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Methods Transcriptome and metabolome databases were constructed using different tissues of C. speciosa . The R2R3-MYB transcription factor family was systematically identified based on full-length transcriptome data. Subsequently, the sequence characteristics, phylogenetic relationships, and tissue-specific expression patterns of these genes were analyzed. Results A total of 31 R2R3-type CsMYB genes were identified from the transcriptome data of C. speciosa . Based on phylogenetic analysis with Ninanjie(Arabidopsis thaliana ) and Yueji (Rosa chinensis ), we classified these genes into 11 subfamilies. Members within the same subfamily showed similar conserved motifs and gene structures. Flavonoids, including catechin and epicatechin, were significantly enriched in the pulp and peel. The 31 CsMYB genes exhibited differential expression patterns across various tissues of C. speciosa , among which 14 CsMYB genes, such as CsMYB1 , CsMYB21 , and CsMYB25 , were highly expressed in the peel or pulp. Further correlation analysis revealed that six candidate genes, including CsMYB1 , CsMYB2 , and CsMYB14 , were significantly and positively correlated with the accumulation of multiple flavonoids, such as catechin and epicatechin. These results were further validated by RT-qPCR. Conclusion This study provides the first systematic identification of the R2R3-MYB transcription factor family in C. speciosa and screens key CsMYB genes potentially involved in the regulation of flavonoid biosynthesis. These findings provide a reference for subsequent functional verification of candidate genes and lay a foundation for elucidating the molecular mechanisms underlying the quality formation of C. speciosa ., authors=QI Kangru, WANG Sijia, LIANG Hua, FANG Qingying, LIANG Juan, YU Hanwen, ZHA Liangping, authorsList=QI Kangru, WANG Sijia, LIANG Hua, FANG Qingying, LIANG Juan, YU Hanwen, ZHA Liangping, authorCompany=null, correspAuthors=null, authorNote=null, correspAuthorsNote=null, copyrightStatement=null, copyrightOwner=null, extLink=null, articleAbsUrl=null, sourceXml=null, magXml=null, pdfUrl=null, pdf=null, pdfFileSize=null, pdfExtLink=null, richHtmlUrl=null, mobilePdfUrl=null, reviewReport=null, pdfFirstPage=null, abstractGraph=null, abstractGraphContent=null, abstractVideo=null, citation=null, cebUrl=null, magXmlContent=null, mapNumber=null, fund=null), CN=ArticleExt(id=1304388219655713152, articleId=1304388219458580863, tenantId=1146029695717560320, journalId=1302319053441957962, language=CN, title=宣木瓜中黄酮类化合物合成相关R2R3-MYB转录因子家族鉴定及组织特异性表达分析, columnId=1304140203967410414, journalTitle=中草药, columnName=药材与资源, runingTitle=null, highlight=null, articleAbstract=目的 基于转录组与代谢组数据系统鉴定宣木瓜Chaenomeles speciose R2R3-MYB转录因子家族,筛选可能参与调控黄酮类化合物生物合成的关键候选基因。