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Piłsyk S, Mieczkowski A, Golan MP, Wawrzyniak A, Kruszewska JS. Internalization of the Aspergillus nidulans AstA Transporter into Mitochondria Depends on Growth Conditions, and Affects ATP Levels and Sulfite Oxidase Activity. Int J Mol Sci 2020; 21:ijms21207727. [PMID: 33086570 PMCID: PMC7589619 DOI: 10.3390/ijms21207727] [Citation(s) in RCA: 4] [Impact Index Per Article: 0.8] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 09/22/2020] [Revised: 10/13/2020] [Accepted: 10/17/2020] [Indexed: 12/12/2022] Open
Abstract
The astA gene encoding an alternative sulfate transporter was originally cloned from the genome of the Japanese Aspergillus nidulans isolate as a suppressor of sulfate permease-deficient strains. Expression of the astA gene is under the control of the sulfur metabolite repression system. The encoded protein transports sulfate across the cell membrane. In this study we show that AstA, having orthologs in numerous pathogenic or endophytic fungi, has a second function and, depending on growth conditions, can be translocated into mitochondria. This effect is especially pronounced when an astA-overexpressing strain grows on solid medium at 37 °C. AstA is also recruited to the mitochondria in the presence of mitochondria-affecting compounds such as menadione or antimycin A, which are also detrimental to the growth of the astA-overexpressing strain. Disruption of the Hsp70-Porin1 mitochondrial import system either by methylene blue, an Hsp70 inhibitor, or by deletion of the porin1-encoding gene abolishes AstA translocation into the mitochondria. Furthermore, we observed altered ATP levels and sulfite oxidase activity in the astA-overexpressing strain in a manner dependent on sulfur sources. The presented data indicate that AstA is also involved in the mitochondrial sulfur metabolism in some fungi, and thereby indirectly manages redox potential and energy state.
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Affiliation(s)
- Sebastian Piłsyk
- Institute of Biochemistry and Biophysics, Polish Academy of Sciences, Pawińskiego 5A str., 02-106 Warsaw, Poland; (A.M.); (J.S.K.)
- Correspondence: ; Tel.: +48-22-5921209; Fax: +48-39-121623
| | - Adam Mieczkowski
- Institute of Biochemistry and Biophysics, Polish Academy of Sciences, Pawińskiego 5A str., 02-106 Warsaw, Poland; (A.M.); (J.S.K.)
| | - Maciej P. Golan
- Department of Neuropathology, Institute of Psychiatry and Neurology, Sobieskiego 9 str., 02-957 Warsaw, Poland;
| | - Agata Wawrzyniak
- Morphological Sciences Department, College for Medical Sciences of University of Rzeszów, Leszka Czarnego str. 4, 35-615 Rzeszów, Poland;
| | - Joanna S. Kruszewska
- Institute of Biochemistry and Biophysics, Polish Academy of Sciences, Pawińskiego 5A str., 02-106 Warsaw, Poland; (A.M.); (J.S.K.)
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Wei J, Bi Y, Xue H, Wang Y, Zong Y, Prusky D. Antifungal activity of cinnamaldehyde against
Fusarium sambucinum
involves inhibition of ergosterol biosynthesis. J Appl Microbiol 2020; 129:256-265. [DOI: 10.1111/jam.14601] [Citation(s) in RCA: 25] [Impact Index Per Article: 5.0] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 09/02/2019] [Revised: 12/19/2019] [Accepted: 01/26/2020] [Indexed: 11/30/2022]
Affiliation(s)
- J. Wei
- College of Plant Protection Gansu Agricultural University Lanzhou China
- College of Food Science and Engineering Gansu Agricultural University Lanzhou China
| | - Y. Bi
- College of Food Science and Engineering Gansu Agricultural University Lanzhou China
| | - H. Xue
- College of Food Science and Engineering Gansu Agricultural University Lanzhou China
| | - Y. Wang
- College of Food Science and Engineering Gansu Agricultural University Lanzhou China
| | - Y. Zong
- College of Food Science and Engineering Gansu Agricultural University Lanzhou China
| | - D. Prusky
- College of Food Science and Engineering Gansu Agricultural University Lanzhou China
