Scientific article
OA Policy
English

Transposase-DNA Complex Structures Reveal Mechanisms for Conjugative Transposition of Antibiotic Resistance

Published inCell, vol. 173, no. 1, p. 208-220.e20
Publication date2018-03-22
First online date2018-03-15
Abstract

Conjugative transposition drives the emergence of multidrug resistance in diverse bacterial pathogens, yet the mechanisms are poorly characterized. The Tn1549 conjugative transposon propagates resistance to the antibiotic vancomycin used for severe drug-resistant infections. Here, we present four high-resolution structures of the conserved Y-transposase of Tn1549 complexed with circular transposonDNA intermediates. The structures reveal individual transposition steps and explain how specific DNA distortion and cleavage mechanisms enable DNA strand exchange with an absolute minimum homology requirement. This appears to uniquely allow Tn916-like conjugative transposons to bypass DNA homology and insert into diverse genomic sites, expanding gene transfer. We further uncover a structural regulatory mechanism that prevents premature cleavage of the transposon DNA before a suitable target DNA is found and generate a peptide antagonist that interferes with the transposase-DNA structure to block transposition. Our results reveal mechanistic principles of conjugative transposition that could help control the spread of antibiotic resistance genes.

Keywords
  • DNA complex
  • Tn1549 transposon
  • Tn916-like transposon family
  • Antibiotic resistance
  • Conjugative transposition
  • Crystallography
  • Gene transfer
  • Multidrug-resistant bacteria
  • Tyrosine recombinase
  • Vancomycin
Affiliation entities Not a UNIGE publication
Citation (ISO format)
RUBIO-COSIALS, Anna et al. Transposase-DNA Complex Structures Reveal Mechanisms for Conjugative Transposition of Antibiotic Resistance. In: Cell, 2018, vol. 173, n° 1, p. 208–220.e20. doi: 10.1016/j.cell.2018.02.032
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Article (Published version)
Identifiers
Journal ISSN0092-8674
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