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Terasaka, N.

Publications and source records attributed to Terasaka, N..

2 recordsLinked to original sources

An engineered closed-shell, two-component, 480-subunit nucleocapsid

Self-assembling protein cages are powerful nanoscale containers for biotechnology and medical applications. Two-component systems are especially attractive due to their potential for functional complexity. In this study, we demonstrate that the subunits of the 240mer nucleocapsid NC-4, which was previously evolved to package and protect its encoding mRNA, can be split into two fragments without disrupting cage assembly or structure, generating a two-component, 480-subunit capsid. This modification introduces additional termini on the cages exterior surface, creating new opportunities for functionalization. We exploited these new sites by genetically appending peptide and protein tags to the exterior surface of split NC-4 (spNC-4), enabling site-specific glycosylation via post-translational modification and cell-specific delivery by targeted antibody recruitment. Our findings broaden the utility of the NC-4 nucleocapsid. By extension, splitting related protein compartments that bind diverse cargoes could offer a robust platform for biotechnological applications requiring simultaneous encapsulation and customizable surface modification. SIGNIFICANCE STATEMENTNatural protein shells such as viral capsids and bacterial microcompartments have inspired efforts to design synthetic compartments that protect and deliver functional molecules. Here we show that a nonviral, artificially evolved nucleocapsid can be split into two fragments that reassemble into a closed, two-component, 480-subunit cage that packages its own mRNA. This redesign preserves the original architecture and selective RNA packaging while creating new engineerable sites on both the interior and exterior surfaces, enabling simultaneous control of internal cargo binding and external modification. The resulting two-component architecture highlights the structural plasticity of synthetic nucleocapsids and provides a general strategy for constructing modular, evolvable protein containers for biotechnology and synthetic biology.

biochemistry↗

Evolution of a virus-like architecture and packaging mechanism in arepurposed bacterial protein

Viruses are ubiquitous pathogens of global impact. Prompted by the hypothesis that their earliest progenitors recruited host proteins for virion formation, we have used stringent laboratory evolution to convert a bacterial enzyme lacking affinity for nucleic acids into an artificial nucleocapsid that efficiently packages and protects multiple copies of its own encoding mRNA. Revealing remarkable convergence on the molecular hallmarks of natural viruses, the accompanying changes reorganized the protein building blocks into an interlaced 240-subunit icosahedral capsid impermeable to nucleases, while emergence of a robust RNA stem-loop packaging cassette ensured high encapsidation yields and specificity. In addition to evincing a plausible evolutionary pathway for primordial viruses, these findings highlight practical strategies for developing non-viral carriers for diverse vaccine and delivery applications.

biochemistry↗