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Rout, A.

Publications and source records attributed to Rout, A..

2 recordsLinked to original sources

A fungal pathogen effector that shapes host plant microbiota kills bacteria through lipoteichoic acid binding and membrane disruption

Antimicrobial proteins are ancient and widespread molecules that contribute to survival across all domains of life. We previously showed that fungal plant pathogens secrete antimicrobial proteins to suppress antagonistic members of the host microbiota and thereby promote host colonization. The soil-borne plant pathogen Verticillium dahliae employs the bactericidal protein VdAve1 for this purpose. Here, we elucidate the mode of action of VdAve1 and define its mechanism as a distinct type of antimicrobial activity. Nuclear magnetic resonance (NMR) analysis revealed that VdAve1 adopts a jelly-roll barrel-like fold. Functionally, VdAve1 disrupts bacterial plasma membranes, and synthetic peptides derived from its positively charged regions retain antimicrobial activity, indicating that these regions contribute to its function. We further show that the bacterial model system Bacillus subtilis responds to VdAve1 by modifying teichoic acids, and that loss of these modifications increases bacterial sensitivity. Consistent with this, VdAve1 binds lipoteichoic acid (LTA), a major component of the Gram-positive cell wall. Together, our findings support a model in which VdAve1 binds LTA to localize at the bacterial surface, where it perturbs the plasma membrane, leading to membrane collapse and cell death. SIGNIFICANCE STATEMENTPlant-pathogenic microbes secrete effector proteins to promote host colonization. While these proteins are typically studied for their roles in host manipulation, some affect host-associated microbial communities by exhibiting antimicrobial activity. However, their modes of action remain largely unexplored. The fungal plant pathogen Verticillium dahliae secretes the antimicrobial effector VdAve1 to inhibit bacterial antagonists in the host microbiota. Here, we characterize the mode of action of VdAve1. We show that VdAve1 binds lipoteichoic acid, a major component of the cell wall of Gram-positive bacteria. This promotes VdAve1 accumulation close to the plasma membrane, and through electrostatic interactions it disrupts the plasma membrane. We further determine VdAve1 structure by NMR, revealing VdAve1 adopts a {beta}-barrel-like fold. Together, our findings show the mechanism by which a fungal effector inhibits bacterial growth and thereby how it may influence host-associated bacterial communities.

microbiology↗

Emetine dihydrochloride inhibits Chikungunya virus nsP2 helicase and shows antiviral activity in the cell culture and mouse model of virus infection

Chikungunya virus (CHIKV), a mosquito-borne alphavirus, causes frequent epidemics of chikungunya fever across the world and has become a significant medical challenge, warranting the development of novel antivirals. A cell imaging-based high-content screening of the Spectrum collection of small molecules, containing all the US and international drug molecules, identified Emetine dihydrochloride (ED) as a potent antiviral against CHIKV. ED inhibited CHIKV replication in the C57BL/6 mouse model of chikungunya disease, resulting in significantly lower viremia. Importantly, clinical symptoms of joint swelling were altogether absent in the CHIKV-infected mice treated with ED. In the ERMS cells, ED inhibited the CHIKV uptake, and the virus replication early during the virus life cycle by inhibiting the viral RNA synthesis, resulting in the inhibition of the viral protein synthesis. ED was predicted to bind the helicase domain of the CHIKV non-structural protein nsP2 by in silico methods. The ED binding to the nsP2 protein and its helicase domain was validated in vitro by microscale thermophoresis and isothermal titration calorimetry. Importantly, ED inhibited the CHIKV nsP2 helicase activity in vitro in a dose-dependent manner. These data demonstrate the potential of ED to be repurposed as a novel CHIKV antiviral, warranting clinical development. AUTHOR SUMMARYChikungunya virus (CHIKV) spreads through the bites of the virus-infected Aedes mosquitoes. The virus causes frequent epidemics of chikungunya fever involving severe joint edema and muscle pain. The virus activity has been recorded in more than 100 countries in Asia, Africa, South and Central America, and Europe, and it has become endemic in several regions of the world. In 2024, around 480,000 CHIKV cases and over 200 deaths were reported worldwide. While a CHIKV vaccine was recently approved, no virus-specific antiviral therapy is available. Considering the global medical significance of the virus, the development of effective CHIKV antivirals is a priority. With a view to repurposing an existing drug, we screened a collection of all the approved US and international drug molecules and identified Emetine dihydrochloride (ED) as a potent inhibitor of CHIKV replication in the cell culture model. The CHIKV-infected mice treated with ED showed reduced virus replication and no joint swelling, which is a typical clinical symptom of CHIKV disease. Our studies show that ED binds the CHIKV nsP2, inhibiting its helicase action, which is required for replicating the viral genomic RNA and producing the viral proteins. In the past, emetine has been used in humans to treat amoebiasis. Our work thus shows the potential of the drug emetine to be repurposed for treating CHIKV patients.

microbiology↗