Canonically minimal RNA-guided insertion sequences expand into large elements that disseminate antimicrobial resistance
Hu, K.; Xie, B.; Yang, H.; Rubin, B. E.
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IS110 has emerged as a powerful genome-editing tool because it is the smallest RNA-guided system capable of diverse programmable insertions. Naturally existing elements are conventionally modeled as compact[~] 1.5-kb systems comprising a single transposase and a bridge RNA (bRNA). Using high-throughput junction mapping together with large-scale comparative genomics, we redefined the in vivo structural boundaries, growth, and mobilization of IS110 elements. We uncovered a previously unrecognized size continuum extending to[~] 100 kb, driven by progressive local expansion, with expanded loci being widespread across bacterial genomes. Experiments confirmed the activity of natural IS110s both well below and above the size range of previously characterized elements. These large systems preferentially accumulate adaptive cargo, including antimicrobial resistance determinants and heavy-metal detoxification systems, and are strongly enriched for plasmid-derived DNA. Boundary configurations at expanded loci and the range of partial excision intermediates they produce both indicate flexible sequence recognition by IS110, most commonly through half-matches between the bRNA and complementary DNA sequence. This sequence tolerance allows loci to expand with diverse cargo. Together, these findings redefine IS110 from a compact insertion sequence into a dynamic platform that disseminates adaptive cargo.
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