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1.
Viruses ; 16(4)2024 Apr 21.
Article in English | MEDLINE | ID: mdl-38675985

ABSTRACT

The phage PRR1 belongs to the Leviviridae family, a group of ssRNA bacteriophages that infect Gram-negative bacteria. The variety of host cells is determined by the specificity of PRR1 to a pilus encoded by a broad host range of IncP-type plasmids that confer multiple types of antibiotic resistance to the host. Using P. aeruginosa strain PAO1 as a host, we analyzed the PRR1 infection cycle, focusing on cell lysis. PRR1 infection renders P. aeruginosa cells sensitive to lysozyme approximately 20 min before the start of a drop in suspension turbidity. At the same time, infected cells start to accumulate lipophilic anions. The on-line monitoring of the entire infection cycle showed that single-gene-mediated lysis strongly depends on the host cells' physiological state. The blockage of respiration or a reduction in the intracellular ATP concentration during the infection resulted in the inhibition of lysis. The same effect was observed when the synthesis of PRR1 lysis protein was induced in an E. coli expression system. In addition, lysis was strongly dependent on the level of aeration. Dissolved oxygen concentrations sufficient to support cell growth did not ensure efficient lysis, and a coupling between cell lysis initiation and aeration level was observed. However, the duration of the drop in suspension turbidity did not depend on the level of aeration.


Subject(s)
Bacteriolysis , Pseudomonas aeruginosa , Pseudomonas aeruginosa/virology , Pseudomonas aeruginosa/physiology , Pseudomonas aeruginosa/genetics , Pseudomonas Phages/physiology , Pseudomonas Phages/genetics , Bacteriophages/physiology , Bacteriophages/genetics , Escherichia coli/virology , Escherichia coli/genetics , Host Specificity , Muramidase/metabolism
2.
Biochem Biophys Res Commun ; 712-713: 149915, 2024 Jun 18.
Article in English | MEDLINE | ID: mdl-38663038

ABSTRACT

Viral infections pose a significant threat to public health, and the production of interferons represents one of the most critical antiviral innate immune responses of the host. Consequently, the screening and identification of compounds or reagents that induce interferon production are of paramount importance. This study commenced with the cultivation of host bacterium 15,597, followed by the infection of Escherichia coli with the MS2 bacteriophage. Utilizing the J2 capture technique, a class of dsRNA mixtures (MS2+15,597) was isolated from the E. coli infected with the MS2 bacteriophage. Subsequent investigations were conducted on the immunostimulatory activity of the MS2+15,597 mixture. The results indicated that the dsRNA mixtures (MS2+15,597) extracted from E. coli infected with the MS2 bacteriophage possess the capability to activate innate immunity, thereby inducing the production of interferon-ß. These dsRNA mixtures can activate the RIG-I and TLR3 pattern recognition receptors, stimulating the expression of interferon stimulatory factors 3/7, which in turn triggers the NF-κB signaling pathway, culminating in the cellular production of interferon-ß to achieve antiviral effects. This study offers novel insights and strategies for the development of broad-spectrum antiviral drugs, potentially providing new modalities for future antiviral therapies.


Subject(s)
Escherichia coli , Levivirus , RNA, Double-Stranded , Escherichia coli/virology , Escherichia coli/genetics , Escherichia coli/metabolism , RNA, Double-Stranded/metabolism , Humans , Levivirus/genetics , Toll-Like Receptor 3/metabolism , Toll-Like Receptor 3/genetics , Immunity, Innate , Interferon-beta/metabolism , Interferon-beta/genetics , NF-kappa B/metabolism , DEAD Box Protein 58/metabolism , DEAD Box Protein 58/genetics , Signal Transduction , Interferon Regulatory Factor-7/metabolism , Interferon Regulatory Factor-7/genetics , Receptors, Immunologic , Interferon Regulatory Factor-3/metabolism , Interferon Regulatory Factor-3/genetics
3.
Viruses ; 16(4)2024 Mar 22.
Article in English | MEDLINE | ID: mdl-38675830

ABSTRACT

The molecular mechanism of how the infecting DNA of bacteriophage T4 passes from the capsid through the bacterial cell wall and enters the cytoplasm is essentially unknown. After adsorption, the short tail fibers of the infecting phage extend from the baseplate and trigger the contraction of the tail sheath, leading to a puncturing of the outer membrane by the tail tip needle composed of the proteins gp5.4, gp5 and gp27. To explore the events that occur in the periplasm and at the inner membrane, we constructed T4 phages that have a modified gp27 in their tail tip with a His-tag. Shortly after infection with these phages, cells were chemically cross-linked and solubilized. The cross-linked products were affinity-purified on a nickel column and the co-purified proteins were identified by mass spectrometry, and we found that predominantly the inner membrane proteins DamX, SdhA and PpiD were cross-linked. The same partner proteins were identified when purified gp27 was added to Escherichia coli spheroplasts, suggesting a direct protein-protein interaction.


