数字农科院2.0

Metabolome-Based Genome-Wide Association Study of Duck Meat Leads to Novel Genetic and Biochemical Insights

文献类型: 外文期刊

作者: Liu, Dapeng;Zhang, He;Yang, Youyou;Liu, Tong;Guo, Zhanbao;Fan, Wenlei;Wang, Zhen;Yang, Xinting;Zhang, Bo;Liu, Hongfei;Tang, Hehe;Yu, Daxin;Yu, Simeng;Gai, Kai;Mou, Qiming;Cao, Junting;Hu, Jian;Tang, Jing;Hou, Shuisheng;Zhou, Zhengkui

作者机构:

关键词: genetic and biochemical basis;meat flavor and nutrition;metabolites;mGWAS;volatiles

期刊名称: ADVANCED SCIENCE

ISSN:

年卷期: 2023 年

页码:

收录情况: SCIE(2023版) ; ; EI(2023版)

摘要: Meat is among the most consumed foods worldwide and has a unique flavor and high nutrient density in the human diet. However, the genetic and biochemical bases of meat nutrition and flavor are poorly understood. Here, 3431 metabolites and 702 volatiles in 423 skeletal muscle samples are profiled from a gradient consanguinity segregating population generated by Pekin duck x Liancheng duck crosses using metabolomic approaches. The authors identified 2862 metabolome-based genome-wide association studies (mGWAS) signals and 48 candidate genes potentially modulating metabolite and volatile levels, 79.2% of which are regulated by cis-regulatory elements. The level of plasmalogen is significantly associated with TMEM189 encoding plasmanylethanolamine desaturase 1. The levels of 2-pyrrolidone and glycerophospholipids are regulated by the gene expression of AOX1 and ACBD5, which further affects the levels of volatiles, 2-pyrrolidone and decanal, respectively. Genetic variations in GADL1 and CARNMT2 determine the levels of 49 metabolites including L-carnosine and anserine. This study provides novel insights into the genetic and biochemical basis of skeletal muscle metabolism and constitutes a valuable resource for the precise improvement of meat nutrition and flavor.

分类号:

  • 相关文献

[1]Metabolomics: a systems biology approach for enhancing heat stress tolerance in plants. Ali Raza. 2022

[2]Metabolome genome-wide association analyses identify a splice mutation in AADAT affects lysine degradation in duck skeletal muscle. Liu, Dapeng,Fan, Wenlei,Yang, Youyou,Guo, Zhanbao,Xu, Yaxi,Hu, Jian,Liu, Tong,Yu, Simeng,Zhang, He,Tang, Jing,Hou, Shuisheng,Zhou, Zhengkui. 2025

[3]Characterization and feature selection of volatile metabolites in Yangxian pigmented rice varieties through GC-MS and machine learning algorithms. Cheng, Kaiqi,Dong, Ruonan,Pan, Fei,Su, Wen,Xi, Lingjie,Zhang, Meng,Geng, Jingzhang,Gao, Ruichang,Jin, Wengang,Abd El-Aty, A. M.. 2025

[4]Watermelon domestication was shaped by stepwise selection and regulation of the metabolome. Yuan, Pingli,Xu, Congping,He, Nan,Lu, Xuqiang,Zhang, Xingping,Shang, Jianli,Zhu, Hongju,Gong, Chengsheng,Kuang, Hanhui,Tang, Tang,Xu, Yong,Ma, Shuangwu,Sun, Dexi,Zhang, Weiqin,Umer, Muhammad J.,Shi, Jian,Fernie, Alisdair R.,Liu, Wenge,Lu. 2022

[5]The pathway of melatonin biosynthesis in common wheat (Triticum aestivum). Chen, Jie,Zhang, Yueqi,Yin, Huanran,Liu, Wei,Hu, Xin,Li, Dongqin,Lan, Caixia,Gao, Lifeng,He, Zhonghu,Cui, Fa,Fernie, Alisdair R.,Chen, Wei. 2022

[6]Characterization of novel loci controlling seed oil content in Brassica napus by marker metabolite-based multi-omics analysis. Long Li,Zhitao Tian,Jie Chen,Zengdong Tan,Yuting Zhang,Hu Zhao,Xiaowei Wu,Xuan Yao,Weiwei Wen,Wei Chen,Liang Guo. 2023

