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Hawkins, N. C.

Publications and source records attributed to Hawkins, N. C..

2 recordsLinked to original sources

Structure of the portal complex from Staphylococcus aureus Pathogenicity Island 1 transducing particles in situ and in solution

Staphylococcus aureus is an important human pathogen, and the prevalence of antibiotic resistance is a major public health concern. The evolution of pathogenicity and resistance in S. aureus often involves acquisition of mobile genetic elements (MGEs). Bacteriophages play an especially important role, since transduction represents the main mechanism for horizontal gene transfer. S. aureus pathogenicity islands (SaPIs), including SaPI1, are MGEs that carry genes encoding virulence factors, and are mobilized at high frequency through interactions with specific "helper" bacteriophages, such as 80, leading to packaging of the SaPI genomes into virions made from structural proteins supplied by the helper. Among these structural proteins is the portal protein, which forms a ring-like portal at a fivefold vertex of the capsid, through which the DNA is packaged during virion assembly and ejected upon infection of the host. We have used high- resolution cryo-electron microscopy to determine structures of the S. aureus bacteriophage 80 portal in solution and in situ in the empty and full SaPI1 virions, and show how the portal interacts with the capsid. These structures provide a basis for understanding portal and capsid assembly and the conformational changes that occur upon DNA packaging and ejection.

microbiology↗

Structure and host specificity of Staphylococcus epidermidis bacteriophage Andhra

Staphylococcus epidermidis is an opportunistic pathogen of the human skin, often associated with infections of implanted medical devices. An increase in antibiotic resistance in S. epidermidis and other bacterial pathogens has led to renewed interest in the use of bacteriophages as an alternative to conventional antibiotics. Staphylococcal picoviruses are a group of strictly lytic, short-tailed bacteriophages with compact genomes that are attractive candidates for therapeutic use. Here, we report the structure of the complete virion of S. epidermidis-infecting phage Andhra, determined using high-resolution cryo-electron microscopy, allowing atomic modeling of the capsid and tail proteins, including twelve trimers of a unique receptor binding protein, the hexameric tail knob that acts as a gatekeeper for DNA ejection, and the tail tip, which is a heterooctamer of two different lytic proteins. Our findings elucidate critical features that enable host recognition and penetration, facilitating the development of this group of phages for therapeutic applications.

microbiology↗