Subject(s)
Bacteriophage T4 , Escherichia coli , Bacteriophage T4/physiology , Bacteriophage T4/genetics , Bacteriophage T4/metabolism , Bacteriophage T4/chemistry , Escherichia coli/virology , Escherichia coli/genetics , Escherichia coli/metabolism , Cell Division , Escherichia coli Proteins/metabolism , Viral Proteins/metabolism , Viral Proteins/genetics
4.
Nature ; 629(8011): 410-416, 2024 May.
Article in English | MEDLINE | ID: mdl-38632404

ABSTRACT

Bacteria have adapted to phage predation by evolving a vast assortment of defence systems1. Although anti-phage immunity genes can be identified using bioinformatic tools, the discovery of novel systems is restricted to the available prokaryotic sequence data2. Here, to overcome this limitation, we infected Escherichia coli carrying a soil metagenomic DNA library3 with the lytic coliphage T4 to isolate clones carrying protective genes. Following this approach, we identified Brig1, a DNA glycosylase that excises α-glucosyl-hydroxymethylcytosine nucleobases from the bacteriophage T4 genome to generate abasic sites and inhibit viral replication. Brig1 homologues that provide immunity against T-even phages are present in multiple phage defence loci across distinct clades of bacteria. Our study highlights the benefits of screening unsequenced DNA and reveals prokaryotic DNA glycosylases as important players in the bacteria-phage arms race.


Subject(s)
Bacteriophage T4 , DNA Glycosylases , Escherichia coli , Escherichia coli/genetics , Escherichia coli/virology , DNA Glycosylases/metabolism , Bacteriophage T4/enzymology , Bacteriophage T4/genetics , Virus Replication , T-Phages/metabolism , T-Phages/genetics , Genome, Viral/genetics , Soil Microbiology , Metagenomics , Phylogeny
5.
Poult Sci ; 103(5): 103643, 2024 May.
Article in English | MEDLINE | ID: mdl-38537406

ABSTRACT

Understanding the characteristics of bacteriophages is crucial for the optimization of phage therapy. In this study, the biological and genomic characteristics of coliphage LHE83 were determined and its synergistic effects with different types of antibiotics against E. coli E82 were investigated. Phage LHE83 displayed a contractile tail morphology and had a titer of 3.02 × 109 pfu/mL at an optimal MOI of 0.01. Meanwhile, phage LHE83 exhibited good physical and chemical factors tolerance. The 1-step growth analysis revealed a latent period of approx. 10 min with a burst size of 87 pfu/infected cell. Phage LHE83 belongs to the genus Dhakavirus. Its genome consists of 170,464 bp with a 40% GC content, and a total of 268 Open Reading Frames (ORF) were predicted with no detected virulent or resistant genes. ORF 213 was predicted to encode the receptor binding protein (RBP) and confirmed by the antibody-blocking assay. Furthermore, a phage-resistant strain E. coli E82R was generated by co-culturing phage LHE83 with E. coli E82. Genomic analysis revealed that OmpA served as the receptor for phage LHE83, which was further confirmed by phage adsorption assay using E. coli BL21ΔOmpA, E. coli BL21ΔOmpA: OmpA and E. coli BL21:OmpA strains. Additionally, a synergistic effect was observed between phage LHE83 and spectinomycin against the drug-resistant strain E. coli E82. These results provide a theoretical basis for understanding the interactions between phages, antibiotics, and host bacteria, which can assist in the clinical application of phages and antibiotics against drug-resistant bacteria.


