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SAMase of Bacteriophage T3 Inactivates Escherichia coli's Methionine S-Adenosyltransferase by Forming Heteropolymers
Hadas Simon-Baram1, Daniel Kleiner1, Fannia Shmulevich1
1Department of Life Sciences, Ben-Gurion University of the Negevgrid.7489.2, Beer-Sheva, Israel.
Abstract:
S-Adenosylmethionine lyase (SAMase) of bacteriophage T3 degrades the intracellular SAM pools of the host Escherichia coli cells, thereby inactivating a crucial metabolite involved in a plethora of cellular functions, including DNA methylation. SAMase is the first viral protein expressed upon infection, and its activity prevents methylation of the T3 genome. Maintenance of the phage genome in a fully unmethylated state has a profound effect on the infection strategy. It allows T3 to shift from a lytic infection under normal growth conditions to a transient lysogenic infection under glucose starvation. Using single-particle cryoelectron microscopy (cryo-EM) and biochemical assays, we demonstrate that SAMase performs its function by not only degrading SAM but also by interacting with and efficiently inhibiting the host's methionine S-adenosyltransferase (MAT), the enzyme that produces SAM. Specifically, SAMase triggers open-ended head-to-tail assembly of E. coli MAT into an unusual linear filamentous structure in which adjacent MAT tetramers are joined by two SAMase dimers. Molecular dynamics simulations together with normal mode analyses suggest that the entrapment of MAT tetramers within filaments leads to an allosteric inhibition of MAT activity due to a shift to low-frequency, high-amplitude active-site-deforming modes. The amplification of uncorrelated motions between active-site residues weakens MAT's substrate binding affinity, providing a possible explanation for the observed loss of function. We propose that the dual function of SAMase as an enzyme that degrades SAM and as an inhibitor of MAT activity has emerged to achieve an efficient depletion of the intracellular SAM pools. IMPORTANCE Self-assembly of enzymes into filamentous structures in response to specific metabolic cues has recently emerged as a widespread strategy of metabolic regulation. In many instances, filamentation of metabolic enzymes occurs in response to starvation and leads to functional inactivation. Here, we report that bacteriophage T3 modulates the metabolism of the host E. coli cells by recruiting a similar strategy: silencing a central metabolic enzyme by subjecting it to phage-mediated polymerization. This observation points to an intriguing possibility that virus-induced polymerization of the host metabolic enzymes is a common mechanism implemented by viruses to metabolically reprogram and subdue infected cells.
Insights
Bacteriophage T3 SAMase degrades SAM and inhibits host MAT enzyme by forming filaments, altering infection strategy. This viral strategy hijacks host metabolism for phage replication.
Area of Science:
- * Molecular biology
- * Virology
- * Structural biology
Background:
- * Bacteriophage T3 SAMase degrades S-Adenosylmethionine (SAM) to prevent host DNA methylation.
- * SAM is vital for numerous cellular processes, including DNA methylation.
- * SAMase is the first viral protein expressed, impacting phage infection strategy.
Purpose of the Study:
- * To elucidate the mechanism by which SAMase inhibits host methionine S-adenosyltransferase (MAT).
- * To understand how SAMase dual function impacts intracellular SAM pools.
- * To investigate the role of SAMase in modulating host E. coli metabolism during phage infection.
Main Methods:
- * Single-particle cryo-electron microscopy (cryo-EM) for structural analysis.
- * Biochemical assays to study enzyme activity.
- * Molecular dynamics simulations and normal mode analyses to probe inhibition mechanisms.
Main Results:
- * SAMase degrades SAM and inhibits MAT by inducing head-to-tail assembly of MAT into filaments.
- * SAMase dimers link adjacent MAT tetramers, forming unusual linear structures.
- * Filament formation causes allosteric inhibition of MAT activity by weakening substrate binding.
Conclusions:
- * SAMase possesses a dual function: SAM degradation and MAT inhibition via polymerization.
- * This dual strategy efficiently depletes intracellular SAM pools for phage benefit.
- * Virus-induced enzyme polymerization is a potential mechanism for viral metabolic reprogramming of host cells.
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