方法 构建宣木瓜不同组织的转录组与代谢组数据库,利用全长转录组数据对宣木瓜R2R3-MYB转录因子家族进行了系统鉴定,并进一步对序列特征、进化关系及组织特异性表达模式等进行分析。结果 在宣木瓜的转录组数据中经过筛选、鉴定,最终得到31个R2R3型CsMYBs 基因,根据与拟南芥和月季的系统进化分析划分为11个亚组,同一亚组基因具有相似的保守基序和基因结构。儿茶素、表儿茶素等黄酮类化合物在果肉和果皮中显著富集。31个CsMYBs 基因在宣木瓜不同组织中差异表达,其中CsMYB1 、CsMYB21 、CsMYB25 等14个CsMYBs 在果皮或果肉中高表达。进一步通过相关性分析,筛选出CsMYB1 、CsMYB2 、CsMYB14 等6个与多种黄酮类化合物(如儿茶素、表儿茶素)积累呈显著正相关的候选基因,并通过RT-qPCR进行了验证。结论 首次系统鉴定了宣木瓜R2R3-MYB转录因子家族,筛选了可能参与调控黄酮类化合物生物合成的关键CsMYBs ,为后续基因功能验证提供了参考,也为宣木瓜品质形成机制研究奠定了基础。, authors=戚康茹1 , 汪思嘉1 , 梁华1 , 方清影1 , 梁娟1 , 余函纹1 , 查良平1,2 , authorsList=戚康茹, 汪思嘉, 梁华, 方清影, 梁娟, 余函纹, 查良平, authorCompany=1 安徽中医药大学药学院, 安徽 合肥 230000; 2 省部共建安徽道地中药材品质提升协同创新中心, 安徽 合肥 230000, correspAuthors=余函纹, authorNote=戚康茹: 戚康茹(2000—),硕士研究生,主要从事道地药材品质形成机制研究。E-mail:18225967573@163.com, correspAuthorsNote=null, copyrightStatement=null, copyrightOwner=null, extLink=null, articleAbsUrl=null, sourceXml=null, magXml=null, pdfUrl=null, pdf=ByzuEolnD19ToBU2xgx7eA==, pdfFileSize=2764738, pdfExtLink=null, richHtmlUrl=null, mobilePdfUrl=null, reviewReport=null, pdfFirstPage=null, abstractGraph=null, abstractGraphContent=null, abstractVideo=null, citation=null, cebUrl=null, magXmlContent=null, mapNumber=null, fund=安徽高校协同创新项目 (GXXT-2023-072); 安徽中医药大学“常青藤工程”专项基金 (CQT20250204); 国家中医药管理局高水平中医药重点学科中药资源学(药用植物学)建设项目 (zyyzdxk-2023095); 安徽省高校杰出青年科研项目 (2023AH020036))}, authors=null, keywords=[Keyword(id=1304402046023659772, tenantId=1146029695717560320, journalId=1302319053441957962, articleId=1304388219458580863, language=CN, orderNo=1, keyword=宣木瓜), Keyword(id=1304402046145294589, tenantId=1146029695717560320, journalId=1302319053441957962, articleId=1304388219458580863, language=CN, orderNo=2, keyword=R2R3-MYB转录因子), 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叶六奇. 基于SWOT-AHP模型的安徽省中药材产业发展战略分析[J]. 北方园艺, 2023(19): 135-142. Huang W F, He J W, Nisar M F, et al. Phytochemical and pharmacological properties of Chaenomeles speciosa: An edible medicinal Chinese Mugua [J]. Evid Based Complementary Altern Med, 2018, 2018(1): 9591845. Tao W L, Zhao C Y, Lin G X, et al. UPLC-ESI-QTOF-MS/MS analysis of the phytochemical compositions from Chaenomeles speciosa (Sweet) Nakai fruits [J]. J Chromatogr Sci, 2022, 61(1): 15-31. Duan Z H, Jin C, Deng Y, et al. Exploring the chondroprotective effect of Chaenomeles speciosa on glucose-6-phosphate isomerase model mice using an integrated approach of network pharmacology and experimental validation [J]. J Ethnopharmacol, 2023, 314: 116553. Wu Y, Wen J, Xia Y P, et al. Evolution and functional diversification of R2R3-MYB transcription factors in plants [J]. Hortic Res, 2022, 910.1093: hr. Wu M, Zhang Y, Guo P, et