Subject(s)
Anti-Bacterial Agents , Bacterial Outer Membrane Proteins , Coliphages , Escherichia coli , Spectinomycin , Escherichia coli/virology , Escherichia coli/drug effects , Anti-Bacterial Agents/pharmacology , Bacterial Outer Membrane Proteins/genetics , Bacterial Outer Membrane Proteins/metabolism , Coliphages/physiology , Coliphages/genetics , Spectinomycin/pharmacology
6.
Nucleic Acids Res ; 52(8): 4659-4675, 2024 May 08.
Article in English | MEDLINE | ID: mdl-38554102

ABSTRACT

RexA and RexB function as an exclusion system that prevents bacteriophage T4rII mutants from growing on Escherichia coli λ phage lysogens. Recent data established that RexA is a non-specific DNA binding protein that can act independently of RexB to bias the λ bistable switch toward the lytic state, preventing conversion back to lysogeny. The molecular interactions underlying these activities are unknown, owing in part to a dearth of structural information. Here, we present the 2.05-Å crystal structure of the λ RexA dimer, which reveals a two-domain architecture with unexpected structural homology to the recombination-associated protein RdgC. Modelling suggests that our structure adopts a closed conformation and would require significant domain rearrangements to facilitate DNA binding. Mutagenesis coupled with electromobility shift assays, limited proteolysis, and double electron-electron spin resonance spectroscopy support a DNA-dependent conformational change. In vivo phenotypes of RexA mutants suggest that DNA binding is not a strict requirement for phage exclusion but may directly contribute to modulation of the bistable switch. We further demonstrate that RexA homologs from other temperate phages also dimerize and bind DNA in vitro. Collectively, these findings advance our mechanistic understanding of Rex functions and provide new evolutionary insights into different aspects of phage biology.


Subject(s)
Bacteriophage lambda , DNA-Binding Proteins , Models, Molecular , Viral Proteins , Bacteriophage lambda/genetics , Crystallography, X-Ray , Viral Proteins/metabolism , Viral Proteins/chemistry , Viral Proteins/genetics , DNA-Binding Proteins/chemistry , DNA-Binding Proteins/metabolism , DNA-Binding Proteins/genetics , Protein Binding , Protein Multimerization , DNA, Viral/genetics , DNA, Viral/metabolism , Mutation , Lysogeny , Escherichia coli/virology , Escherichia coli/genetics , Escherichia coli/metabolism , DNA/metabolism , DNA/chemistry
7.
J Mol Biol ; 436(4): 168423, 2024 02 15.
Article in English | MEDLINE | ID: mdl-38185325

ABSTRACT

In bacteriophage λ lysogens, the λcI repressor is encoded by the leaderless transcript (lmRNA) initiated at the λpRM promoter. Translation is enhanced in rpsB mutants deficient in ribosomal protein uS2. Although translation initiation of lmRNA is conserved in bacteria, archaea, and eukaryotes, structural insight of a lmRNA translation initiation complex is missing. Here, we use cryo-EM to solve the structures of the uS2-deficient 70S ribosome of host E. coli mutant rpsB11 and the wild-type 70S complex with λcI lmRNA and fMet-tRNAfMet. Importantly, the uS2-deficient 70S ribosome also lacks protein bS21. The anti-Shine-Dalgarno (aSD) region is structurally supported by bS21, so that the absence of the latter causes the aSD to divert from the normal mRNA exit pathway, easing the exit of lmRNA. A π-stacking interaction between the monitor base A1493 and A(+4) of lmRNA potentially acts as a recognition signal. Coulomb charge flow, along with peristalsis-like dynamics within the mRNA entrance channel due to the increased 30S head rotation caused by the absence of uS2, are likely to facilitate the propagation of lmRNA through the ribosome. These findings lay the groundwork for future research on the mechanism of translation and the co-evolution of lmRNA and mRNA that includes the emergence of a defined ribosome-binding site of the transcript.


Subject(s)
Bacteriophage lambda , Escherichia coli , Peptide Chain Initiation, Translational , RNA, Messenger , Repressor Proteins , Ribosome Subunits, Large, Bacterial , Viral Regulatory and Accessory Proteins , Escherichia coli/genetics , Escherichia coli/virology , Ribosomal Proteins/metabolism , RNA, Messenger/chemistry , RNA, Messenger/genetics , RNA, Messenger/metabolism , Bacteriophage lambda/genetics , Bacteriophage lambda/metabolism , Ribosome Subunits, Large, Bacterial/chemistry , Ribosome Subunits, Large, Bacterial/metabolism , Repressor Proteins/genetics , Viral Regulatory and Accessory Proteins/genetics
8.
Mol Cell ; 83(24): 4600-4613.e6, 2023 Dec 21.
Article in English | MEDLINE | ID: mdl-38096825

ABSTRACT

In response to the persistent exposure to phage infection, bacteria have evolved diverse antiviral defense mechanisms. In this study, we report a bacterial two-component defense system consisting of a Sir2 NADase and a HerA helicase. Cryo-electron microscopy reveals that Sir2 and HerA assemble into a ∼1 MDa supramolecular octadecamer. Unexpectedly, this complex exhibits various enzymatic activities, including ATPase, NADase, helicase, and nuclease, which work together in a sophisticated manner to fulfill the antiphage function. Therefore, we name this defense system "Nezha" after a divine warrior in Chinese mythology who employs multiple weapons to defeat enemies. Our findings demonstrate that Nezha could sense phage infections, self-activate to arrest cell growth, eliminate phage genomes, and subsequently deactivate to allow for cell recovery. Collectively, Nezha represents a paradigm of sophisticated and multifaceted strategies bacteria use to defend against viral infections.


