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Biolistic Transformation of a Fluorescent Tagged Gene into the Opportunistic Fungal Pathogen Cryptococcus neoformans
Published on: March 19, 2015
Major histocompatibility complex controls the trajectory but not host-specific adaptation during virulence evolution
Erin E McClelland1, Frederick R Adler, Donald L Granger
1Department of Biology, University of Utah, 257 South 1400 East, Salt Lake City, UT 84112, USA. mcclella@aecom.yu.edu
Abstract:
Genes of the major histocompatibility complex (MHC) play a critical role in immune recognition and are the most genetically diverse loci known. One hypothesis to explain this diversity postulates that pathogens adapt to common MHC haplotypes and thus favour selection of new or rare alleles. To determine whether the pathogenic yeast Cryptococcus neoformans adapts to MHC-dependent immune responses, it was serially passaged in two independent replicate lines of five B10 MHC-congenic strains and Balb/c mice. All passaged lines increased in virulence as measured by reduced host survival. MHC influenced the rate (trajectory) of virulence increase during passages as measured by significant differences in mortality rate (p < 0.001). However, when the post-passage strains were tested, no MHC differences in mortality rate remained and only minor differences in titres were observed. Also contrary to expectations, increased virulence in three lines passaged in B10 mice had a larger effect in Balb/c mice, and the evolution of virulence in lines passaged in alternating hosts was not retarded. To our knowledge, these data represent the first experimental test of MHC-specific adaptation in a non-viral pathogen. The failure to observe MHC effects despite dramatically increased virulence and host-genotype-specific adaptation to non-MHC genes suggests that escape of MHC-dependent immune recognition may be difficult for pathogens with unlimited epitopes or that other virulence factors can swamp MHC effects.
Insights
Pathogen adaptation to the immune system was tested using Cryptococcus neoformans in mice. Despite increased virulence, major histocompatibility complex (MHC) genes did not drive pathogen adaptation, suggesting immune escape may be difficult.
Area of Science:
- Immunology
- Microbiology
- Evolutionary Biology
Background:
- Major histocompatibility complex (MHC) genes are crucial for immune recognition and exhibit high genetic diversity.
- A leading hypothesis suggests pathogens adapt to common MHC types, driving selection for rare alleles.
Purpose of the Study:
- To investigate if the pathogenic yeast Cryptococcus neoformans adapts to MHC-dependent immune responses.
- To experimentally test MHC-specific adaptation in a non-viral pathogen.
Main Methods:
- Serial passage of Cryptococcus neoformans in MHC-congenic mouse strains (B10) and Balb/c mice.
- Assessed changes in virulence by measuring host survival rates and pathogen titres post-passage.
Main Results:
- All passaged yeast lines increased in virulence, reducing host survival.
- MHC influenced the rate of virulence increase during passages, but not post-passage mortality rates.
- Increased virulence in one mouse strain led to greater effects in another, and alternating hosts did not slow virulence evolution.
Conclusions:
- The study failed to observe MHC-specific adaptation in Cryptococcus neoformans despite significant virulence increases.
- This suggests pathogens may struggle to escape MHC-dependent immunity, or other virulence factors may overshadow MHC effects.
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