数字农科院2.0

Unveiling the Unique Phenotypic, Photosynthetic, and Biochemical Traits of the JQA Wrinkled Leaf Mutant in Sesame (Sesamum indicum L.)

文献类型: 外文期刊

作者: Zhou, Fang;Yang, Yuanxiao;Zhou, Ting;Liu, Hongyan

作者机构:

关键词: Sesame;Wrinkled leaf;Phenotype;Photosynthesis;Physiochemical index

期刊名称: JOURNAL OF PLANT GROWTH REGULATION

ISSN: 0721-7595

年卷期: 2024 年

页码:

收录情况: SCIE(2024版)

摘要: Sesame, a prized oil crop, is acknowledged for its distinctive aroma, health benefits, and copious antioxidants, including sesamin and sesamol. Despite the importance of features like wrinkled leaf and pollen sterility in sesame breeding, scant research into the former impedes progress in cultivation and production. This study endeavors to illuminate the etiology of wrinkled leaves in sesame by probing agronomic and biochemical factors like hydration, nutrient makeup, antioxidant enzymes, and hormones. The investigation found substantial disparities between mutant wrinkled leaves and normal ones; the mutants exhibited heightened water content (86.60% vs 84.99%), augmented dry leaf weight, greater stomata density per unit area (174.58 vs 146.32 cm(-2)), and a significantly amplified carotenoid content by 27.5%. The study deduced that deficient gibberellic acid (GA3) production in mutant leaves during the seedling stage (< 0.005 ng g(-1)) restricts leaf elongation, causing wrinkles. Moreover, abnormal auxin (IAA) production during the seedling stage (< 8.57 ng g(-1)) and deficient jasmonic acid (JA) in both central and flat leaves (< 12.0 ng g(-1)) were associated with wrinkling. Furthermore, excessive late-stage GA3 production (> 0.041 ng g(-1)) led to persistent wrinkling and postponed maturity. This research, the first of its kind, elucidates the biochemical origins of sesame's wrinkled leaf formation, offering insights into the mechanisms of this trait and potentially facilitating the creation of new sterile lines and endorsement of sesame as a fresh-leaf vegetable. Hence, this study offers crucial understanding of the intricate factors governing the development of wrinkled leaves in sesame.

分类号:

  • 相关文献

[1]cis-Regulatory variation affecting gene expression contributes to the improvement of maize kernel size. Li Y.-X., Lu J., He C., Wu X., Cui Y., Chen L., Zhang J., Xie Y., An Y., Liu X., Zhen S., Liu Y., Li C., Zhang D., Shi Y.-S., Song Y., Wang J., Li Y., Wang G., Fu J., Wang T.. 2022

[2]MYOSLID Is a Novel Serum Response Factor-Dependent Long Noncoding RNA That Amplifies the Vascular Smooth Muscle Differentiation Program. Zhao, Jinjing,Zhang, Wei,Wu, Wen,Tou, Emiley,Xue, Min,Richards, Angelene,Jourd'heuil, David,Singer, Harold A.,Long, Xiaochun,Asif, Arif,Lin, Mingyan,Zheng, Deyou,Zheng, Deyou,Jiang, Pengtao,Miano, Joseph M.,Xue, Min.

[3]Mutation of Rice BC12/GDD1, Which Encodes a Kinesin-Like Protein That Binds to a GA Biosynthesis Gene Promoter, Leads to Dwarfism with Impaired Cell Elongation. Li, Juan,Jiang, Jiafu,Xu, Yunyuan,Zhang, Cui,Xiao, Jun,Du, Cheng,Luo, Wei,Chong, Kang,Li, Juan,Zhang, Cui,Xiao, Jun,Du, Cheng,Qian, Qian,Zou, Guoxing,Chen, Mingluan,Huang, Yunqing,Feng, Yuqi,Cheng, Zhukuan,Yuan, Ming,Chong, Kang.

[4]Genetic characterization of antimicrobial resistance in Staphylococcus aureus isolated from bovine mastitis cases in Northwest China. Yang Feng,Wang Xu-rong,Wang Ling,Li Xin-pu,Luo Jin-yin,Zhang Shi-dong,Li Hong-sheng,Wang Qi. 2016

[5]Meta-analysis of constitutive and adaptive QTL for drought tolerance in maize. Hao, Zhuanfang,Li, Xinhai,Liu, Xiulin,Xie, Chuanxiao,Li, Mingshun,Zhang, Degui,Zhang, Shihuang,Hao, Zhuanfang.

[6]TaNAC2, a NAC-type wheat transcription factor conferring enhanced multiple abiotic stress tolerances in Arabidopsis. Mao, Xinguo,Zhang, Hongying,Qian, Xueya,Li, Ang,Zhao, Guangyao,Jing, Ruilian.

[7]LAX PANICLE2 of Rice Encodes a Novel Nuclear Protein and Regulates the Formation of Axillary Meristems. Hattori, Susumu,Omae, Minami,Shimizu-Sato, Sae,Sato, Yutaka,Tabuchi, Hiroaki,Zhang, Yu,Xie, He,Fang, Xiaohua,Chen, Fan,Oikawa, Tetsuo,Qian, Qian,Nishimura, Minoru,Kitano, Hidemi,Yoshida, Hitoshi,Kyozuka, Junko,Sato, Yutaka.