Subject(s)
Caudovirales , Escherichia coli , Adenosine Triphosphatases , Cryoelectron Microscopy , DNA Helicases , NAD+ Nucleosidase , Escherichia coli/enzymology , Escherichia coli/virology
9.
Mol Cell ; 83(24): 4586-4599.e5, 2023 Dec 21.
Article in English | MEDLINE | ID: mdl-38096827

ABSTRACT

SIR2-HerA, a bacterial two-protein anti-phage defense system, induces bacterial death by depleting NAD+ upon phage infection. Biochemical reconstitution of SIR2, HerA, and the SIR2-HerA complex reveals a dynamic assembly process. Unlike other ATPases, HerA can form various oligomers, ranging from dimers to nonamers. When assembled with SIR2, HerA forms a hexamer and converts SIR2 from a nuclease to an NAD+ hydrolase, representing an unexpected regulatory mechanism mediated by protein assembly. Furthermore, high concentrations of ATP can inhibit NAD+ hydrolysis by the SIR2-HerA complex. Cryo-EM structures of the SIR2-HerA complex reveal a giant supramolecular assembly up to 1 MDa, with SIR2 as a dodecamer and HerA as a hexamer, crucial for anti-phage defense. Unexpectedly, the HerA hexamer resembles a spiral staircase and exhibits helicase activities toward dual-forked DNA. Together, we reveal the supramolecular assembly of SIR2-HerA as a unique mechanism for switching enzymatic activities and bolstering anti-phage defense strategies.


Subject(s)
Escherichia coli Proteins , Escherichia coli , Sirtuins , T-Phages , Adenosine Triphosphatases/genetics , Bacterial Proteins/genetics , NAD , Sirtuins/metabolism , Escherichia coli/enzymology , Escherichia coli/virology , Escherichia coli Proteins/metabolism
10.
Science ; 382(6671): 674-678, 2023 11 10.
Article in English | MEDLINE | ID: mdl-37943920

ABSTRACT

Interactions between species catalyze the evolution of multiscale ecological networks, including both nested and modular elements that regulate the function of diverse communities. One common assumption is that such complex pattern formation requires spatial isolation or long evolutionary timescales. We show that multiscale network structure can evolve rapidly under simple ecological conditions without spatial structure. In just 21 days of laboratory coevolution, Escherichia coli and bacteriophage Φ21 coevolve and diversify to form elaborate cross-infection networks. By measuring ~10,000 phage-bacteria infections and testing the genetic basis of interactions, we identify the mechanisms that create each component of the multiscale pattern. Our results demonstrate how multiscale networks evolve in parasite-host systems, illustrating Darwin's idea that simple adaptive processes can generate entangled banks of ecological interactions.


Subject(s)
Biological Coevolution , Coliphages , Escherichia coli , Host-Parasite Interactions , Coliphages/genetics , Escherichia coli/genetics , Escherichia coli/virology , Host-Parasite Interactions/genetics
11.
Nature ; 620(7976): 1054-1062, 2023 Aug.
Article in English | MEDLINE | ID: mdl-37587340

ABSTRACT

The mechanisms by which viruses hijack the genetic machinery of the cells they infect are of current interest. When bacteriophage T4 infects Escherichia coli, it uses three different adenosine diphosphate (ADP)-ribosyltransferases (ARTs) to reprogram the transcriptional and translational apparatus of the host by ADP-ribosylation using nicotinamide adenine dinucleotide (NAD) as a substrate1,2. NAD has previously been identified as a 5' modification of cellular RNAs3-5. Here we report that the T4 ART ModB accepts not only NAD but also NAD-capped RNA (NAD-RNA) as a substrate and attaches entire RNA chains to acceptor proteins in an 'RNAylation' reaction. ModB specifically RNAylates the ribosomal proteins rS1 and rL2 at defined Arg residues, and selected E. coli and T4 phage RNAs are linked to rS1 in vivo. T4 phages that express an inactive mutant of ModB have a decreased burst size and slowed lysis of E. coli. Our findings reveal a distinct biological role for NAD-RNA, namely the activation of the RNA for enzymatic transfer to proteins. The attachment of specific RNAs to ribosomal proteins might provide a strategy for the phage to modulate the host's translation machinery. This work reveals a direct connection between RNA modification and post-translational protein modification. ARTs have important roles far beyond viral infections6, so RNAylation may have far-reaching implications.


