首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Crosses between monokaryons of Pleurotus sapidus or Pleurotus florida show an improved biotransformation of (+)-valencene to (+)-nootkatone
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Crosses between monokaryons of Pleurotus sapidus or Pleurotus florida show an improved biotransformation of (+)-valencene to (+)-nootkatone

机译:杏鲍菇侧耳或佛罗里达杏鲍菇单核之间的杂交显示,(+)-瓦伦烯向(+)-Nootkatone的生物转化得到改善。

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Several hundred monokaryotic and new dikaryotic strains derived thereof were established from (+)-valencene tolerant Pleurotus species. When grouped according to their growth rate on agar plates and compared to the parental of Pleurotus sapidus 69, the slowly growing monokaryons converted (+)-valencene more efficiently to the grapefruit flavour compound (+)-nootkatone. The fast growing monokaryons and the slow × slow and the fast × fast dikaryotic crosses showed similar or inferior yields. Some slow × fast dikaryons, however, exceeded the biotransformation capability of the parental dikaryon significantly. The activity of the responsible enzyme, lipoxygenase, showed a weak correlation with the yields of (+)-nootkatone indicating that the determination of enzyme activity using the primary substrate linoleic acid may be misleading in predicting the biotransformation efficiency. This exploratory study indicated that a classical genetics approach resulted in altered and partly improved terpene transformation capability (plus 60%) and lipoxygenase activity of the strains.
机译:从(+)-瓦伦烯耐受的侧耳属菌种中建立了数百个衍生自其的单核和新双核菌株。当根据其在琼脂平板上的生长速率分组并与平菇侧耳69的亲本比较时,缓慢生长的单核更有效地将(+)-瓦伦烯转化为葡萄柚风味化合物(+)-Nootkatone。快速生长的单核生物和慢×慢双核和快×快速双核杂交显示出相似或较差的产量。然而,一些慢×快双核子显着超过了亲代双核子的生物转化能力。负责的酶脂氧合酶的活性与(+)-Nootkatone的产量之间存在弱相关性,这表明使用主要底物亚油酸测定酶活性可能会误导预测生物转化效率。这项探索性研究表明,经典的遗传学方法导致菌株的萜烯转化能力(增加60%)和脂氧合酶活性改变并部分提高。

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