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      KCI등재 SCIE SCOPUS

      Genetic linkage map construction and quantitative trait loci mapping of agronomic traits in Gloeostereum incarnatum

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      https://www.riss.kr/link?id=A107223705

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      다국어 초록 (Multilingual Abstract)

      Gloeostereum incarnatum is an edible medicinal mushroom widely grown in China. Using the whole genome of G. incarnatum, simple sequence repeat (SSR) markers were developed and synthetic primers were designed to construct its first genetic linkage map. The 1,048.6 cm map is composed of 10 linkage groups and contains 183 SSR markers. In total, 112 genome assembly sequences were anchored, representing 16.43 Mb and covering 46.41% of the genome. Selfing populations were used for quantitative trait loci (QTL) targeting, and the composite interval mapping method was used to co-localize the mycelium growth rate (potato dextrose agar and sawdust), growth period, yield and fruiting body length, and width and thickness. The 14 QTLs of agronomic traits had LOD values of 3.20–6.51 and contribution rates of 2.22– 13.18%. No linkage relationship was found between the mycelium growth rate and the growth period, but a linkage relationship was observed among the length, width and thickness of the fruiting bodies. Using NCBI’s BLAST alignment, the genomic sequences corresponding to the QTL regions were compared, and a TPR-like protein candidate gene was selected. Using whole-genome data, 138 candidate genes were found in four sequence fragments of two SSR markers located in the same scaffold. The genetic map and QTLs established in this study will aid in developing selective markers for agronomic traits and identifying corresponding genes, thereby providing a scientific basis for the further gene mapping of quantitative traits and the marker-assisted selection of functional genes in G. incarnatum breeding programs.
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      Gloeostereum incarnatum is an edible medicinal mushroom widely grown in China. Using the whole genome of G. incarnatum, simple sequence repeat (SSR) markers were developed and synthetic primers were designed to construct its first genetic linkage map....

      Gloeostereum incarnatum is an edible medicinal mushroom widely grown in China. Using the whole genome of G. incarnatum, simple sequence repeat (SSR) markers were developed and synthetic primers were designed to construct its first genetic linkage map. The 1,048.6 cm map is composed of 10 linkage groups and contains 183 SSR markers. In total, 112 genome assembly sequences were anchored, representing 16.43 Mb and covering 46.41% of the genome. Selfing populations were used for quantitative trait loci (QTL) targeting, and the composite interval mapping method was used to co-localize the mycelium growth rate (potato dextrose agar and sawdust), growth period, yield and fruiting body length, and width and thickness. The 14 QTLs of agronomic traits had LOD values of 3.20–6.51 and contribution rates of 2.22– 13.18%. No linkage relationship was found between the mycelium growth rate and the growth period, but a linkage relationship was observed among the length, width and thickness of the fruiting bodies. Using NCBI’s BLAST alignment, the genomic sequences corresponding to the QTL regions were compared, and a TPR-like protein candidate gene was selected. Using whole-genome data, 138 candidate genes were found in four sequence fragments of two SSR markers located in the same scaffold. The genetic map and QTLs established in this study will aid in developing selective markers for agronomic traits and identifying corresponding genes, thereby providing a scientific basis for the further gene mapping of quantitative traits and the marker-assisted selection of functional genes in G. incarnatum breeding programs.

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      참고문헌 (Reference)

      1 Xiong, D. K., Huazhong Agricultural University 2014

      2 Sun, L. D., Beijing Forestry University 2013

      3 Wang, Y., Beijing Academy of Agricultural Sciences 2011

      4 Chen, J., Nanjing Medical University 2008

      5 Yu, Y., Jilin Agricultural University 2016

      6 Yu, Y., Jilin Agricultural University 2013

      7 Song, H., Jilin Agricultural University 2008

      8 Liu, G. J., Jilin Agricultural University 2011

      9 Gong, W. B., Huazhong Agricultural University 2014

      10 Wang, S., "Windows QTL cartographer 2.5"

      1 Xiong, D. K., Huazhong Agricultural University 2014

      2 Sun, L. D., Beijing Forestry University 2013

      3 Wang, Y., Beijing Academy of Agricultural Sciences 2011

      4 Chen, J., Nanjing Medical University 2008

      5 Yu, Y., Jilin Agricultural University 2016

      6 Yu, Y., Jilin Agricultural University 2013

      7 Song, H., Jilin Agricultural University 2008

      8 Liu, G. J., Jilin Agricultural University 2011

      9 Gong, W. B., Huazhong Agricultural University 2014

      10 Wang, S., "Windows QTL cartographer 2.5"

      11 Cabello, J. V., "The sunflower transcription factor HaHB11 improves yield, biomass and tolerance to flooding in transgenic Arabidopsis plants" 222 : 73-83, 2016

      12 Coello, P., "The sucrose non-fermenting-1-related(SnRK)family of protein kinases : potential for manipulation to improve stress tolerance and increase yield" 62 : 883-893, 2010