Subject(s)
ADP Ribose Transferases , Bacteriophage T4 , Escherichia coli Proteins , Escherichia coli , NAD , RNA , Viral Proteins , ADP Ribose Transferases/metabolism , Bacteriophage T4/enzymology , Bacteriophage T4/genetics , Bacteriophage T4/metabolism , Escherichia coli/genetics , Escherichia coli/metabolism , Escherichia coli/virology , NAD/metabolism , Ribosomal Proteins/chemistry , Ribosomal Proteins/metabolism , Viral Proteins/metabolism , Escherichia coli Proteins/chemistry , Escherichia coli Proteins/metabolism , RNA/chemistry , RNA/genetics , RNA/metabolism , Protein Biosynthesis , Gene Expression Regulation, Bacterial , Protein Processing, Post-Translational
12.
Science ; 381(6654): eadg9091, 2023 07 14.
Article in English | MEDLINE | ID: mdl-37440661

ABSTRACT

The historically important phage ΦX174 kills its host bacteria by encoding a 91-residue protein antibiotic called protein E. Using single-particle electron cryo-microscopy, we demonstrate that protein E bridges two bacterial proteins to form the transmembrane YES complex [MraY, protein E, sensitivity to lysis D (SlyD)]. Protein E inhibits peptidoglycan biosynthesis by obstructing the MraY active site leading to loss of lipid I production. We experimentally validate this result for two different viral species, providing a clear model for bacterial lysis and unifying previous experimental data. Additionally, we characterize the Escherichia coli MraY structure-revealing features of this essential enzyme-and the structure of the chaperone SlyD bound to a protein. Our structures provide insights into the mechanism of phage-mediated lysis and for structure-based design of phage therapeutics.


Subject(s)
Anti-Bacterial Agents , Bacteriolysis , Bacteriophage phi X 174 , Escherichia coli Proteins , Escherichia coli , Viral Proteins , Anti-Bacterial Agents/metabolism , Bacteriophage phi X 174/genetics , Bacteriophage phi X 174/metabolism , Escherichia coli/metabolism , Escherichia coli/virology , Escherichia coli Proteins/chemistry , Escherichia coli Proteins/metabolism , Peptidylprolyl Isomerase/metabolism , Viral Proteins/chemistry , Viral Proteins/genetics , Viral Proteins/metabolism , Single Molecule Imaging , Cryoelectron Microscopy
13.
J Virol ; 97(6): e0059923, 2023 06 29.
Article in English | MEDLINE | ID: mdl-37306585

ABSTRACT

Many phages, such as T4, protect their genomes against the nucleases of bacterial restriction-modification (R-M) and CRISPR-Cas systems through covalent modification of their genomes. Recent studies have revealed many novel nuclease-containing antiphage systems, raising the question of the role of phage genome modifications in countering these systems. Here, by focusing on phage T4 and its host Escherichia coli, we depicted the landscape of the new nuclease-containing systems in E. coli and demonstrated the roles of T4 genome modifications in countering these systems. Our analysis identified at least 17 nuclease-containing defense systems in E. coli, with type III Druantia being the most abundant system, followed by Zorya, Septu, Gabija, AVAST type 4, and qatABCD. Of these, 8 nuclease-containing systems were found to be active against phage T4 infection. During T4 replication in E. coli, 5-hydroxymethyl dCTP is incorporated into the newly synthesized DNA instead of dCTP. The 5-hydroxymethylcytosines (hmCs) are further modified by glycosylation to form glucosyl-5-hydroxymethylcytosine (ghmC). Our data showed that the ghmC modification of the T4 genome abolished the defense activities of Gabija, Shedu, Restriction-like, type III Druantia, and qatABCD systems. The anti-phage T4 activities of the last two systems can also be counteracted by hmC modification. Interestingly, the Restriction-like system specifically restricts phage T4 containing an hmC-modified genome. The ghmC modification cannot abolish the anti-phage T4 activities of Septu, SspBCDE, and mzaABCDE, although it reduces their efficiency. Our study reveals the multidimensional defense strategies of E. coli nuclease-containing systems and the complex roles of T4 genomic modification in countering these defense systems. IMPORTANCE Cleavage of foreign DNA is a well-known mechanism used by bacteria to protect themselves from phage infections. Two well-known bacterial defense systems, R-M and CRISPR-Cas, both contain nucleases that cleave the phage genomes through specific mechanisms. However, phages have evolved different strategies to modify their genomes to prevent cleavage. Recent studies have revealed many novel nuclease-containing antiphage systems from various bacteria and archaea. However, no studies have systematically investigated the nuclease-containing antiphage systems of a specific bacterial species. In addition, the role of phage genome modifications in countering these systems remains unknown. Here, by focusing on phage T4 and its host Escherichia coli, we depicted the landscape of the new nuclease-containing systems in E. coli using all 2,289 genomes available in NCBI. Our studies reveal the multidimensional defense strategies of E. coli nuclease-containing systems and the complex roles of genomic modification of phage T4 in countering these defense systems.