[8]Diversity of plant growth-promoting Paenibacillus mucilaginosus isolated from vegetable fields in Zhejiang, China. Lu, Jing-Jiang,Xue, Ai-Qin,Yang, Sui-juan,Hu, Xiu-Fang,Cao, Zhao-Yun.

[9]Solvent retention capacities as indirect selection criteria for sugar snap cookie quality in Chinese soft wheats. Zhang, Yong,Zhang, Qijun,He, Zhonghu,Zhang, Yan,He, Zhonghu,Ye, Guoyou.

[10]Transgenic expression of TaMYB2A confers enhanced tolerance to multiple abiotic stresses in Arabidopsis. Mao, Xinguo,Jia, Dongsheng,Li, Ang,Zhang, Hongying,Tian, Shanjun,Jia, Jizeng,Jing, Ruilian,Mao, Xinguo,Jia, Dongsheng,Li, Ang,Zhang, Hongying,Tian, Shanjun,Jia, Jizeng,Jing, Ruilian,Jia, Dongsheng,Zhang, Hongying,Zhang, Xiaoke.

[11]Semi-dominant mutations in the CC-NB-LRR-type R gene, NLS1, lead to constitutive activation of defense responses in rice. Tang, Jiuyou,Wang, Yiqin,Liu, Linchuan,Xu, Bo,Li, Feng,Fang, Jun,Chu, Chengcai,Tang, Jiuyou,Wang, Yiqin,Liu, Linchuan,Xu, Bo,Li, Feng,Fang, Jun,Chu, Chengcai,Tang, Jiuyou,Liu, Linchuan,Xu, Bo,Li, Feng,Zhu, Xudong.

[12]Discovery and transmission of functional QTL in the pedigree of an elite soybean cultivar Suinong14. Yang, R. Q.,Qin, J.,Li, Y. H.,Guan, R. X.,Chang, R. Z.,Qiu, L. J.,Qin, J.,Jiang, C. X.,Li, W. B..

[13]Genetic diversity and construction of core collection in Chinese wheat genetic resources. Hao ChenYang,Dong YuChen,Wang LanFen,You GuangXia,Zhang HongNa,Ge HongMei,Jia JiZeng,Zhang XueYong.

[14]Independent Losses of Function in a Polyphenol Oxidase in Rice: Differentiation in Grain Discoloration between Subspecies and the Role of Positive Selection under Domestication. Tang, Tian,Wu, Chung-I,Shi, Suhua,Yu, Yanchun,Wang, Yonghong,Li, Jiayang,Yu, Yanchun,Wang, Yonghong,Li, Jiayang,Qian, Qian,Yan, Meixian,Zeng, Dali,Han, Bin,Han, Bin,Wu, Chung-I,Wu, Chung-I.

[15]QTL mapping for quantities of protein fractions in bread wheat (Triticum aestivum L.). He, Zhonghu,Yan, Jun,Zhang, Yong,Tang, Jianwei,Zhang, Yelun,Yan, Jun,Xiao, Yonggui,Zhang, Yan,Xia, Xianchun,He, Zhonghu.

[16]LncPheDB: a genome-wide lncRNAs regulated phenotypes database in plants. Lou D.,Li F.,Ge J.,Fan W.,Liu Z.,Wang Y.,Huang J.,Xing M.,Guo W.,Wang S.,Qiao W.,Han Z.,Qian Q.,Yang Q.,Zheng X.. 2022

[17]Lost genome segments associate with trait diversity during rice domestication. Zheng X.,Zhong L.,Pang H.,Wen S.,Li F.,Lou D.,Ge J.,Fan W.,Wang T.,Han Z.,Qiao W.,Pan X.,Zhu Y.,Wang J.,Tang C.,Wang X.,Zhang J.,Xu Z.,Kim S.R.,Kohli A.,Ye G.,Olsen K.M.,Fang W.,Yang Q.. 2023

[18]Genetic gains in maize yield and related traits for high-yielding cultivars released during 1980s to 2010s in China. Guangzhou Liu,Haishun Yang,Ruizhi Xie,Yunshan Yang,Wanmao Liu,Xiaoxia Guo,Jun Xue,Bo Ming,Keru Wang,Peng Hou,Shaokun Li. 2021

[19]Construction of a core germplasm bank of upland cotton (Gossypium hirsutum L.) based on phenotype, genotype and favorable alleles. Han, Peng,Tian, Xiaomin,Wang, Ying,Huang, Cong,Ma, Yizan,Zhou, Xiaofeng,Yu, Yu,Zhang, Dawei,Xu, Haijiang,Cao, Yang,Zhu, Bo,Feng, Zhenxiu,He, Shoupu,Du, Xiongming,Lin, Zhongxu,Zhu, Longfu,You, Chunyuan,Pan, Zhenyuan,Nie, Xinhui. 2022

[20]Faba Bean (Vicia faba L.) Yield Estimation Based on Dual-Sensor Data. Cui, Yuxing,Ji, Yishan,Liu, Rong,Li, Weiyu,Liu, Yujiao,Liu, Zehao,Zong, Xuxiao,Yang, Tao. 2023

作者其他论文 更多>>