanced by specific nascent peptide or mRNA context features. Such mRNA signals, which can be 5′ or 3′ of the shift site or both, can act by pairing with ribosomal RNA or as stem loops or pseudoknots even with one component being 4 kb 3′ from the shift site. Transcriptional realignment at slippage-prone sequences also generates productively utilized products encoded trans-frame with respect to the genomic sequence. This too can be enhanced by nucleic acid structure. Together with dynamic codon redefinition, frameshifting is one of the forms of recoding that enriches gene expression.
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Affiliation(s)
- John F Atkins
- School of Biochemistry and Cell Biology, University College Cork, Cork, Ireland School of Microbiology, University College Cork, Cork, Ireland Department of Human Genetics, University of Utah, Salt Lake City, UT 84112, USA
| | - Gary Loughran
- School of Biochemistry and Cell Biology, University College Cork, Cork, Ireland
| | - Pramod R Bhatt
- School of Biochemistry and Cell Biology, University College Cork, Cork, Ireland
| | - Andrew E Firth
- Division of Virology, Department of Pathology, University of Cambridge, Hills Road, Cambridge CB2 0QQ, UK
| | - Pavel V Baranov
- School of Biochemistry and Cell Biology, University College Cork, Cork, Ireland
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16
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Christie GE, Calendar R. Bacteriophage P2. BACTERIOPHAGE 2016; 6:e1145782. [PMID: 27144088 DOI: 10.1080/21597081.2016.1145782] [Citation(s) in RCA: 41] [Impact Index Per Article: 5.1] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 10/13/2015] [Revised: 01/13/2016] [Accepted: 01/14/2016] [Indexed: 10/22/2022]
Abstract
P2 is the original member of a highly successful family of temperate phages that are frequently found in the genomes of gram-negative bacteria. This article focuses on the organization of the P2 genome and reviews current knowledge about the function of each open reading frame.
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Affiliation(s)
- Gail E Christie
- Department of Microbiology and Immunology, Virginia Commonwealth University School of Medicine , Richmond, VA, USA
| | - Richard Calendar
- Department of Molecular and Cell Biology, University of California , Berkeley, CA, USA
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17
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Mahony J, Stockdale SR, Collins B, Spinelli S, Douillard FP, Cambillau C, van Sinderen D. Lactococcus lactis phage TP901-1 as a model for Siphoviridae virion assembly. BACTERIOPHAGE 2016; 6:e1123795. [PMID: 27144086 DOI: 10.1080/21597081.2015.1123795] [Citation(s) in RCA: 13] [Impact Index Per Article: 1.6] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 08/18/2015] [Revised: 11/13/2015] [Accepted: 11/17/2015] [Indexed: 12/28/2022]
Abstract
Phages infecting Lactococcus lactis pose a serious threat to the dairy fermentation sector. Consequently, they are among the most thoroughly characterized Gram positive-infecting phages. The majority of lactococcal phages belong to the tailed family of phages named the Siphoviridae. The coliphage lambda and the Bacillus subtilis phage SPP1 have been the predominant comparators for emerging siphophages both genomically and structurally and both phages recognize a membrane protein receptor. In contrast, the lactococcal P335 group phage TP901-1 attaches to cell wall surface polysaccharides. It is a typical "lambdoid" siphophage possessing a long non-contractile tail and a genomic architecture reminiscent of lambda and SPP1 despite low or undetectable sequence homology in many of its encoded products, especially those involved in host recognition. A functional analysis of the structural components of TP901-1 was undertaken based on the characterization of a series of mutants in the region encoding the capsid and tail morphogenetic elements. Through this analysis, it was possible to deduce that, despite the lack of sequence homology, the overall genomic architecture of Siphoviridae phages typified by functional synteny is conserved. Furthermore, a model of the TP901-1 assembly pathway was developed with potential implications for many tailed phages.
