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Published on: March 21, 2025
The plasma membrane H+-ATPase is critical for cell growth and pathogenicity in Penicillium digitatum
Jie Li1, Shuzhen Yang2, Dongmei Li3
1College of Food Science and Technology, Huazhong Agricultural University, Wuhan, 430070, People's Republic of China.
Abstract:
The plasma membrane H+-ATPase (PMA1) is a major cytosolic pH regulator and a potential candidate for antifungal drug discovery due to its fungal specificity and criticality. In this study, the function of Penicillum digitatum PMA1 was characterized through RNA interference (RNAi) and overexpression technology. The results showed that silencing the PMA1 gene reduces cell growth and pathogenicity, and increases susceptibility of P. digitatum to proton pump inhibitors (PPIs). Under scanning electron microscopy (SEM) and transmission electron microscopy (TEM) examination, cell morphology was significantly altered in the PMA1- silenced mutant (si57). When compared with wild type (WT) and the overexpressed mutant (oe9), the cell walls of the si57 mutant were thicker and their cell membrane damage manifested particularly at sites of polarized growth. Consistent with the morphological change on the cell wall, chitin and glucan content of the cell wall of si57 were significantly lower and accompanied with increased activities of chitinase and glucanase. The lower ergosterol content in the si57 mutant then increased cell membrane permeability, ultimately leading to leakage of cytoplasmic contents such as ions, reduced sugars and soluble proteins. Furthermore, significantly decreased activity of cell wall degrading enzymes of si57 during citrus fruit infections indicates a reduced pathogenicity in this mutant. We conclude that PMA1 in P. digitatum plays an important role in maintaining pathogenesis and PMA1 could be a candidate novel fungicidal drug discovery for citrus green mold. KEY POINTS: Silencing PMA1 gene decreased the growth and pathogenicity of P. digitatum. Silencing PMA1 gene damaged cell wall and cell membrane integrity of P. digitatum. PMA1 appears to be a suitable fungicidal target against citrus green mold.
Insights
Silencing the plasma membrane H+-ATPase (PMA1) gene in Penicillium digitatum reduces growth and pathogenicity. This highlights PMA1 as a potential target for novel antifungal drugs against citrus green mold.
Area of Science:
- Mycology
- Biochemistry
- Plant Pathology
Background:
- The plasma membrane H+-ATPase (PMA1) is crucial for cytosolic pH regulation in fungi.
- Its fungal specificity makes PMA1 a promising target for antifungal drug development.
Purpose of the Study:
- To investigate the function of Penicillium digitatum PMA1 using gene silencing and overexpression.
- To evaluate PMA1 as a potential target for antifungal agents against citrus green mold.
Main Methods:
- RNA interference (RNAi) and overexpression were used to manipulate PMA1 gene expression in P. digitatum.
- Scanning electron microscopy (SEM) and transmission electron microscopy (TEM) were employed to examine cell morphology.
- Chitin, glucan, and ergosterol content, along with enzyme activities, were analyzed.
Main Results:
- PMA1 gene silencing significantly reduced P. digitatum growth, pathogenicity, and increased susceptibility to proton pump inhibitors.
- Morphological analysis revealed thicker cell walls and damaged cell membranes in silenced mutants.
- Lowered chitin and glucan content, altered ergosterol levels, and increased membrane permeability were observed in silenced mutants.
Conclusions:
- PMA1 plays a vital role in maintaining the growth, cell integrity, and pathogenicity of P. digitatum.
- PMA1 is a viable fungicidal target for combating citrus green mold, a significant agricultural pathogen.
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