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Ojima, S.

Publications and source records attributed to Ojima, S..

4 recordsLinked to original sources

Viruses encode tRNA and anti-retron to evade bacterial immunity

Retrons are bacterial genetic retroelements that encode reverse transcriptase capable of producing multicopy single-stranded DNA (msDNA) and function as antiphage defense systems. Phages employ several strategies to counter the host defense systems, but no mechanisms for evading retrons are known. Here, we show that tRNATyr and Rad (retron anti-defense) of T5 phage family inhibit the defense activity of retron 78 and a broad range of retrons, respectively. The effector protein of retron 78, ptuAB, specifically degraded tRNATyr leading abortive infection, but phage countervailed this defense by supplying tRNATyr. Rad inhibited retron function by degrading noncoding RNA, the precursor of msDNA. In summary, we demonstrated that viruses encode at least two independent strategies for overcoming bacterial defense systems: anti-defense, such as Rad, and defense canceler, like tRNA.

microbiology↗

Selective bacteriophages reduce the emergence of resistant bacteria in the bacteriophage-antibiotic combination therapy

Escherichia coli O157:H7 is a globally important foodborne pathogen that affects food safety. Antibiotic administration against O157:H7 may contribute to the exacerbation of hemolytic uremic syndrome (HUS) and antibiotic-resistant strains increase; therefore, bacteriophage therapy (phage therapy) is considered a useful alternative. In the treatment of resistant bacterial infections, combination therapy with bacteriophages and antibiotics, taking advantage of the benefits of both agents, has been suggested to be effective in inhibiting the emergence of antimicrobial-resistant strains; however, its effectiveness against O157:H7 is not well understood. In this study, we isolated SP015, a phage that infects O157:H7, and compared the combined effect of the bacteriophage and fosfomycin (FOM) with that of the PP01 phage. Genomic analysis revealed that FOM exerts its antibacterial activity through glycerol-3-phosphate transporter (GlpT) and hexose phosphate transporter (UhpT) proteins, and the receptors of PP01 and SP015 phages are the outer membrane protein C (OmpC) and ferrichrome outer membrane transporter protein (FhuA), respectively. Experiments with knockout strains have suggested that FOM also uses OmpC, the receptor for PP01, as a transporter. This may explain why the combination treatment with PP01 resulted in a faster emergence of resistance than the combination treatment with SP015. We propose that phage-antibiotic combination therapy requires careful selection of the phage to be used.

microbiology↗

Identification of inosine monophosphate dehydrogenase as a potential target for anti-monkeypox virus agents

Monkeypox virus (MPXV) is a neglected zoonotic pathogen that caused a worldwide outbreak in May 2022. Given the lack of an established therapy, the development of an anti-MPXV strategy is of vital importance. To identify drug targets for the development of anti-MPXV agents, we screened a chemical library using an MPXV infection cell assay and found that gemcitabine, trifluridine, and mycophenolic acid (MPA) inhibited MPXV propagation. These compounds showed broad-spectrum anti-orthopoxvirus activities and presented lower 90% inhibitory concentrations (0.032-1.40 M) than brincidofovir, an approved anti-smallpox agent. These three compounds have been suggested to target the post-entry step to reduce the intracellular production of virions. Knockdown of inosine monophosphate dehydrogenase (IMPDH), the rate-limiting enzyme of guanosine biosynthesis and a target of MPA, dramatically reduced MPXV DNA production. Moreover, supplementation with guanosine recovered the anti-MPXV effect of MPA, suggesting that IMPDH and its guanosine biosynthetic pathway regulate MPXV replication. By targeting IMPDH, we identified a series of compounds with stronger anti-MPXV activity than MPA. These evidences propose that IMPDH is a potential target for the development of anti-MPXV agents. ImportanceMonkeypox is a zoonotic disease caused by infection with the monkeypox virus, and a worldwide outbreak occurred in May 2022. The smallpox vaccine has recently been approved for clinical use against monkeypox in the United States. Although brincidofovir and tecovirimat are drugs approved for the treatment of smallpox by the U.S. Food and Drug Administration, their efficacy against monkeypox has not been established. Moreover, these drugs may present negative side effects. Therefore, new anti-monkeypox virus agents are needed. This study revealed that gemcitabine, trifluridine, and mycophenolic acid inhibited monkeypox virus propagation, exhibited broad-spectrum anti-orthopoxvirus activities. We also suggested inosine monophosphate dehydrogenase as a potential target for the development of anti-monkeypox virus agents. By targeting this molecule, we identified a series of compounds with stronger anti-monkeypox virus activity than mycophenolic acid.

microbiology↗

Potential anti-monkeypox virus activity of atovaquone, mefloquine, and molnupiravir, and their potential use as treatments

Monkeypox virus (MPXV) is a zoonotic orthopoxvirus that causes smallpox-like symptoms in humans and caused an outbreak in May 2022 that led the WHO to declare global health emergency. In this study, from a screening of approved-drug libraries using an MPXV infection cell system, atovaquone, mefloquine, and molnupiravir exhibited anti-MPXV activity, with 50% inhibitory concentrations of 0.51-5.2 M, which is more potent than cidofovir. Whereas mefloquine was suggested to inhibit viral entry, atovaquone and molnupiravir targeted post-entry process to impair intracellular virion accumulation. Inhibitors of dihydroorotate dehydrogenase, an atovaquones target enzyme, showed conserved anti-MPXV activities. Combining atovaquone with tecovirimat enhanced the anti-MPXV effect of tecovirimat. Quantitative mathematical simulations predicted that atovaquone can promote viral clearance in patients by seven days at clinically relevant drug concentrations. Moreover, atovaquone and molnupiravir exhibited pan-Orthopoxvirus activity against vaccinia and cowpox viruses. These data suggest that atovaquone would be potential candidates for treating monkeypox.

microbiology↗