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Affiliation(s)
- Jennifer Mahony
- School of Microbiology, University College Cork , Cork, Ireland
| | - Stephen R Stockdale
- School of Microbiology, University College Cork, Cork, Ireland; APC Microbiome Institute, University College Cork, Cork, Ireland
| | - Barry Collins
- School of Microbiology, University College Cork , Cork, Ireland
| | - Silvia Spinelli
- Aix-Marseille Université, Architecture et Fonction des Macromolécules Biologiques, Campus de Luminy , Marseille Cedex, France
| | | | - Christian Cambillau
- Aix-Marseille Université, Architecture et Fonction des Macromolécules Biologiques, Campus de Luminy, Marseille Cedex, France; Centre National de la Recherche Scientifique, AFMB, Campus de Luminy, Marseille Cedex, France
| | - Douwe van Sinderen
- School of Microbiology, University College Cork, Cork, Ireland; APC Microbiome Institute, University College Cork, Cork, Ireland
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18
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Hoyles L, Murphy J, Neve H, Heller KJ, Turton JF, Mahony J, Sanderson JD, Hudspith B, Gibson GR, McCartney AL, van Sinderen D. Klebsiella pneumoniae subsp. pneumoniae-bacteriophage combination from the caecal effluent of a healthy woman. PeerJ 2015; 3:e1061. [PMID: 26246963 PMCID: PMC4525690 DOI: 10.7717/peerj.1061] [Citation(s) in RCA: 29] [Impact Index Per Article: 3.2] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/03/2015] [Accepted: 06/06/2015] [Indexed: 12/17/2022] Open
Abstract
A sample of caecal effluent was obtained from a female patient who had undergone a routine colonoscopic examination. Bacteria were isolated anaerobically from the sample, and screened against the remaining filtered caecal effluent in an attempt to isolate bacteriophages (phages). A lytic phage, named KLPN1, was isolated on a strain identified as Klebsiella pneumoniae subsp. pneumoniae (capsular type K2, rmpA (+)). This Siphoviridae phage presents a rosette-like tail tip and exhibits depolymerase activity, as demonstrated by the formation of plaque-surrounding haloes that increased in size over the course of incubation. When screened against a panel of clinical isolates of K. pneumoniae subsp. pneumoniae, phage KLPN1 was shown to infect and lyse capsular type K2 strains, though it did not exhibit depolymerase activity on such hosts. The genome of KLPN1 was determined to be 49,037 bp (50.53 %GC) in length, encompassing 73 predicted ORFs, of which 23 represented genes associated with structure, host recognition, packaging, DNA replication and cell lysis. On the basis of sequence analyses, phages KLPN1 (GenBank: KR262148) and 1513 (a member of the family Siphoviridae, GenBank: KP658157) were found to be two new members of the genus "Kp36likevirus."
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Affiliation(s)
- Lesley Hoyles
- School of Microbiology, University College Cork, Cork, Ireland.,Department of Biomedical Sciences, University of Westminster, London, United Kingdom
| | - James Murphy
- School of Microbiology, University College Cork, Cork, Ireland
| | - Horst Neve
- Max Rubner-Institut (MRI), Institute of Microbiology and Biotechnology (MBT), Kiel, Germany
| | - Knut J Heller
- Max Rubner-Institut (MRI), Institute of Microbiology and Biotechnology (MBT), Kiel, Germany
| | - Jane F Turton
- Antimicrobial Resistance and Healthcare Associated Infections Reference Unit, Public Health England-Colindale, London, United Kingdom
| | - Jennifer Mahony
- School of Microbiology, University College Cork, Cork, Ireland
| | - Jeremy D Sanderson
- Department of Gastroenterology, Guy's and St Thomas' NHS Foundation Trust and King's College London, London, United Kingdom
| | - Barry Hudspith
- Department of Gastroenterology, Guy's and St Thomas' NHS Foundation Trust and King's College London, London, United Kingdom
| | - Glenn R Gibson
- Food Microbial Sciences Unit, Department of Food and Nutritional Sciences, University of Reading, Reading, Berkshire, United Kingdom
| | - Anne L McCartney
- Food Microbial Sciences Unit, Department of Food and Nutritional Sciences, University of Reading, Reading, Berkshire, United Kingdom
| | - Douwe van Sinderen
- School of Microbiology, University College Cork, Cork, Ireland.,Alimentary Pharmabiotic Centre, University College Cork, Cork, Ireland
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19
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Structure and Assembly of TP901-1 Virion Unveiled by Mutagenesis. PLoS One 2015; 10:e0131676. [PMID: 26147978 PMCID: PMC4493119 DOI: 10.1371/journal.pone.0131676] [Citation(s) in RCA: 18] [Impact Index Per Article: 2.0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 02/03/2015] [Accepted: 06/04/2015] [Indexed: 11/29/2022] Open
Abstract
Bacteriophages of the Siphoviridae family represent the most abundant viral morphology in the biosphere, yet many molecular aspects of their virion structure, assembly and associated functions remain to be unveiled. In this study, we present a comprehensive mutational and molecular analysis of the temperate Lactococcus lactis-infecting phage TP901-1. Fourteen mutations located within the structural module of TP901-1 were created; twelve mutations were designed to prevent full length translation of putative proteins by non-sense mutations, while two additional mutations caused aberrant protein production. Electron microscopy and Western blot analysis of mutant virion preparations, as well as in vitro assembly of phage mutant combinations, revealed the essential nature of many of the corresponding gene products and provided information on their biological function(s). Based on the information obtained, we propose a functional and assembly model of the TP901-1 Siphoviridae virion.