al. Genome-wide identification of R2R3-MYB transcription factor family in Styphnolobium japonicum and their function roles in flavonoid biosynthesis during the flower development [J]. Ind Crops Prod, 2025, 233: 121157. Zhu M J, Wang Q Q, Tu S, et al. Genome-wide identification analysis of the R2R3-MYB transcription factor family in Cymbidium sinense for insights into drought stress responses [J]. Int J Mol Sci, 2023, 24(4): 3235. Zhang Y C, Li X C, Qu X L, et al. Identification and characterization of sub-group 4 R2R3-MYB members and their functions in phenylpropanoid and flavonoid regulation in tobacco [J]. Curr Plant Biol, 2024, 37: 100317. 崔占虎, 李淑娇, 满永宏, 等. 艾草R2R3-MYB转录因子家族成员的鉴定及表达分析[J]. 中国中药杂志, 2024, 49(16): 4407-4419. 曾娟, 龙雨青, 付学森, 等. 灰毡毛忍冬MYB转录因子家族成员的挖掘及鉴定[J]. 中国中药杂志, 2023, 48(8): 2103-2115. 李谋亮, 张晓妮, 林胜男, 等. 月季R2R3-MYB转录因子全基因组鉴定与分析[J]. 分子植物育种, 2021, 19(21): 7018-7029. Liang H, Liu W W, Zhao Z Q, et al. Genome-wide identification and expression analysis of the WRKY transcription factors related to sesquiterpenes biosynthesis in Atractylodes lancea [J]. Front Genet, 2025, 16: 1551991. Miao J, Zhao C C, Li X, et al. Chemical composition and bioactivities of two common Chaenomeles fruits in China: Chaenomeles speciosa and Chaenomeles sinensis [J]. J Food Sci, 2016, 81(8): H2049-H2058. Tian H Y, Li X, An L Z, et al. Genetic variation, functional composition, biological activity, and diverse applications of Chaenomeles: A review of current knowledge [J]. Food Chem, 2025, 485: 144404. Batiha G E, Beshbishy A M, Ikram M, et al. The pharmacological activity, biochemical properties, and pharmacokinetics of the major natural polyphenolic flavonoid: Quercetin [J]. Foods, 2020, 9(3): 374. 陈欣欣, 施晓伟, 马培元, 等. 覆盆子指纹图谱分析及多成分含量测定[J]. 中国现代应用药学, 2025, 42(12): 2063-2070. Cheng C Z, Guo Z W, Li H, et al. Integrated metabolic, transcriptomic and chromatin accessibility analyses provide novel insights into the competition for anthocyanins and flavonols biosynthesis during fruit ripening in red apple [J]. Front Plant Sci, 2022, 13: 975356. 何靖容, 商亚芳, 马意龙, 等. 不同产地宣木瓜不同部位活性成分比较分析[J]. 食品工业, 2025, 46(3): 123-127. Hou M Y, Shi J C, Lin C Y, et al. Ultrasound-assisted extraction of triterpenoids from Chaenomeles speciosa leaves: Process optimization, adsorptive enrichment, chemical profiling, and protection against ulcerative colitis [J]. Ultrason Sonochem, 2024, 111: 107136. 殷彪. 宣木瓜叶中生物活性物质提取分离研究[D]. 