Life sciences · Journal article
Science Advances · October 2, 2026
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To develop gene therapy tools based on CRISPR-associated transposons (CASTs), it is essential to define how transposon ends are recognized and paired during transposition. Transposon 7 (Tn7)–like transposons typically contain asymmetric left- and right-end sequences that flank and define DNA cargo. However, how the transposase recognizes these different sequences and assembles them into a catalytically competent state for cut-and-paste transposition remains unknown. Here, we present the cryo–electron microscopy structure of the VchCAST transposase TnsB in complex with transposon DNA ends and host factor IHF, along with biochemistry, molecular dynamics, and in vivo analyses. Our structure reveals the stoichiometry and architecture of the assembly, as well as the DNA distortions required to accommodate transposon end asymmetry. Molecular dynamics suggests that these distortions are required for the coordinated assembly of the complex. Physical association of asymmetric left and right ends results in a previously uncharacterized protein-protein interface that is required for transposition efficiency. Our findings explain how transposases regulate the pairing of transposon end sequences for high-fidelity recognition, reveal a model of transposon-end synapsis, and suggest future avenues to engineer DNA cargo for genome-editing applications.