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20
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Casjens SR, Hendrix RW. Bacteriophage lambda: Early pioneer and still relevant. Virology 2015; 479-480:310-30. [PMID: 25742714 PMCID: PMC4424060 DOI: 10.1016/j.virol.2015.02.010] [Citation(s) in RCA: 182] [Impact Index Per Article: 20.2] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 12/09/2014] [Revised: 01/13/2015] [Accepted: 02/05/2015] [Indexed: 12/14/2022]
Abstract
Molecular genetic research on bacteriophage lambda carried out during its golden age from the mid-1950s to mid-1980s was critically important in the attainment of our current understanding of the sophisticated and complex mechanisms by which the expression of genes is controlled, of DNA virus assembly and of the molecular nature of lysogeny. The development of molecular cloning techniques, ironically instigated largely by phage lambda researchers, allowed many phage workers to switch their efforts to other biological systems. Nonetheless, since that time the ongoing study of lambda and its relatives has continued to give important new insights. In this review we give some relevant early history and describe recent developments in understanding the molecular biology of lambda's life cycle.
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Affiliation(s)
- Sherwood R Casjens
- Division of Microbiology and Immunology, Pathology Department, University of Utah School of Medicine, Emma Eccles Jones Medical Research Building, 15 North Medical Drive East, Salt Lake City, UT 84112, USA; Biology Department, University of Utah, Salt Lake City, UT 84112, USA.
| | - Roger W Hendrix
- Department of Biological Sciences, University of Pittsburgh, Pittsburgh, PA 15260, USA
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21
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A proposed new bacteriophage subfamily: “Jerseyvirinae”. Arch Virol 2015; 160:1021-33. [DOI: 10.1007/s00705-015-2344-z] [Citation(s) in RCA: 15] [Impact Index Per Article: 1.7] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 10/15/2014] [Accepted: 01/17/2015] [Indexed: 01/21/2023]
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22
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Gueguen E, Wills NM, Atkins JF, Cascales E. Transcriptional frameshifting rescues Citrobacter rodentium type VI secretion by the production of two length variants from the prematurely interrupted tssM gene. PLoS Genet 2014; 10:e1004869. [PMID: 25474156 PMCID: PMC4256274 DOI: 10.1371/journal.pgen.1004869] [Citation(s) in RCA: 11] [Impact Index Per Article: 1.1] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 11/26/2013] [Accepted: 11/03/2014] [Indexed: 11/30/2022] Open
Abstract
The Type VI secretion system (T6SS) mediates toxin delivery into both eukaryotic and prokaryotic cells. It is composed of a cytoplasmic structure resembling the tail of contractile bacteriophages anchored to the cell envelope through a membrane complex composed of the TssL and TssM inner membrane proteins and of the TssJ outer membrane lipoprotein. The C-terminal domain of TssM is required for its interaction with TssJ, and for the function of the T6SS. In Citrobacter rodentium, the tssM1 gene does not encode the C-terminal domain. However, the stop codon is preceded by a run of 11 consecutive adenosines. In this study, we demonstrate that this poly-A tract is a transcriptional slippery site that induces the incorporation of additional adenosines, leading to frameshifting, and hence the production of two TssM1 variants, including a full-length canonical protein. We show that both forms of TssM1, and the ratio between these two forms, are required for the function of the T6SS in C. rodentium. Finally, we demonstrate that the tssM gene associated with the Yersinia pseudotuberculosis T6SS-3 gene cluster is also