合肥: 安徽农业大学, 2007. Feng S Q, Xu Y C, Yang L, et al. Genome-wide identification and characterization of R2R3-MYB transcription factors in pear [J]. Sci Hortic, 2015, 197: 176-182. Xie L M, Wang Y N, Tao Y T, et al. Genome-wide identification and analysis of anthocyanin synthesis-related R2R3-MYB genes in Fragaria pentaphylla [J]. BMC Genom, 2024, 25(1): 952. Han Y, Yu J Y, Zhao T, et al. Dissecting the genome-wide evolution and function of R2R3-MYB transcription factor family in Rosa chinensis [J]. Genes, 2019, 10(10): 823. Zhou Z L, Zhang Y, Jiang L L, et al. Genetic basis of UV bullseye size variations in turnip rape (Brassica rapa subsp. oleifera) [J]. Plant Biotechnol J, 2026, 24(5): 3189-3200. Wang Y J, Zhang Y, Fan C J, et al. Genome-wide analysis of MYB transcription factors and their responses to salt stress in Casuarina equisetifolia [J]. BMC Plant Biol, 2021, 21(1): 328. 杨晨欣, 李梦秀, 姜唐, 等. 美人蕉R2R3-MYB基因家族的鉴定及与花青素相关成员的表达分析[J]. 生物技术通报, 2025, 41(12): 201-213. Li P H, Fu J M, Xu Y J, et al. CsMYB1 integrates the regulation of trichome development and catechins biosynthesis in tea plant domestication [J]. New Phytol, 2022, 234(3): 902-917. Xu X W, Zhu Y, Yuan Y, et al. R2R3-MYB transcription factor CsMYB6 0 controls mature fruit skin color by regulating flavonoid accumulation in cucumber [J]. Plant J, 2024, 119(2): 796-813. Li C X, Huang D, Wei R, et al. Genome-wide characterization, identification, and function analysis of candidate JsMYB genes involved in regulating flavonol biosynthesis in Juglans sigillata Dode [J]. Sci Hortic, 2023, 317: 112044. Wang W T, Hu S Y, Yang J, et al. A novel R2R3-MYB transcription factor SbMYB12 positively regulates baicalin biosynthesis in Scutellaria baicalensis Georgi [J]. Int J Mol Sci, 2022, 23(24): 15452. Stracke R, Ishihara H, Huep G, et al. Differential regulation of closely related R2R3-MYB transcription factors controls flavonol accumulation in different parts of the Arabidopsis thaliana seedling [J]. Plant J, 2007, 50(4): 660-677.)
中草药
|药材与资源
2026
, 57
(15) :
6053
-6065
宣木瓜中黄酮类化合物合成相关R2R3-MYB转录因子家族鉴定及组织特异性表达分析
全屏
戚康茹1 , 汪思嘉1 , 梁华1 , 方清影1 , 梁娟1 , 余函纹1 , 查良平1,2
作者信息
1 安徽中医药大学药学院, 安徽 合肥 230000; 2 省部共建安徽道地中药材品质提升协同创新中心, 安徽 合肥 230000
通讯作者:
余函纹
作者简介:
戚康茹: 戚康茹(2000—),硕士研究生,主要从事道地药材品质形成机制研究。E-mail:18225967573@163.com
Identification and tissue-specific expression analysis of R2R3-MYB transcription factor family related to flavonoid biosynthesis in Chaenomeles speciose
QI Kangru, WANG Sijia, LIANG Hua, FANG Qingying, LIANG Juan, YU Hanwen, ZHA Liangping
Affiliations
doi: 10.7501/j.issn.0253-2670.2026.15.022
文章导航
目的 基于转录组与代谢组数据系统鉴定宣木瓜Chaenomeles speciose R2R3-MYB转录因子家族,筛选可能参与调控黄酮类化合物生物合成的关键候选基因。方法 构建宣木瓜不同组织的转录组与代谢组数据库,利用全长转录组数据对宣木瓜R2R3-MYB转录因子家族进行了系统鉴定,并进一步对序列特征、进化关系及组织特异性表达模式等进行分析。结果 在宣木瓜的转录组数据中经过筛选、鉴定,最终得到31个R2R3型CsMYBs 基因,根据与拟南芥和月季的系统进化分析划分为11个亚组,同一亚组基因具有相似的保守基序和基因结构。儿茶素、表儿茶素等黄酮类化合物在果肉和果皮中显著富集。31个CsMYBs 基因在宣木瓜不同组织中差异表达,其中CsMYB1 、CsMYB21 、CsMYB25 等14个CsMYBs 在果皮或果肉中高表达。进一步通过相关性分析,筛选出CsMYB1 、CsMYB2 、CsMYB14 等6个与多种黄酮类化合物(如儿茶素、表儿茶素)积累呈显著正相关的候选基因,并通过RT-qPCR进行了验证。结论 首次系统鉴定了宣木瓜R2R3-MYB转录因子家族,筛选了可能参与调控黄酮类化合物生物合成的关键CsMYBs ,为后续基因功能验证提供了参考,也为宣木瓜品质形成机制研究奠定了基础。
