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Feeding of Ticks on Animals for Transmission and Xenodiagnosis in Lyme Disease Research
Published on: August 31, 2013
LPS modification promotes maintenance of Yersinia pestis in fleas
Kari L Aoyagi1, Benjamin D Brooks1, Scott W Bearden2
1University of Utah Department of Pathology, 2100 JMRB, 15 North Medical Drive East, Salt Lake City, UT 84132, USA.
Abstract:
Yersinia pestis, the causative agent of plague, can be transmitted by fleas by two different mechanisms: by early-phase transmission (EPT), which occurs shortly after flea infection, or by blocked fleas following long-term infection. Efficient flea-borne transmission is predicated upon the ability of Y. pestis to be maintained within the flea. Signature-tagged mutagenesis (STM) was used to identify genes required for Y. pestis maintenance in a genuine plague vector, Xenopsylla cheopis. The STM screen identified seven mutants that displayed markedly reduced fitness in fleas after 4 days, the time during which EPT occurs. Two of the mutants contained insertions in genes encoding glucose 1-phosphate uridylyltransferase (galU) and UDP-4-amino-4-deoxy-l-arabinose-oxoglutarate aminotransferase (arnB), which are involved in the modification of lipid A with 4-amino-4-deoxy-l-arabinose (Ara4N) and resistance to cationic antimicrobial peptides (CAMPs). These Y. pestis mutants were more susceptible to the CAMPs cecropin A and polymyxin B, and produced lipid A lacking Ara4N modifications. Surprisingly, an in-frame deletion of arnB retained modest levels of CAMP resistance and Ara4N modification, indicating the presence of compensatory factors. It was determined that WecE, an aminotransferase involved in biosynthesis of enterobacterial common antigen, plays a novel role in Y. pestis Ara4N modification by partially offsetting the loss of arnB. These results indicated that mechanisms of Ara4N modification of lipid A are more complex than previously thought, and these modifications, as well as several factors yet to be elucidated, play an important role in early survival and transmission of Y. pestis in the flea vector.
Insights
Yersinia pestis requires specific gene functions for survival within fleas, crucial for plague transmission. Researchers identified genes involved in lipid A modification and antimicrobial peptide resistance essential for early flea infection.
Area of Science:
- Microbiology
- Infectious Diseases
- Vector Biology
Background:
- Yersinia pestis causes plague and relies on flea vectors for transmission.
- Two transmission modes exist: early-phase transmission (EPT) and transmission by blocked fleas.
- Y. pestis maintenance within the flea is critical for efficient transmission.
Purpose of the Study:
- To identify genes essential for Y. pestis maintenance in the flea vector Xenopsylla cheopis.
- To understand the mechanisms underlying Y. pestis survival during early flea infection.
Main Methods:
- Signature-tagged mutagenesis (STM) was employed to screen for Y. pestis mutants with reduced fitness in fleas.
- Mutant fitness was assessed at 4 days post-infection, coinciding with EPT.
- Lipid A modification, resistance to cationic antimicrobial peptides (CAMPs), and gene function were analyzed.
Main Results:
- Seven Y. pestis mutants showed significantly reduced fitness in fleas after 4 days.
- Mutants with defects in galU and arnB genes, involved in lipid A modification with 4-amino-4-deoxy-l-arabinose (Ara4N), were identified.
- These mutants exhibited increased susceptibility to CAMPs and lacked Ara4N modifications on lipid A.
- WecE was found to play a compensatory role in Ara4N modification when arnB function was lost.
Conclusions:
- Ara4N modification of lipid A is crucial for Y. pestis early survival and transmission in fleas.
- The mechanisms of lipid A modification in Y. pestis are more complex than previously understood.
- Further research is needed to elucidate additional factors involved in Y. pestis flea transmission.
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