subjected to transcriptional frameshifting. Nonstandard decoding mechanisms lead to the synthesis of different protein variants from a single DNA sequence. These mechanisms are particularly important when the genome length has to be limited such as viral genomes, limited by the available space in the capsid, or to synthesize two different polypeptides that have distinct functional properties. Here, we report that tssM, a gene encoded within the Citrobacter rodentium Type VI secretion (T6S) gene cluster, is interrupted by a premature stop codon; however, the stop codon is preceded by a slippery site constituted by 11 consecutive adenosines. Reiterative transcription leads to the incorporation of additional nucleotides in the mRNA and therefore restores the original framing. As a consequence, two different TssM variants are created by transcriptional frameshifting, including a full-length 130-kDa protein and an 88-kDa truncated variant. We further show that both forms, and the ratio between these two forms, are required for the function of the transport apparatus. Interestingly, a similar mechanism regulates the synthesis of two TssM variants in Yersinia pseudotuberculosis.
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Affiliation(s)
- Erwan Gueguen
- Laboratoire d'Ingénierie des Systèmes Macromoléculaires (LISM), Institut de Microbiologie de la Méditerranée, CNRS – Aix-Marseille Université, UMR 7255, Marseille, France
- * E-mail: (EG); (EC)
| | - Norma M. Wills
- Department of Human Genetics, University of Utah, Salt Lake City, Utah, United States of America
| | - John F. Atkins
- Department of Human Genetics, University of Utah, Salt Lake City, Utah, United States of America
- Departments of Biochemistry and Microbiology, University College Cork, Cork, Ireland
| | - Eric Cascales
- Laboratoire d'Ingénierie des Systèmes Macromoléculaires (LISM), Institut de Microbiologie de la Méditerranée, CNRS – Aix-Marseille Université, UMR 7255, Marseille, France
- * E-mail: (EG); (EC)
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23
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Senčilo A, Luhtanen AM, Saarijärvi M, Bamford DH, Roine E. Cold-active bacteriophages from the Baltic Sea ice have diverse genomes and virus-host interactions. Environ Microbiol 2014; 17:3628-41. [PMID: 25156651 DOI: 10.1111/1462-2920.12611] [Citation(s) in RCA: 24] [Impact Index Per Article: 2.4] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/08/2014] [Accepted: 08/20/2014] [Indexed: 11/28/2022]
Abstract
Heterotrophic bacteria are the major prokaryotic component of the Baltic Sea ice microbiome, and it is postulated that phages are among their major parasites. In this study, we sequenced the complete genomes of six earlier reported phage isolates from the Baltic Sea ice infecting Shewanella sp. and Flavobacterium sp. hosts as well as characterized the phage-host interactions. Based on the genome sequences, the six phages were classified into five new genera. Only two phages, 1/4 and 1/40, both infecting Shewanella sp. strains, showed significant nucleotide sequence similarity to each other and could be grouped into the same genus. These two phages are also related to Vibrio-specific phages sharing approximately 25% of the predicted gene products. Nevertheless, cross-titrations showed that the cold-active phages studied are host specific: none of the seven additionally tested, closely related Shewanella strains served as hosts for the phages. Adsorption experiments of two Shewanella phages, 1/4 and 3/49, conducted at 4 °C and at 15 °C revealed relatively fast adsorption rates that are, for example, comparable with those of phages infective in mesophilic conditions. Despite the small number of Shewanella phages characterized here, we could already find different types of phage-host interactions including a putative abortive infection.
