膨胀压力
细胞壁
生物
渗透压
附着胞
酶
生物化学
化学
生物物理学
病菌
植物细胞
植物
微生物学
格里斯麦格纳波特
细胞生物学
植物生理学
质壁分离
作者
Naoyoshi Kumakura,Takayuki Motoyama,Keisuke Miyazawa,Toshihiko Nogawa,Julien Pernier,Katsuma Yonehara,Mayuko Sato,Yumi Goto,Kaori Sakai,Nobuaki Ishihama,K. MATSUMORI,Pamela Gan,Kiminori Toyooka,Sandrine Lévêque‐Fort,Hiroyuki Koshino,Takeshi Fukuma,Richard J. O’Connell,Ken Shirasu
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2026-02-12
卷期号:391 (6786): 700-706
被引量:2
标识
DOI:10.1126/science.aec9443
摘要
Many plant pathogenic fungi penetrate host surfaces mechanically, using turgor pressure generated by specialized infection cells called appressoria. These appressoria develop semipermeable cell walls and accumulate osmolytes internally to create turgor by osmosis. Although melanin is known to be important for turgor generation, the mechanism underlying wall semipermeability remains unclear. By using reverse genetics, we identified that the enzymes PKS2 and PBG13 are required for forming the semipermeable barrier in fungi causing anthracnose and rice blast diseases. These enzymes synthesize 3,5-dihydroxyhexanoic acid polymers that are essential for pathogenicity. These polymers reduce cell wall permeability and generate turgor, independently of melanization. Our findings uncover a mechanism of fungal turgor generation, linking enzyme function to pathogen penetration and disease potential, presenting new targets for disease control.
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