Subject(s)
Bacteriophage T4 , DNA Restriction-Modification Enzymes , Escherichia coli , Bacteriophage T4/genetics , CRISPR-Cas Systems , Escherichia coli/enzymology , Escherichia coli/virology , Genome, Viral
14.
Science ; 380(6643): 410-415, 2023 04 28.
Article in English | MEDLINE | ID: mdl-37104586

ABSTRACT

Type VI CRISPR-Cas systems use RNA-guided ribonuclease (RNase) Cas13 to defend bacteria against viruses, and some of these systems encode putative membrane proteins that have unclear roles in Cas13-mediated defense. We show that Csx28, of type VI-B2 systems, is a transmembrane protein that assists to slow cellular metabolism upon viral infection, increasing antiviral defense. High-resolution cryo-electron microscopy reveals that Csx28 forms an octameric pore-like structure. These Csx28 pores localize to the inner membrane in vivo. Csx28's antiviral activity in vivo requires sequence-specific cleavage of viral messenger RNAs by Cas13b, which subsequently results in membrane depolarization, slowed metabolism, and inhibition of sustained viral infection. Our work suggests a mechanism by which Csx28 acts as a downstream, Cas13b-dependent effector protein that uses membrane perturbation as an antiviral defense strategy.


Subject(s)
Bacterial Proteins , Bacteriophages , CRISPR-Associated Proteins , CRISPR-Cas Systems , Endodeoxyribonucleases , Prevotella , RNA Cleavage , RNA, Viral , Cryoelectron Microscopy , Membrane Proteins/metabolism , RNA, Viral/metabolism , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Endodeoxyribonucleases/chemistry , Endodeoxyribonucleases/metabolism , CRISPR-Associated Proteins/chemistry , CRISPR-Associated Proteins/metabolism , Bacteriophages/metabolism , Bacteriophage lambda/metabolism , Escherichia coli/enzymology , Escherichia coli/virology , Prevotella/enzymology , Prevotella/virology
15.
Nature ; 615(7953): 720-727, 2023 03.
Article in English | MEDLINE | ID: mdl-36922599

ABSTRACT

Engineering the genetic code of an organism has been proposed to provide a firewall from natural ecosystems by preventing viral infections and gene transfer1-6. However, numerous viruses and mobile genetic elements encode parts of the translational apparatus7-9, potentially rendering a genetic-code-based firewall ineffective. Here we show that such mobile transfer RNAs (tRNAs) enable gene transfer and allow viral replication in Escherichia coli despite the genome-wide removal of 3 of the 64 codons and the previously essential cognate tRNA and release factor genes. We then establish a genetic firewall by discovering viral tRNAs that provide exceptionally efficient codon reassignment allowing us to develop cells bearing an amino acid-swapped genetic code that reassigns two of the six serine codons to leucine during translation. This amino acid-swapped genetic code renders cells resistant to viral infections by mistranslating viral proteomes and prevents the escape of synthetic genetic information by engineered reliance on serine codons to produce leucine-requiring proteins. As these cells may have a selective advantage over wild organisms due to virus resistance, we also repurpose a third codon to biocontain this virus-resistant host through dependence on an amino acid not found in nature10. Our results may provide the basis for a general strategy to make any organism safely resistant to all natural viruses and prevent genetic information flow into and out of genetically modified organisms.