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Affiliation(s)
- Ana Senčilo
- Department of Biosciences, University of Helsinki, P.O. Box 56, Viikinkaari 5, Helsinki, FI-00014, Finland.,Institute of Biotechnology, University of Helsinki, P.O. Box 56, Viikinkaari 5, Helsinki, FI-00014, Finland
| | - Anne-Mari Luhtanen
- Department of Biosciences, University of Helsinki, P.O. Box 56, Viikinkaari 5, Helsinki, FI-00014, Finland.,Finnish Environmental Institute, Marine Research Center, Erik Palménin Aukio 1, Helsinki, FI-00560, Finland.,Tvärminne Zoological Station, University of Helsinki, J.A. Palménin Tie 260, Hanko, 10900, Finland
| | - Mikko Saarijärvi
- Department of Biosciences, University of Helsinki, P.O. Box 56, Viikinkaari 5, Helsinki, FI-00014, Finland
| | - Dennis H Bamford
- Department of Biosciences, University of Helsinki, P.O. Box 56, Viikinkaari 5, Helsinki, FI-00014, Finland.,Institute of Biotechnology, University of Helsinki, P.O. Box 56, Viikinkaari 5, Helsinki, FI-00014, Finland
| | - Elina Roine
- Department of Biosciences, University of Helsinki, P.O. Box 56, Viikinkaari 5, Helsinki, FI-00014, Finland.,Institute of Biotechnology, University of Helsinki, P.O. Box 56, Viikinkaari 5, Helsinki, FI-00014, Finland
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24
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Insights into bacteriophage T5 structure from analysis of its morphogenesis genes and protein components. J Virol 2013; 88:1162-74. [PMID: 24198424 DOI: 10.1128/jvi.02262-13] [Citation(s) in RCA: 61] [Impact Index Per Article: 5.5] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 02/04/2023] Open
Abstract
Bacteriophage T5 represents a large family of lytic Siphoviridae infecting Gram-negative bacteria. The low-resolution structure of T5 showed the T=13 geometry of the capsid and the unusual trimeric organization of the tail tube, and the assembly pathway of the capsid was established. Although major structural proteins of T5 have been identified in these studies, most of the genes encoding the morphogenesis proteins remained to be identified. Here, we combine a proteomic analysis of T5 particles with a bioinformatic study and electron microscopic immunolocalization to assign function to the genes encoding the structural proteins, the packaging proteins, and other nonstructural components required for T5 assembly. A head maturation protease that likely accounts for the cleavage of the different capsid proteins is identified. Two other proteins involved in capsid maturation add originality to the T5 capsid assembly mechanism: the single head-to-tail joining protein, which closes the T5 capsid after DNA packaging, and the nicking endonuclease responsible for the single-strand interruptions in the T5 genome. We localize most of the tail proteins that were hitherto uncharacterized and provide a detailed description of the tail tip composition. Our findings highlight novel variations of viral assembly strategies and of virion particle architecture. They further recommend T5 for exploring phage structure and assembly and for deciphering conformational rearrangements that accompany DNA transfer from the capsid to the host cytoplasm.
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25
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Chaperone-protein interactions that mediate assembly of the bacteriophage lambda tail to the correct length. J Mol Biol 2013; 426:1004-18. [PMID: 23911548 DOI: 10.1016/j.jmb.2013.06.040] [Citation(s) in RCA: 47] [Impact Index Per Article: 4.3] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/24/2013] [Revised: 06/21/2013] [Accepted: 06/30/2013] [Indexed: 11/22/2022]
Abstract
Bacteriophage λ makes two proteins with overlapping amino acid sequences that are essential for tail assembly. These two proteins, gpG and gpGT, are related by a programmed translational frameshift that is conserved among diverse phages and functions in λ to ensure that gpG and the frameshift product gpGT are made in a molar ratio of approximately 30:1. Although both proteins are required and must be present in the correct ratio for assembly of functional tails, neither is present in mature tails. During λ tail assembly, major tail protein gpV polymerizes to form a long tube whose length is controlled by the tape measure protein gpH. We show that the "G" domains of gpG and gpGT bind to all or parts of tail length tape measure protein gpH and that the "T" domain of gpGT binds to major tail shaft subunit gpV, and present a model for how gpG and gpGT chaperone gpH and direct the polymerization of gpV to form a tail of the correct length.
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