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Updated: Apr 28, 2026

Phenotypic Analysis of Rodent Malaria Parasite Asexual and Sexual Blood Stages and Mosquito Stages
Published on: May 30, 2019
Morphotype transition and sexual reproduction are genetically associated in a ubiquitous environmental pathogen
Linqi Wang1, Xiuyun Tian1, Rachana Gyawali1
1Department of Biology, Texas A&M University, College Station, Texas, United States of America.
Abstract:
Sexual reproduction in an environmental pathogen helps maximize its lineage fitness to changing environment and the host. For the fungal pathogen Cryptococcus neoformans, sexual reproduction is proposed to have yielded hyper virulent and drug resistant variants. The life cycle of this pathogen commences with mating, followed by the yeast-hypha transition and hyphal growth, and it concludes with fruiting body differentiation and sporulation. How these sequential differentiation events are orchestrated to ensure developmental continuality is enigmatic. Here we revealed the genetic network of the yeast-to-hypha transition in Cryptococcus by analyzing transcriptomes of populations with a homogeneous morphotype generated by an engineered strain. Among this network, we found that a Pumilio-family protein Pum1 and the matricellular signal Cfl1 represent two major parallel circuits directing the yeast-hypha transition. Interestingly, only Pum1 coordinates the sequential morphogenesis events during a-α bisexual and α unisexual reproduction. Pum1 initiates the yeast-to-hypha transition, partially through a novel filament-specific secretory protein Fas1; Pum1 is also required to sustain hyphal growth after the morphological switch. Furthermore, Pum1 directs subsequent differentiation of aerial hyphae into fruiting bodies in both laboratory and clinical isolates. Pum1 exerts its control on sexual reproduction partly through regulating the temporal expression of Dmc1, the meiosis-specific recombinase. Therefore, Pum1 serves a pivotal role in bridging post-mating morphological differentiation events with sexual reproduction in Cryptococcus. Our findings in Cryptococcus illustrate how an environmental pathogen can ensure the completion of its life cycle to safeguard its long-term lineage success.
Insights
The fungal pathogen Cryptococcus neoformans uses Pumilio protein 1 (Pum1) to orchestrate its sexual reproduction cycle. Pum1 is crucial for initiating and sustaining hyphal growth and fruiting body development, ensuring pathogen survival.
Area of Science:
- Mycology
- Pathogen Biology
- Genetics
Background:
- Sexual reproduction in environmental pathogens like Cryptococcus neoformans enhances adaptability and virulence.
- The pathogen's life cycle involves mating, yeast-to-hypha transition, hyphal growth, and sporulation, but the orchestration of these events is unclear.
Purpose of the Study:
- To elucidate the genetic network governing the yeast-to-hypha transition in Cryptococcus neoformans.
- To identify key regulators coordinating sequential differentiation events during sexual reproduction.
Main Methods:
- Transcriptome analysis of an engineered strain producing homogeneous morphotypes.
- Identification of genetic circuits controlling morphological transitions.
Main Results:
- Pumilio-family protein Pum1 and matricellular signal Cfl1 form parallel circuits regulating the yeast-to-hypha transition.
- Pum1 uniquely coordinates sequential morphogenesis in bisexual and unisexual reproduction.
- Pum1 initiates hyphal transition via Fas1, sustains hyphal growth, and directs fruiting body differentiation.
- Pum1 regulates the temporal expression of the meiosis-specific recombinase Dmc1.
Conclusions:
- Pum1 is a pivotal regulator bridging post-mating differentiation with sexual reproduction in Cryptococcus.
- This study reveals how pathogens ensure life cycle completion for long-term lineage success.
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