Subject(s)
Amino Acids , Escherichia coli , Gene Transfer, Horizontal , Genetic Code , Host Microbial Interactions , Protein Biosynthesis , Virus Diseases , Amino Acids/genetics , Amino Acids/metabolism , Codon/genetics , Ecosystem , Escherichia coli/genetics , Escherichia coli/virology , Genetic Code/genetics , Leucine/genetics , Leucine/metabolism , Protein Biosynthesis/genetics , RNA, Transfer/genetics , RNA, Transfer/metabolism , Serine/genetics , Virus Diseases/genetics , Virus Diseases/prevention & control , Host Microbial Interactions/genetics , Organisms, Genetically Modified/genetics , Genome, Bacterial/genetics , Gene Transfer, Horizontal/genetics , Viral Proteins/genetics , Viral Proteins/metabolism
16.
J Virol ; 97(3): e0158422, 2023 03 30.
Article in English | MEDLINE | ID: mdl-36779755

ABSTRACT

Bacteriophages, viruses infecting bacteria, recognize their host with high specificity, binding to either saccharide motifs or proteins of the cell wall of their host. In the majority of bacteriophages, this host recognition is performed by receptor binding proteins (RBPs) located at the extremity of a tail. Interaction between the RBPs and the host is the trigger for bacteriophage infection, but the molecular details of the mechanisms are unknown for most bacteriophages. Here, we present the electron cryomicroscopy (cryo-EM) structure of bacteriophage T5 RBPpb5 in complex with its Escherichia coli receptor, the iron ferrichrome transporter FhuA. Monomeric RBPpb5 is located at the extremity of T5's long flexible tail, and its irreversible binding to FhuA commits T5 to infection. Analysis of the structure of RBPpb5 within the complex, comparison with its AlphaFold2-predicted structure, and its fit into a previously determined map of the T5 tail tip in complex with FhuA allow us to propose a mechanism of transmission of the RBPpb5 receptor binding to the straight fiber, initiating the cascade of events that commits T5 to DNA ejection. IMPORTANCE Tailed bacteriophages specifically recognize their bacterial host by interaction of their receptor binding protein(s) (RBPs) with saccharides and/or proteins located at the surface of their prey. This crucial interaction commits the virus to infection, but the molecular details of this mechanism are unknown for the majority of bacteriophages. We determined the structure of bacteriophage T5 RBPpb5 in complex with its E. coli receptor, FhuA, by cryo-EM. This first structure of an RBP bound to its protein receptor allowed us to propose a mechanism of transmission of host recognition to the rest of the phage, ultimately opening the capsid and perforating the cell wall and, thus, allowing safe channeling of the DNA into the host cytoplasm.


Subject(s)
Bacteriophages , Escherichia coli Proteins , Bacterial Outer Membrane Proteins/chemistry , Bacterial Outer Membrane Proteins/metabolism , Bacterial Outer Membrane Proteins/ultrastructure , Bacteriophages/chemistry , Bacteriophages/metabolism , Escherichia coli/virology , Escherichia coli Proteins/chemistry , Protein Binding , Cryoelectron Microscopy , Viral Proteins/chemistry , Viral Proteins/metabolism , Viral Proteins/ultrastructure
17.
Nature ; 612(7938): 132-140, 2022 12.
Article in English | MEDLINE | ID: mdl-36385533

ABSTRACT

Bacteria have evolved diverse immunity mechanisms to protect themselves against the constant onslaught of bacteriophages1-3. Similar to how eukaryotic innate immune systems sense foreign invaders through pathogen-associated molecular patterns4 (PAMPs), many bacterial immune systems that respond to bacteriophage infection require phage-specific triggers to be activated. However, the identities of such triggers and the sensing mechanisms remain largely unknown. Here we identify and investigate the anti-phage function of CapRelSJ46, a fused toxin-antitoxin system that protects Escherichia coli against diverse phages. Using genetic, biochemical and structural analyses, we demonstrate that the C-terminal domain of CapRelSJ46 regulates the toxic N-terminal region, serving as both antitoxin and phage infection sensor. Following infection by certain phages, newly synthesized major capsid protein binds directly to the C-terminal domain of CapRelSJ46 to relieve autoinhibition, enabling the toxin domain to pyrophosphorylate tRNAs, which blocks translation to restrict viral infection. Collectively, our results reveal the molecular mechanism by which a bacterial immune system directly senses a conserved, essential component of phages, suggesting a PAMP-like sensing model for toxin-antitoxin-mediated innate immunity in bacteria. We provide evidence that CapRels and their phage-encoded triggers are engaged in a 'Red Queen conflict'5, revealing a new front in the intense coevolutionary battle between phages and bacteria. Given that capsid proteins of some eukaryotic viruses are known to stimulate innate immune signalling in mammalian hosts6-10, our results reveal a deeply conserved facet of immunity.


