Autonomous synthesis and assembly of a ribosomal subunit on a chip
MICHAEL R. LEVY, Reuven Falkovich, Shirley Shulman Daube, Roy Bar‐Ziv
Abstract
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MICHAEL R. LEVY, Reuven Falkovich, Shirley Shulman Daube, Roy Bar‐Ziv
Abstract
Open-access reader
small ribosomal subunit by synthesizing and capturing all its ribosomal proteins and RNA on a chip. Surface confinement provided favorable conditions for autonomous stepwise assembly of new subunits, spatially segregated from original intact ribosomes. Our real-time fluorescence measurements revealed hierarchal assembly, cooperative interactions, unstable intermediates, and specific binding to large ribosomal subunits. Using only synthetic genes, our methodology is a crucial step toward creation of a self-replicating artificial cell and a general strategy for the mechanistic investigation of diverse multicomponent macromolecular machines.
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small ribosomal subunit by synthesizing and capturing all its ribosomal proteins and RNA on a chip. Surface confinement provided favorable conditions for autonomous stepwise assembly of new subunits, spatially segregated from original intact ribosomes. Our real-time fluorescence measurements revealed hierarchal assembly, cooperative interactions, unstable intermediates, and specific binding to large ribosomal subunits. Using only synthetic genes, our methodology is a crucial step toward creation of a self-replicating artificial cell and a general strategy for the mechanistic investigation of diverse multicomponent macromolecular machines.
Key concepts: Ribosome, Ribosome biogenesis, Biogenesis, Ribosomal RNA, Protein subunit, Eukaryotic Ribosome, Ribosomal protein, Computational biology