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Primary and secondary metabolism regulates lipolysis in appressoria of Colletotrichum orbiculare
Authors:Makoto Asakura  Kae Yoshino  Alison M Hill  Yasuyuki Kubo  Yasuyoshi Sakai  Yoshitaka Takano
Institution:1. Graduate School of Agriculture, Kyoto University, Kyoto, Japan;2. Biosciences, College of Life and Environmental Sciences, University of Exeter, Exeter, UK;3. Graduate School of Life and Environmental Sciences, Kyoto Prefectural University, Kyoto, Japan;1. Department of Biotechnology, Chung-Ang University, Anseong 456-756, Republic of Korea;2. ChunLab, Inc., Seoul National University, Seoul 151-742, Republic of Korea;3. The Michael Smith Laboratories, Department of Microbiology and Immunology, University of British Columbia, Vancouver, BC, Canada V6T 1Z4;4. Faculty of Land and Food Systems, University of British Columbia, Vancouver, BC, Canada V6T 1Z4;5. School of Biological Sciences, Seoul National University, Seoul 151-742, Republic of Korea;6. Department of Chemistry, KAIST, Daejeon 305-701, Republic of Korea;1. Instituto de Microbiologia Professor Paulo de Góes, Universidade Federal do Rio de Janeiro, Rio de Janeiro 21941-902, Brazil;2. Department of Microbiology and Immunology, Albert Einstein College of Medicine, 1300 Morris Park Ave., Bronx, NY 10461, USA;3. Disciplina de Biologia Celular, Universidade Federal de São Paulo, São Paulo, SP 04023-062, Brazil;4. Laboratorio de Ultraestrutura Celular Hertha Meyer, Instituto de Biofisica Carlos Chagas Filho, Universidade Federal do Rio de Janeiro, Rio de Janeiro 21941-903, Brazil;5. Division of Infectious Diseases of The Department of Medicine, Albert Einstein College of Medicine, 1300 Morris Park Ave., Bronx, NY 10461, USA;6. Fundação Oswaldo Cruz (Fiocruz), Centro de Desenvolvimento Tecnológico em Saúde (CDTS), Rio de Janeiro, Brazil;1. Department of Molecular Microbiology, Groningen Biomolecular Sciences and Biotechnology Institute, Zernike Institute for Advanced Materials and Kluyver Centre for Genomics of Industrial Fermentation, University of Groningen, Nijenborgh 7, 9747 AG Groningen, The Netherlands;2. DSM Biotechnology Center, PO Box 425, 2600 AK Delft, The Netherlands;1. Laboratório de Genômica e Expressão, Departamento de Genética, Evolução e Bioagentes, Instituto de Biologia, Universidade Estadual de Campinas (UNICAMP), CP 6109, 13083-970 Campinas, SP, Brazil;2. Sustainable Perennial Crops Laboratory, USDA–ARS, 10300 Baltimore Ave., Bldg. 001, Beltsville, MD 20705-2350, USA;3. Laboratório Nacional de Biociências (LNBio), Centro Nacional de Pesquisa em Energia e Materiais (CNPEM), CP 6192, 13083-970 Campinas, Brazil
Abstract:The conidia of Colletotrichum orbiculare, the causal agent of cucumber anthracnose, develop appressoria that are pigmented with melanin for host plant infection. Premature appressoria contain abundant lipid droplets (LDs), but these disappear during appressorial maturation, indicating lipolysis inside the appressorial cells. The lipolysis and melanization in appressoria require the peroxin PEX6, suggesting the importance of peroxisomal metabolism in these processes. To investigate the relationships between appressorial lipolysis and fungal metabolic pathways, C. orbiculare knockout mutants of MFE1, which encodes a peroxisomal multifunctional enzyme, were generated in this study, and the phenotype of the mfe1 mutants was investigated. In contrast to the wild-type strain, which forms melanized appressoria, the mfe1 mutants formed colorless nonmelanized appressoria with abundant LDs, similar to those of pex6 mutants. This indicates that fatty acid β-oxidation in peroxisomes is critical for the appressorial melanization and lipolysis of C. orbiculare. Soraphen A, a specific inhibitor of acetyl-CoA carboxylase, inhibited appressorial lipolysis and melanization, producing phenocopies of the mfe1 mutants. This suggests that the conversion of acetyl-CoA, derived from fatty acid β-oxidation, to malonyl-CoA is required for the activation of lipolysis in appressoria. Surprisingly, we found that genetically blocking PKS1-dependent polyketide synthesis, an initial step in melanin biosynthesis, also impaired appressorial lipolysis. In contrast, genetically or pharmacologically blocking the steps in melanin synthesis downstream from PKS1 did not abolish appressorial lipolysis. These findings indicate that melanin biosynthesis, as well as fatty acid β-oxidation, is involved in the regulation of lipolysis inside fungal infection structures.
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