Transposition mechanism of ISApl1-the determinant of colistin resistance dissemination
1Department of Oncology, The First Affiliated Hospital of USTC, Division of Life Sciences and Medicine, University of Science and Technology of China, Hefei, Anhui, China.
Abstract:
Multidrug-resistant Enterobacteriaceae, a prominent family of gram-negative pathogenic bacteria, causes a wide range of severe diseases. Strains carrying the mobile colistin resistance (mcr-1) gene show resistance to polymyxin, the last line of defense against multidrug-resistant gram-negative bacteria. However, the transmission of mcr-1 is not well understood. In this study, genomes of mcr-1-positive strains were obtained from the NCBI database, revealing their widespread distribution in China. We also showed that ISApl1, a crucial factor in mcr-1 transmission, is capable of self-transposition. Moreover, the self-cyclization of ISApl1 is mediated by its own encoded transposase. The electrophoretic mobility shift assay experiment validated that the transposase can bind to the inverted repeats (IRs) on both ends, facilitating the cyclization of ISApl1. Through knockout or shortening of IRs at both ends of ISApl1, we demonstrated that the cyclization of ISApl1 is dependent on the sequences of the IRs at both ends. Simultaneously, altering the ATCG content of the bases at both ends of ISApl1 can impact the excision rate by modifying the binding ability between IRs and ISAPL1. Finally, we showed that heat-unstable nucleoid protein (HU) can inhibit ISApl1 transposition by binding to the IRs and preventing ISAPL1 binding and expression. In conclusion, the regulation of ISApl1-self-circling is predominantly controlled by the inverted repeat (IR) sequence and the HU protein. This molecular mechanism deepens our comprehension of mcr-1 dissemination.
Insights
The mobile colistin resistance (mcr-1) gene spreads via ISApl1 transposition. This study reveals ISApl1 self-cyclization is regulated by its inverted repeats and inhibited by HU protein, clarifying mcr-1 dissemination.
Area of Science:
- Microbiology
- Genetics
- Molecular Biology
Background:
- Multidrug-resistant Enterobacteriaceae pose a significant global health threat.
- The mobile colistin resistance (mcr-1) gene confers resistance to polymyxins, a critical last-resort antibiotic.
- Understanding the transmission mechanisms of mcr-1 is crucial for combating its spread.
Purpose of the Study:
- To investigate the role of ISApl1 in the transmission of the mcr-1 gene.
- To elucidate the molecular mechanisms governing ISApl1 transposition and self-cyclization.
- To identify factors that regulate ISApl1 activity.
Main Methods:
- Bioinformatic analysis of mcr-1-positive Enterobacteriaceae genomes.
- Electrophoretic mobility shift assays (EMSAs) to study transposase-DNA interactions.
- In vitro experiments involving knockout or shortening of ISApl1 inverted repeats (IRs).
- Investigation of the effect of heat-unstable nucleoid protein (HU) on ISApl1 transposition.
Main Results:
- ISApl1 was identified as a key factor in mcr-1 transmission and is widespread in China.
- ISApl1 transposase mediates self-cyclization by binding to its own inverted repeats (IRs).
- ISApl1 cyclization is dependent on the sequence and base composition of its IRs.
- Heat-unstable nucleoid protein (HU) inhibits ISApl1 transposition by binding to IRs.
Conclusions:
- The self-cyclization of ISApl1 is primarily regulated by its inverted repeat sequences and the binding of HU protein.
- These findings provide a deeper understanding of the molecular mechanisms underlying mcr-1 gene dissemination.
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