Related Experiment Video
Updated: Jun 26, 2025

Assessing the Putative Anticryptococcal Properties of Crude and Clarified Extracts from Mollusks
Published on: December 2, 2022
Aspartyl peptidase May1 induces host inflammatory response by altering cell wall composition in the fungal pathogen
Yeqi Li1, Benjamin Chadwick2, Tuyetnhu Pham2
1Department of Microbiology, University of Georgia, Athens, Georgia, USA.
Abstract:
Cryptococcus neoformans causes cryptococcal meningoencephalitis, a disease that kills more than 180,000 people annually. Contributing to its success as a fungal pathogen is its cell wall surrounded by a capsule. When the cryptococcal cell wall is compromised, exposed pathogen-associated molecular pattern molecules (PAMPs) could trigger host recognition and initiate attack against this fungus. Thus, cell wall composition and structure are tightly regulated. The cryptococcal cell wall is unusual in that chitosan, the acetylated form of chitin, is predominant over chitin and is essential for virulence. Recently, it was shown that acidic pH weakens the cell wall and increases exposure of PAMPs partly due to decreased chitosan levels. However, the molecular mechanism responsible for the cell wall remodeling in acidic pH is unknown. In this study, by screening for genes involved in cryptococcal tolerance to high levels of CO2, we serendipitously discovered that the aspartyl peptidase May1 contributes to cryptococcal sensitivity to high levels of CO2 due to acidification of unbuffered media. Overexpression of MAY1 increases the cryptococcal cell size and elevates PAMP exposure, causing a hyper-inflammatory response in the host while MAY1 deletion does the opposite. We discovered that May1 weakens the cell wall and reduces the chitosan level, partly due to its involvement in the degradation of Chs3, the sole chitin synthase that supplies chitin to be converted to chitosan. Consistently, overexpression of CHS3 largely rescues the phenotype of MAY1oe in acidic media. Collectively, we demonstrate that May1 remodels the cryptococcal cell wall in acidic pH by reducing chitosan levels through its influence on Chs3.
Importance:
The fungal cell wall is a dynamic structure, monitoring and responding to internal and external stimuli. It provides a formidable armor to the fungus. However, in a weakened state, the cell wall also triggers host immune attack when PAMPs, including glucan, chitin, and mannoproteins, are exposed. In this work, we found that the aspartyl peptidase May1 impairs the cell wall of Cryptococcus neoformans and increases the exposure of PAMPs in the acidic environment by reducing the chitosan level. Under acidic conditions, May1 is involved in the degradation of the chitin synthase Chs3, which supplies chitin to be deacetylated to chitosan. Consistently, the severe deficiency of chitosan in acidic pH can be rescued by overexpressing CHS3. These findings improve our understanding of cell wall remodeling and reveal a potential target to compromise the cell wall integrity in this important fungal pathogen.
Insights
The aspartyl peptidase May1 weakens the Cryptococcus neoformans cell wall in acidic conditions by reducing chitosan levels, increasing pathogen-associated molecular pattern (PAMP) exposure and host inflammation. This study reveals May1
Area of Science:
- Mycology
- Pathogen Biology
- Molecular Biology
Background:
- Cryptococcus neoformans causes deadly meningoencephalitis, with its cell wall and capsule crucial for virulence.
- The fungal cell wall, rich in chitosan, is essential for cryptococcal integrity and immune evasion.
- Acidic pH compromises the cell wall, increasing pathogen-associated molecular pattern (PAMP) exposure and host immune response.
Purpose of the Study:
- To elucidate the molecular mechanism of cell wall remodeling in Cryptococcus neoformans under acidic conditions.
- To investigate the role of the aspartyl peptidase May1 in cryptococcal cell wall integrity and host immune response.
- To identify potential targets for compromising fungal pathogen cell wall.
Main Methods:
- Screening for genes involved in cryptococcal tolerance to high CO2 levels.
- Investigating the effect of May1 overexpression and deletion on cell wall composition and PAMP exposure.
- Analyzing the interaction between May1 and Chs3 (chitin synthase) in acidic environments.
Main Results:
- May1 overexpression increases cell size and PAMP exposure, leading to hyper-inflammation.
- May1 deletion reduces cell size and PAMP exposure, attenuating the host response.
- May1 degrades Chs3, reducing chitosan levels and weakening the cell wall in acidic conditions.
- Overexpression of CHS3 rescues the cell wall defects caused by May1 in acidic media.
Conclusions:
- May1 remodels the cryptococcal cell wall in acidic pH by reducing chitosan levels via Chs3 degradation.
- May1's activity contributes to cryptococcal virulence by modulating cell wall integrity and host immune recognition.
- Targeting May1 could be a strategy to compromise Cryptococcus neoformans cell wall integrity and combat infection.
Related Concept Videos
Caspases
Allosteric Proteins-ATCase
Aspartate transcarbamoylase (ATCase) is a cytosolic enzyme that catalyzes the condensation of L-aspartate and carbamoyl phosphate to N-carbamoyl-L-aspartate. This reaction is the first step in pyrimidine biosynthesis. UTP and CTP, the end products of the pyrimidine synthesis...