Subject(s)
Bacteriophages , Capsid Proteins , Escherichia coli , Immunity, Innate , Animals , Antitoxins/immunology , Bacteriophages/immunology , Capsid Proteins/immunology , Escherichia coli/immunology , Escherichia coli/virology , Eukaryota/immunology , Pathogen-Associated Molecular Pattern Molecules/immunology
18.
Science ; 378(6617): 240, 2022 10 21.
Article in English | MEDLINE | ID: mdl-36264809
19.
Proc Natl Acad Sci U S A ; 119(37): e2123092119, 2022 09 13.
Article in English | MEDLINE | ID: mdl-36067314

ABSTRACT

Levels of the cellular dNTPs, the direct precursors for DNA synthesis, are important for DNA replication fidelity, cell cycle control, and resistance against viruses. Escherichia coli encodes a dGTPase (2'-deoxyguanosine-5'-triphosphate [dGTP] triphosphohydrolase [dGTPase]; dgt gene, Dgt) that establishes the normal dGTP level required for accurate DNA replication but also plays a role in protecting E. coli against bacteriophage T7 infection by limiting the dGTP required for viral DNA replication. T7 counteracts Dgt using an inhibitor, the gene 1.2 product (Gp1.2). This interaction is a useful model system for studying the ongoing evolutionary virus/host "arms race." We determined the structure of Gp1.2 by NMR spectroscopy and solved high-resolution cryo-electron microscopy structures of the Dgt-Gp1.2 complex also including either dGTP substrate or GTP coinhibitor bound in the active site. These structures reveal the mechanism by which Gp1.2 inhibits Dgt and indicate that Gp1.2 preferentially binds the GTP-bound form of Dgt. Biochemical assays reveal that the two inhibitors use different modes of inhibition and bind to Dgt in combination to yield enhanced inhibition. We thus propose an in vivo inhibition model wherein the Dgt-Gp1.2 complex equilibrates with GTP to fully inactivate Dgt, limiting dGTP hydrolysis and preserving the dGTP pool for viral DNA replication.


Subject(s)
Bacteriophage T7 , Escherichia coli Proteins , Escherichia coli , GTP Phosphohydrolases , Guanosine Triphosphate , Viral Proteins , Bacteriophage T7/physiology , Cryoelectron Microscopy , DNA Replication , DNA, Viral/metabolism , Escherichia coli/enzymology , Escherichia coli/virology , Escherichia coli Proteins/chemistry , GTP Phosphohydrolases/metabolism , Guanosine Triphosphate/metabolism , Protein Conformation , Viral Proteins/chemistry , Virus Replication
20.
J Mol Biol ; 434(21): 167829, 2022 11 15.
Article in English | MEDLINE | ID: mdl-36116540

ABSTRACT

Enterobacteria phage P1 expresses two types of tail fibre, S and S'. Despite the wide usage of phage P1 for transduction, the host range and the receptor for its alternative S' tail fibre was never determined. Here, a ΔS-cin Δpac E. coli P1 lysogenic strain was generated to allow packaging of phagemid DNA into P1 phage having either S or S' tail fibre. P1(S') could transduce phagemid DNA into Shigella flexneri 2a 2457O, Shigella flexneri 5a M90T and Escherichia coli O3 efficiently. Mutational analysis of the O-antigen assembly genes and LPS inhibition assays indicated that P1(S') transduction requires at least one O-antigen unit. E. coli O111:B4 LPS produced a high neutralising effect against P1(S') transduction, indicating that this E. coli strain could be susceptible to P1(S')-mediated transduction. Mutations in the O-antigen modification genes of S. flexneri 2a 2457O and S. flexneri 5a M90T did not cause significant changes to P1(S') transduction efficiency. A higher transduction efficiency of P1(S') improved the delivery of a cas9 antimicrobial phagemid into both S. flexneri 2457O and M90T. These findings provide novel insights into P1 tropism-switching, by identifying the bacterial strains which are susceptible to P1(S')-mediated transduction, as well as demonstrating its potential for delivering a DNA sequence-specific Cas9 antimicrobial into clinically relevant S. flexneri.


Subject(s)
Bacteriophage P1 , Escherichia coli , O Antigens , Shigella flexneri , Transduction, Genetic , Viral Tail Proteins , Escherichia coli/genetics , Escherichia coli/virology , O Antigens/genetics , O Antigens/physiology , Shigella flexneri/genetics , Shigella flexneri/virology , Bacteriophage P1/genetics , Bacteriophage P1/physiology , Viral Tail Proteins/genetics
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