宣木瓜
/
R2R3-MYB转录因子
/
黄酮类化合物
/
转录组学
/
代谢组学
/
儿茶素
/
表儿茶素
Objective To systematically identify the R2R3-MYB transcription factor family in Xuanmugua(Chaenomeles speciose ) based on transcriptomic and metabolomic data, and to screen key candidate genes potentially involved in the regulation of flavonoid biosynthesis. Methods Transcriptome and metabolome databases were constructed using different tissues of C. speciosa . The R2R3-MYB transcription factor family was systematically identified based on full-length transcriptome data. Subsequently, the sequence characteristics, phylogenetic relationships, and tissue-specific expression patterns of these genes were analyzed. Results A total of 31 R2R3-type CsMYB genes were identified from the transcriptome data of C. speciosa . Based on phylogenetic analysis with Ninanjie(Arabidopsis thaliana ) and Yueji (Rosa chinensis ), we classified these genes into 11 subfamilies. Members within the same subfamily showed similar conserved motifs and gene structures. Flavonoids, including catechin and epicatechin, were significantly enriched in the pulp and peel. The 31 CsMYB genes exhibited differential expression patterns across various tissues of C. speciosa , among which 14 CsMYB genes, such as CsMYB1 , CsMYB21 , and CsMYB25 , were highly expressed in the peel or pulp. Further correlation analysis revealed that six candidate genes, including CsMYB1 , CsMYB2 , and CsMYB14 , were significantly and positively correlated with the accumulation of multiple flavonoids, such as catechin and epicatechin. These results were further validated by RT-qPCR. Conclusion This study provides the first systematic identification of the R2R3-MYB transcription factor family in C. speciosa and screens key CsMYB genes potentially involved in the regulation of flavonoid biosynthesis. These findings provide a reference for subsequent functional verification of candidate genes and lay a foundation for elucidating the molecular mechanisms underlying the quality formation of C. speciosa .
Chaenomeles speciose (Sweet) Nakai
/
R2R3-MYB transcription factor
/
transcriptomics
/
metabolomics
/
catechin
/
epicatechin
戚康茹, 汪思嘉, 梁华, 方清影, 梁娟, 余函纹, 查良平.
宣木瓜中黄酮类化合物合成相关R2R3-MYB转录因子家族鉴定及组织特异性表达分析.
中草药,
2026
, 57
(15)
: 6053
-6065
.
DOI: 10.7501/j.issn.0253-2670.2026.15.022
QI Kangru, WANG Sijia, LIANG Hua, FANG Qingying, LIANG Juan, YU Hanwen, ZHA Liangping.
Identification and tissue-specific expression analysis of R2R3-MYB transcription factor family related to flavonoid biosynthesis in Chaenomeles speciose [J].
Chinese Traditional and Herbal Drugs ,
2026
, 57
(15)
: 6053
-6065
.