[7]Rewiring of the seed metabolome during Tartary buckwheat domestication. Zhao, Hui,He, Yuqi,Zhang, Kaixuan,Li, Shijuan,Chen, Yong,He, Ming,He, Feng,Gao, Bin,Yang, Di,Fan, Yu,Zhu, Xuemei,Yan, Mingli,Giglioli-Guivarc'h, Nathalie,Hano, Christophe,Fernie, Alisdair R.,Georgiev, Milen, I,Janovska, Dagmar,Meglic, Vla. 2022

[8]A metabolic perspective of selection for fruit quality related to apple domestication and improvement. Qiong Lin,Jing Chen,Xuan Liu,Bin Wang,Yaoyao Zhao,Liao Liao,Andrew C. Allan,Chongde Sun,Yuquan Duan,Xuan Li,Donald Grierson,Julian C. Verdonk,Kunsong Chen,Yuepeng Han,Jinfeng Bi. 2023

[9]Beyond pathways: Accelerated flavonoids candidate identification and novel exploration of enzymatic properties using combined mapping populations of wheat. Chen, Jie,Zhang, Yueqi,Wei, Jiaqi,Hu, Xin,Yin, Huanran,Liu, Wei,Li, Dongqin,Tian, Wenfei,Hao, Yuanfeng,He, Zhonghu,Fernie, Alisdair R.,Chen, Wei. 2024

[10]Integrative Omics Defines Metabolic Biomarkers and Genetic Regulatory Mechanisms of Mortality Risk. Liu, Peihao,An, Bingxing,Zheng, Jumei,Wang, Qiao,Yang, Zhirui,Li, Zhengda,Liu, Dawei,Ying, Fan,Wen, Jie,Fang, Lingzhao,Zhao, Guiping. 2025

[11]Volatiles of plums evaluated by HS-SPME with GC-MS at the germplasm level. Chai, Qianqian,Li, Shaohua,Chai, Qianqian,Wu, Benhong,Wang, Lijun,Yang, Chunxiang,Wang, Yiju,Chai, Qianqian,Liu, Weisheng,Liu, Youchun,Fang, Jinbao.

[12]Electrophysiological and behavioural responses of the tea geometrid Ectropis obliqua (Lepidoptera: Geometridae) to volatiles from a non-host plant, rosemary, Rosmarinus officinalis (Lamiaceae). Zhang, Zhengqun,Bian, Lei,Sun, Xiaoling,Luo, Zongxiu,Xin, Zhaojun,Luo, Fengjian,Chen, Zongmao.

[13]Elevated O-3 increases volatile organic compounds via jasmonic acid pathway that promote the preference of parasitoid Encarsia formosa for tomato plants. Cui, Hongying,Wei, Jianing,Su, Jianwei,Ge, Feng,Cui, Hongying,Li, Chuanyou.

[14]Change in volatiles, soluble sugars and fatty acids of glutinous rice, japonica rice and indica rice during storage. Xianqiao Hu,Changyun Fang,Weixing Zhang,Lin Lu,Zhenling Guo,Shuimei Li,Mingxue Chen. 2023

[15]Fine Structure and Olfactory Reception of the Labial Palps of Spodoptera frugiperda. Qiuyan Chen,Xiaolan Liu,Song Cao,Baiwei Ma,Mengbo Guo,Jie Shen,Guirong Wang. 2021

[16]Comprehensive investigation on non-volatile and volatile metabolites in four types of green teas obtained from the same tea cultivar of Longjing 43 (Camellia sinensis var. sinensis) using the widely targeted metabolomics. Yali Shi,Yin Zhu,Wanjun Ma,Jiang Shi,Qunhua Peng,Zhi Lin,Haipeng Lv. 2022

[17]Buckwheat Flower Volatiles Attract Peristenus spretus and Enhance Its Field-Level Parasitism of Apolygus lucorum. Shike Xia,Tao Zhang,Livy Williams,Yizhong Yang,Yanhui Lu. 2023

[18]Fine Structure and Olfactory Reception of the Labial Palps of Spodoptera frugiperda. Qiuyan Chen,Xiaolan Liu,Song Cao,Baiwei Ma,Mengbo Guo,Jie Shen,Guirong Wang. 2021

[19]Prickly Ash Seed Kernel: A New Bio-Fumigation Material Against Tobacco Black Shank. Wang, YC, Liu, MH, Han, XB, Zheng, YF, Chao, JM, Zhang, CS. 2020

[20]Fine Structure and Olfactory Reception of the Labial Palps of Spodoptera frugiperda. Qiuyan Chen,Xiaolan Liu,Song Cao,Baiwei Ma,Mengbo Guo,Jie Shen,Guirong Wang. 2021

作者其他论文 更多>>