PRM1 and KAR5 function in cell-cell fusion and karyogamy to drive distinct bisexual and unisexual cycles in the

Ci Fu1, Joseph Heitman1

  • 1Department of Molecular Genetics and Microbiology, Duke University Medical Center, Durham, NC, United States of America.

Plos Genetics
|November 28, 2017
PubMed

Insights

Cryptococcus fungi exhibit distinct sexual reproduction mechanisms. Unisexual reproduction in C. deneoformans bypasses cell fusion, unlike bisexual reproduction, revealing varied evolutionary paths in this pathogenic complex.

Area of Science:

  • Microbiology
  • Evolutionary Biology
  • Mycology

Background:

  • Sexual reproduction drives eukaryotic adaptation, with Cryptococcus fungi displaying diverse reproductive strategies.
  • C. neoformans primarily uses bisexual reproduction, while C. deneoformans engages in both unisexual and bisexual reproduction.
  • Both reproductive modes involve conserved genetic circuits for morphological transitions, generating genetic diversity.

Purpose of the Study:

  • To investigate the conserved roles of plasma membrane (Prm1) and nuclear membrane (Kar5) fusion proteins in Cryptococcus sexual reproduction.
  • To elucidate the similarities and differences between unisexual and bisexual reproduction mechanisms in C. deneoformans and C. neoformans.

Main Methods:

  • Identified and characterized orthologs of Prm1 and Kar5 in Cryptococcus species.
  • Analyzed cell-cell fusion and karyogamy during unisexual (C. deneoformans α-α) and bisexual (C. deneoformans and C. neoformans a-α) reproduction.
  • Investigated the necessity of cell fusion for unisexual reproduction in C. deneoformans.

Main Results:

  • Prm1 and Kar5 play conserved roles in cell and nuclear fusion across both unisexual and bisexual reproduction in Cryptococcus.
  • Karyogamy timing differs: within the basidium in C. neoformans bisexual reproduction, but post-cell fusion in C. deneoformans bisexual reproduction.
  • Cell fusion is dispensable for C. deneoformans unisexual reproduction, with diploid blastospores suggesting early diploidization.

Conclusions:

  • Cryptococcus species employ distinct cell-cell and nuclear fusion mechanisms for unisexual and bisexual reproduction.
  • Unisexual reproduction in C. deneoformans presents unique pathways, including cell fusion-independent diploidization.
  • These findings highlight divergent evolutionary trajectories within the Cryptococcus pathogenic species complex.

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