- Department of Postharvest Science of Fresh Produce Agricultural Research Organization The Volcani Center Beit Dagan Israel
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Holt S, Kankipati H, De Graeve S, Van Zeebroeck G, Foulquié-Moreno MR, Lindgreen S, Thevelein JM. Major sulfonate transporter Soa1 in Saccharomyces cerevisiae and considerable substrate diversity in its fungal family. Nat Commun 2017; 8:14247. [PMID: 28165463 PMCID: PMC5303821 DOI: 10.1038/ncomms14247] [Citation(s) in RCA: 15] [Impact Index Per Article: 1.9] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 06/16/2016] [Accepted: 12/12/2016] [Indexed: 11/24/2022] Open
Abstract
Sulfate is a well-established sulfur source for fungi; however, in soils sulfonates and sulfate esters, especially choline sulfate, are often much more prominent. Here we show that Saccharomyces cerevisiae YIL166C(SOA1) encodes an inorganic sulfur (sulfate, sulfite and thiosulfate) transporter that also catalyses sulfonate and choline sulfate uptake. Phylogenetic analysis of fungal SOA1 orthologues and expression of 20 members in the sul1Δ sul2Δ soa1Δ strain, which is deficient in inorganic and organic sulfur compound uptake, reveals that these transporters have diverse substrate preferences for sulfur compounds. We further show that SOA2, a S. cerevisiae SOA1 paralogue found in S. uvarum, S. eubayanus and S. arboricola is likely to be an evolutionary remnant of the uncharacterized open reading frames YOL163W and YOL162W. Our work highlights the importance of sulfonates and choline sulfate as sulfur sources in the natural environment of S. cerevisiae and other fungi by identifying fungal transporters for these compounds. Sulfonates are a major source of sulphur for soil microbes but their cellular uptake is still not fully understood. Here the authors show that Saccharomyces cerevisiae YIL166C(SOA1) encodes for an inorganic sulphur transporter that can also function as a sulfonate and choline sulphate transporter.
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Affiliation(s)
- Sylvester Holt
- Laboratory of Molecular Cell Biology, Department of Biology, KU Leuven, Institute of Botany and Microbiology Kasteelpark Arenberg 31, Flanders, B-3001 Leuven-Heverlee, Belgium.,Department of Molecular Microbiology, VIB, Kasteelpark Arenberg 31, Flanders, B-3001 Leuven-Heverlee, Belgium
| | - Harish Kankipati
- Laboratory of Molecular Cell Biology, Department of Biology, KU Leuven, Institute of Botany and Microbiology Kasteelpark Arenberg 31, Flanders, B-3001 Leuven-Heverlee, Belgium.,Department of Molecular Microbiology, VIB, Kasteelpark Arenberg 31, Flanders, B-3001 Leuven-Heverlee, Belgium
| | - Stijn De Graeve
- Laboratory of Molecular Cell Biology, Department of Biology, KU Leuven, Institute of Botany and Microbiology Kasteelpark Arenberg 31, Flanders, B-3001 Leuven-Heverlee, Belgium.,Department of Molecular Microbiology, VIB, Kasteelpark Arenberg 31, Flanders, B-3001 Leuven-Heverlee, Belgium
| | - Griet Van Zeebroeck
- Laboratory of Molecular Cell Biology, Department of Biology, KU Leuven, Institute of Botany and Microbiology Kasteelpark Arenberg 31, Flanders, B-3001 Leuven-Heverlee, Belgium.,Department of Molecular Microbiology, VIB, Kasteelpark Arenberg 31, Flanders, B-3001 Leuven-Heverlee, Belgium
| | - Maria R Foulquié-Moreno
- Laboratory of Molecular Cell Biology, Department of Biology, KU Leuven, Institute of Botany and Microbiology Kasteelpark Arenberg 31, Flanders, B-3001 Leuven-Heverlee, Belgium.,Department of Molecular Microbiology, VIB, Kasteelpark Arenberg 31, Flanders, B-3001 Leuven-Heverlee, Belgium
| | - Stinus Lindgreen
- Carlsberg Research Laboratory, Gamle Carlsberg Vej 4, 1799 Copenhagen V, Denmark
| | - Johan M Thevelein
- Laboratory of Molecular Cell Biology, Department of Biology, KU Leuven, Institute of Botany and Microbiology Kasteelpark Arenberg 31, Flanders, B-3001 Leuven-Heverlee, Belgium.,Department of Molecular Microbiology, VIB, Kasteelpark Arenberg 31, Flanders, B-3001 Leuven-Heverlee, Belgium
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