DOI: 10.7501/j.issn.0253-2670.2026.15.022
安徽高校协同创新项目 (GXXT-2023-072); 安徽中医药大学“常青藤工程”专项基金 (CQT20250204); 国家中医药管理局高水平中医药重点学科中药资源学(药用植物学)建设项目 (zyyzdxk-2023095); 安徽省高校杰出青年科研项目 (2023AH020036)
参考文献
引证文献
中国药典[S]. 一部. 2025: 168. 彭华胜, 程铭恩, 王德群, 等. 药用木瓜的资源与采收加工调查[J]. 中华中医药杂志, 2009, 24(10): 1296-1298. 李时珍. 本草纲目[M]. 张守康. 主校. 北京: 中国中医药出版社, 1998: 749-750. 蒋佳慧, 叶六奇. 基于SWOT-AHP模型的安徽省中药材产业发展战略分析[J]. 北方园艺, 2023(19): 135-142. Huang W F, He J W, Nisar M F, et al. Phytochemical and pharmacological properties of Chaenomeles speciosa: An edible medicinal Chinese Mugua [J]. Evid Based Complementary Altern Med, 2018, 2018(1): 9591845. Tao W L, Zhao C Y, Lin G X, et al. UPLC-ESI-QTOF-MS/MS analysis of the phytochemical compositions from Chaenomeles speciosa (Sweet) Nakai fruits [J]. J Chromatogr Sci, 2022, 61(1): 15-31. Duan Z H, Jin C, Deng Y, et al. Exploring the chondroprotective effect of Chaenomeles speciosa on glucose-6-phosphate isomerase model mice using an integrated approach of network pharmacology and experimental validation [J]. J Ethnopharmacol, 2023, 314: 116553. Wu Y, Wen J, Xia Y P, et al. Evolution and functional diversification of R2R3-MYB transcription factors in plants [J]. Hortic Res, 2022, 910.1093: hr. Wu M, Zhang Y, Guo P, et al. Genome-wide identification of R2R3-MYB transcription factor family in Styphnolobium japonicum and their function roles in flavonoid biosynthesis during the flower development [J]. Ind Crops Prod, 2025, 233: 121157. Zhu M J, Wang Q Q, Tu S, et al. Genome-wide identification analysis of the R2R3-MYB transcription factor family in Cymbidium sinense for insights into drought stress responses [J]. Int J Mol Sci, 2023, 24(4): 3235. Zhang Y C, Li X C, Qu X L, et al. Identification and characterization of sub-group 4 R2R3-MYB members and their functions in phenylpropanoid and flavonoid regulation in tobacco [J]. Curr Plant Biol, 2024, 37: 100317. 崔占虎, 李淑娇, 满永宏, 等. 艾草R2R3-MYB转录因子家族成员的鉴定及表达分析[J]. 中国中药杂志, 2024, 49(16): 4407-4419. 曾娟, 龙雨青, 付学森, 等. 灰毡毛忍冬MYB转录因子家族成员的挖掘及鉴定[J]. 中国中药杂志, 2023, 48(8): 2103-2115. 李谋亮, 张晓妮, 林胜男, 等. 月季R2R3-MYB转录因子全基因组鉴定与分析[J]. 分子植物育种, 2021, 19(21): 7018-7029. Liang H, Liu W W, Zhao Z Q, et al. Genome-wide identification and expression analysis of the WRKY transcription factors related to sesquiterpenes biosynthesis in Atractylodes lancea [J]. Front Genet, 2025, 16: 1551991. Miao J, Zhao C C, Li X, et al. Chemical composition and bioactivities of two common Chaenomeles fruits in China: Chaenomeles speciosa and Chaenomeles sinensis [J]. J Food Sci, 2016, 81(8): H2049-H2058. Tian H Y, Li X, An L Z, et al. Genetic variation, functional composition, biological activity, and diverse applications of Chaenomeles: A review of current knowledge [J]. Food Chem, 2025, 485: 144404. Batiha G E, Beshbishy A M, Ikram M, et al. The pharmacological activity, biochemical properties, and pharmacokinetics of the major natural polyphenolic flavonoid: Quercetin [J]. Foods, 2020, 9(3): 374. 陈欣欣, 施晓伟, 马培元, 等. 覆盆子指纹图谱分析及多成分含量测定[J]. 