      13 Foulongne-Oriol, M., "The genetic linkage map of the medicinal mushroom Agaricus subrufescens reveals highly conserved macrosynteny with the congeneric species Agaricus bisporus" 6 : 1217-1226, 2016

      14 Salmones, D., "Studies on genus Pleurotus. VIII. Interaction between mycelial growth and yield" 14 : 173-176, 1997

      15 Zhang, R. Y., "Strategies to develop SSR markers in edible mushrooms : a review" 8 : 239-244, 2010

      16 Yu, Y., "Spring and Autumn cultivation management technology of Gloeostereum incarnatum" 10 : 145-146, 2013

      17 Lu, L. X., "Research progress of genetic linkage map on the edible fungi" 2 : 140-143, 2017

      18 Song, H., "Research overview of Gloeostereum incarnatum" 27 : 3-4, 2008

      19 Murray, M. G., "Rapid isolation of high molecular weight plant DNA" 8 : 4321-4326, 1980

      20 Larraya, L. M., "Quantitative trait loci controlling vegetative growth rate in the edible basidiomycete Pleurotus ostreatus" 68 : 1109-1114, 2002

      21 Zeng, Z. B., "Precision mapping of quantitative trait loci" 136 : 1457-1468, 1994

      22 Gong, W. B., "Phenotypic evaluation and analysis of important agronomic traits in the hybrid and natural populations of Lentinula edode" 179 : 271-276, 2014

      23 Larraya, L. M., "Mapping of genomic regions(quantitative trait loci)controlling production and quality in industrial cultures of the edible basidiomycete Pleurotus ostreatus" 69 : 3617-3625, 2003

      24 Wang, P., "Mapbased cloning of genes encoding key enzymes for pigment synthesis in Auricularia cornea" 123 : 843-853, 2019

      25 Van Ooijen, J. W, "JoinMap 4.0: Software for the calculation of genetic linkage maps in experimental populations" Kyazma B.V. 2006

      26 Kiyama, R., "Genome sequence of the cauliflower mushroom Sparassis crispa(Hanabiratake)and its association with beneficial usage" 8 : 16053-, 2018

      27 Foulongne-Oriol, M, "Genetic linkage mapping in fungi: current state, applications, and future trends" 95 : 891-904, 2012

      28 Xiang, X., "Genetic diversity and population structure of Chinese Lentinula edodes revealed by InDel and SSR markers" 15 : 37-, 2016

      29 Li, H. M., "Genetic differentiation of self-crossing S1 generations of Pleurotus eryngii" 28 : 541-547, 2009

      30 Xie, B. G., "Fruit-body color inheritance of Flammulina velutipes" 23 : 79-84, 2004

      31 Zhang, Z. F., "Extraction optimization and biological properties of a polysaccharide isolated from Gleoestereum incarnatum" 117 : 185-191, 2015

      32 Im, C. H., "Construction of a genetic linkage map and analysis of quantitative trait loci associated with the agronomically important traits of Pleurotus eryngii" 92 : 50-64, 2016

      33 Li-Xin Lu, "Construction of a genetic linkage map and QTL mapping of agronomic traits in Auricularia auricula-judae" 한국미생물학회 55 (55): 792-799, 2017

      34 Gong, W. B., "Constructing a new integrated genetic linkage map and mapping quantitative trait loci for vegetative mycelium growth rate in Lentinula edodes" 118 : 295-308, 2014

      35 Ferreira, S. S., "Co-expression network analysis reveals transcription factors associated to cell wall biosynthesis in sugarcane" 91 : 15-35, 2016

      36 Li, Y., "China’s large-scale microbial resources map" Zhongyuan Peasant Press 2015

      37 Dutech, C., "Challenges of microsatellite isolation in fungi" 44 : 933-949, 2007

      38 Foulongne-Oriol, M., "An expanded genetic linkage map of an intervarietal Agaricus bisporus var. bisporus × A. bisporus var. burnettii hybrid based on AFLP, SSR and CAPS markers sheds light on the recombination behaviour of the species" 47 : 226-236, 2010

      39 Yu, Y., "A new Gloeostereum incarnatum cultivar ‘Qirou 1’" 40 : 1015-1016, 2013

      40 Yu, Y., "A new Gloeostereum incarnatum cultivar ‘Jirou 1’" 43 : 1013-1014, 2016

      41 Ren, Y., "A high resolution genetic map anchoring scaffolds of the sequenced watermelon genome" 7 : e29453-, 2012

      42 Labbé, J., "A genetic linkage map for the ectomycorrhizal fungus Laccaria bicolor and its alignment to the wholegenome sequence assemblies" 180 : 316-328, 2008

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      2008-01-01 평가 등재학술지 유지 (등재유지) KCI등재
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      1999-01-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 1.76 0.2 1.22
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.91 0.73 0.399 0.07
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