The β-1,3-exoglucanase gene exgA (exg1) of aspergillus oryzae is required to catabolize extracellular glucan, and is induced in growth on a solid surface
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- TAMANO Koichi
- Research Institute for Cell Engineering, National Institute of Advanced Industrial Science and Technology (AIST)
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- SATOH Yuki
- Research Institute for Cell Engineering, National Institute of Advanced Industrial Science and Technology (AIST)
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- ISHII Tomoko
- Research Institute for Cell Engineering, National Institute of Advanced Industrial Science and Technology (AIST)
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- TERABAYASHI Yasunobu
- Research Institute for Cell Engineering, National Institute of Advanced Industrial Science and Technology (AIST)
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- OHTAKI Shinsaku
- Laboratory of Molecular Enzymology, Division of Life Science, Graduate School of Agricultural Science, Tohoku University
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- SANO Motoaki
- Genome Biotechnology Laboratory, Kanazawa Institute of Technology
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- TAKAHASHI Tadashi
- Noda Institute for Scientific Research
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- KOYAMA Yasuji
- Noda Institute for Scientific Research
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- MIZUTANI Osamu
- Laboratory of Molecular Enzymology, Division of Life Science, Graduate School of Agricultural Science, Tohoku University
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- ABE Keietsu
- Laboratory of Molecular Enzymology, Division of Life Science, Graduate School of Agricultural Science, Tohoku University
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- MACHIDA Masayuki
- Research Institute for Cell Engineering, National Institute of Advanced Industrial Science and Technology (AIST)
書誌事項
- タイトル別名
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- The .BETA.-1,3-Exoglucanase Gene exgA (exg1) of Aspergillus oryzae Is Required to Catabolize Extracellular Glucan, and Is Induced in Growth on a Solid Surface
- The ベータ 1 3 exoglucanase gene exgA exg1 of aspergillus oryzae is required to catabolize extracellular glucan and is induced in growth on a solid surface
- The β-1,3-Exoglucanase Gene<i>exgA</i>(<i>exg1</i>) of<i>Aspergillus oryzae</i>Is Required to Catabolize Extracellular Glucan, and Is Induced in Growth on a Solid Surface
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説明
The biological role of ExgA (Exg1), a secretory β-1,3-exoglucanase of Aspergillus oryzae, and the expression pattern of the exgA (exg1) gene were analyzed. The exgA disruptant and the exgA-overexpressing mutant were constructed, and phenotypes of both mutants were compared. Higher mycelial growth rate and conidiation efficiency were observed for the exgA-overexpressing mutant than for the exgA disruptant when β-1,3-glucan was supplied as sole carbon source. On the other hand, no difference in phenotype was observed between them in the presence or absence of the inhibitors of cell wall β-glucan remodeling when grown with glucose. exgA Expression was induced in growth on solid surfaces such as filter membrane and onion inner skin. A combination of poor nutrition and mycelial attachment to a hydrophobic solid surface appears to be an inducing factor for exgA expression. These data suggest that ExgA plays a role in β-glucan utilization, but is not much involved in cell wall β-glucan remodeling.
収録刊行物
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- Bioscience, Biotechnology, and Biochemistry
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Bioscience, Biotechnology, and Biochemistry 71 (4), 926-934, 2007
公益社団法人 日本農芸化学会
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詳細情報 詳細情報について
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- CRID
- 1390282681457279104
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- NII論文ID
- 10027513436
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- NII書誌ID
- AA10824164
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- COI
- 1:CAS:528:DC%2BD2sXltFCnsLs%3D
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- ISSN
- 13476947
- 09168451
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- NDL書誌ID
- 8714987
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- PubMed
- 17420593
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- 本文言語コード
- en
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- 資料種別
- journal article
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- データソース種別
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- JaLC
- NDLサーチ
- Crossref
- PubMed
- CiNii Articles
- OpenAIRE
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- 使用不可