中国现代应用药学, 2025, 42(12): 2063-2070. Cheng C Z, Guo Z W, Li H, et al. Integrated metabolic, transcriptomic and chromatin accessibility analyses provide novel insights into the competition for anthocyanins and flavonols biosynthesis during fruit ripening in red apple [J]. Front Plant Sci, 2022, 13: 975356. 何靖容, 商亚芳, 马意龙, 等. 不同产地宣木瓜不同部位活性成分比较分析[J]. 食品工业, 2025, 46(3): 123-127. Hou M Y, Shi J C, Lin C Y, et al. Ultrasound-assisted extraction of triterpenoids from Chaenomeles speciosa leaves: Process optimization, adsorptive enrichment, chemical profiling, and protection against ulcerative colitis [J]. Ultrason Sonochem, 2024, 111: 107136. 殷彪. 宣木瓜叶中生物活性物质提取分离研究[D]. 合肥: 安徽农业大学, 2007. Feng S Q, Xu Y C, Yang L, et al. Genome-wide identification and characterization of R2R3-MYB transcription factors in pear [J]. Sci Hortic, 2015, 197: 176-182. Xie L M, Wang Y N, Tao Y T, et al. Genome-wide identification and analysis of anthocyanin synthesis-related R2R3-MYB genes in Fragaria pentaphylla [J]. BMC Genom, 2024, 25(1): 952. Han Y, Yu J Y, Zhao T, et al. Dissecting the genome-wide evolution and function of R2R3-MYB transcription factor family in Rosa chinensis [J]. Genes, 2019, 10(10): 823. Zhou Z L, Zhang Y, Jiang L L, et al. Genetic basis of UV bullseye size variations in turnip rape (Brassica rapa subsp. oleifera) [J]. Plant Biotechnol J, 2026, 24(5): 3189-3200. Wang Y J, Zhang Y, Fan C J, et al. Genome-wide analysis of MYB transcription factors and their responses to salt stress in Casuarina equisetifolia [J]. BMC Plant Biol, 2021, 21(1): 328. 杨晨欣, 李梦秀, 姜唐, 等. 美人蕉R2R3-MYB基因家族的鉴定及与花青素相关成员的表达分析[J]. 生物技术通报, 2025, 41(12): 201-213. Li P H, Fu J M, Xu Y J, et al. CsMYB1 integrates the regulation of trichome development and catechins biosynthesis in tea plant domestication [J]. New Phytol, 2022, 234(3): 902-917. Xu X W, Zhu Y, Yuan Y, et al. R2R3-MYB transcription factor CsMYB6 0 controls mature fruit skin color by regulating flavonoid accumulation in cucumber [J]. Plant J, 2024, 119(2): 796-813. Li C X, Huang D, Wei R, et al. Genome-wide characterization, identification, and function analysis of candidate JsMYB genes involved in regulating flavonol biosynthesis in Juglans sigillata Dode [J]. Sci Hortic, 2023, 317: 112044. Wang W T, Hu S Y, Yang J, et al. A novel R2R3-MYB transcription factor SbMYB12 positively regulates baicalin biosynthesis in Scutellaria baicalensis Georgi [J]. Int J Mol Sci, 2022, 23(24): 15452. Stracke R, Ishihara H, Huep G, et al. Differential regulation of closely related R2R3-MYB transcription factors controls flavonol accumulation in different parts of the Arabidopsis thaliana seedling [J]. Plant J, 2007, 50(4): 660-677.
2026年第57卷第15期
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2种不同金属材料的力学参数
科 Family 属数 Number of genus 种数 Number of species 占总种数比例 Percentage of total species (%) 属 Genus 种数 Number of species 占总种数比例 Percentage of total species (%) 鹅膏菌科Amanitaceae 2 11 5.26 鹅膏菌属 Amanita 10 4.78 小菇科 Mycenaceae 2 12 5.74 丝盖伞属 Inocybe 5 2.39 多孔菌科 Polyporaceae 8 14 6.70 蜡蘑属 Laccaria 5 2.39 红菇科 Russulaceae 3 23 11.00 小皮伞属 Marasmius 6 2.87 小菇属 Mycena 11 5.26 光柄菇属 Pluteus 5 2.39 红菇属 Russula 17 8.13 栓菌属 Trametes 5 2.39
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