Mitochondrial Effects on the Physiological Characteristics of Lentinula edodes.

IF 1.6 4区 生物学 Q2 AGRONOMY
Mycobiology Pub Date : 2022-11-02 eCollection Date: 2022-01-01 DOI:10.1080/12298093.2022.2138226
Minseek Kim, Seong-Hyeok Yang, Hui-Gang Han, Eunbi Kim, Sinil Kim, Youn-Lee Oh, Hyeon-Su Ro
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引用次数: 1

Abstract

In the mating of filamentous basidiomycetes, dikaryotic mycelia are generated through the reciprocal movement of nuclei to a monokaryotic cytoplasm where a nucleus of compatible mating type resides, resulting in the establishment of two different dikaryotic strains having the same nuclei but different mitochondria. To better understand the role of mitochondria in mushrooms, we created four sets of dikaryotic strains of Lentinula edodes, including B2 × E13 (B2 side) and B2 × E13 (E13 side), B5 × E13 (B5 side) and B5 × E13 (E13 side), E8 × H3 (E8 side) and E8 × H3 (H3 side), and K3 × H3 (K3 side) and K3 × H3 (H3 side). The karyotypes and mitochondrial types of the dikaryotic strains were successfully identified by the A mating type markers and the mitochondrial variable length tandem repeat markers, respectively. Comparative analyses of the dikaryotic strains on the mycelial growth, substrate browning, fruiting characteristics, and mitochondrial gene expression revealed that certain mitochondria are more effective in the mycelial growth and the production of fruiting body, possibly through the activated energy metabolism. Our findings indicate that mitochondria affect the physiology of dikaryotic strains having the same nuclear information and therefore a selection strategy aimed at mitochondrial function is needed in the development of new mushroom strain.

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线粒体对香菇生理特性的影响。
在丝状担子菌的交配过程中,通过细胞核向单核细胞质的相互运动产生双核菌丝,单核细胞质中存在兼容的交配类型的细胞核,从而形成两种具有相同细胞核但线粒体不同的双核菌株。为了更好地了解线粒体在蘑菇中的作用,我们构建了4组双核菌株,分别是B2 × E13 (B2侧)和B2 × E13 (E13侧)、B5 × E13 (B5侧)和B5 × E13 (E13侧)、E8 × H3 (E8侧)和E8 × H3 (H3侧)、K3 × H3 (K3侧)和K3 × H3 (H3侧)。利用A交配型标记和线粒体可变长串联重复序列标记分别成功鉴定了双核菌株的核型和线粒体类型。通过对双核菌株菌丝生长、底物褐变、结果特性和线粒体基因表达的比较分析,发现某些线粒体在菌丝生长和子实体产生中更有效,可能是通过激活能量代谢。我们的研究结果表明,线粒体影响具有相同核信息的双核菌株的生理,因此在新的蘑菇菌株的开发中需要针对线粒体功能的选择策略。
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来源期刊
Mycobiology
Mycobiology AGRONOMYMYCOLOGY-MYCOLOGY
CiteScore
3.90
自引率
5.30%
发文量
41
审稿时长
22 weeks
期刊介绍: Mycobiology is an international journal devoted to the publication of fundamental and applied investigations on all aspects of mycology and their traditional allies. It is published quarterly and is the official publication of the Korean Society of Mycology. Mycobiology publishes reports of basic research on fungi and fungus-like organisms, including yeasts, filamentous fungi, lichen fungi, oomycetes, moulds, and mushroom. Topics also include molecular and cellular biology, biochemistry, metabolism, developmental biology, environmental mycology, evolution, ecology, taxonomy and systematics, genetics/genomics, fungal pathogen and disease control, physiology, and industrial biotechnology using fungi.
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