Hyperosmotic medium partially restores the growth defect and the impaired production of sterigmatocystin of an Aspergillus nidulans ΔpmtC mutant in a HogA-independent manner

Author:

Le Thi Huynh Tram12,Le Thy Nhan3,Yoshimi Akira45,Abe Keietsu46,Imanishi-Shimizu Yumi7,Shimizu Kiminori18ORCID

Affiliation:

1. Department of Biological Science and Technology, Tokyo University of Science, Tokyo, Japan

2. Division of Microbial Biotechnology, Biotechnology Center of Ho Chi Minh City, Vietnam

3. Faculty of Biological Sciences, Nong Lam University of Ho Chi Minh City, Vietnam

4. New Industry Creation Hatchery Center, Tohoku University, Miyagi, Japan

5. Laboratory of Environmental Interface Technology of Filamentous Fungi, Kyoto University, Kyoto, Japan

6. Laboratory of Applied Microbiology, Department of Microbial Biotechnology, Graduate School of Agricultural Sciences, Tohoku University, Miyagi, Japan

7. Department of Bioscience, College of Science and Engineering, Kanto Gakuin University, Yokohama, Japan

8. Medical Mycology Research Center, Chiba University, Chiba, Japan

Abstract

ABSTRACT The protein O-mannosyltransferase catalyzes O-mannosylation in the endoplasmic reticulum by transferring mannose to the seryl or threonyl residues of substrate proteins. We previously reported a deletion mutant of O-mannosyltransferase C (ΔpmtC) in Aspergillus nidulans with impaired vegetative growth and sterigmatocystin (ST) production. In this study, we investigated whether osmotic conditions contribute to the developmental processes and ST biosynthesis of the ΔpmtC deletion mutant. We found that hyphal growth and ST production partially improved in the presence of NaCl, KCl or sorbitol as osmotic stabilizers. Conidiation of the ΔpmtC deletion mutant was not restored under osmotic stress conditions when the hogA gene was deleted. The hogA gene encodes a protein required for the cellular response to osmotic pressure. However, the yield of ST and the vegetative growth of the ΔhogA ΔpmtC double deletant was restored by high osmolarity in a HogA-independent manner.

Funder

Tokyo University of Agriculture and Technology

Publisher

Oxford University Press (OUP)

Subject

Genetics,Molecular Biology,Microbiology

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