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21por Lyu, Jun, Huang, Liyu, Zhang, Shilai, Zhang, Yesheng, He, Weiming, Zeng, Peng, Zeng, Yan, Huang, Guangfu, Zhang, Jing, Ning, Min, Bao, Yachong, Zhao, Shilei, Fu, Qi, Wade, Len J., Chen, Hua, Wang, Wen, Hu, Fengyi“…The rice orthologue of maize domestication gene Teosinte branched 1 (Tb1) affects tillering. But, unlike maize Tb1 gene, it was not selected during domestication. …”
Publicado 2020
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22por Sepúlveda-García, Edgar Baldemar, Pulido-Barajas, José Francisco, Huerta-Heredia, Ariana Arlene, Peña-Castro, Julián Mario, Liu, Renyi, Barrera-Figueroa, Blanca Estela“…In this study, we analyzed the expression of maize and teosinte miRNAs by high-throughput sequencing of small RNA libraries in maize and its ancestor teosinte (Zea mays ssp. parviglumis), under submergence, drought, and alternated stress. …”
Publicado 2020
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23por Barnes, Allison C., Rodríguez-Zapata, Fausto, Juárez-Núñez, Karla A., Gates, Daniel J., Janzen, Garrett M., Kur, Andi, Wang, Li, Jensen, Sarah E., Estévez-Palmas, Juan M., Crow, Taylor M., Kavi, Heli S., Pil, Hannah D., Stokes, Ruthie L., Knizner, Kevan T., Aguilar-Rangel, Maria R., Demesa-Arévalo, Edgar, Skopelitis, Tara, Pérez-Limón, Sergio, Stutts, Whitney L., Thompson, Peter, Chiu, Yu-Chun, Jackson, David, Muddiman, David C., Fiehn, Oliver, Runcie, Daniel, Buckler, Edward S., Ross-Ibarra, Jeffrey, Hufford, Matthew B., Sawers, Ruairidh J. H., Rellán-Álvarez, Rubén“…Native Americans domesticated maize (Zea mays ssp. mays) from lowland teosinte parviglumis (Zea mays ssp. parviglumis) in the warm Mexican southwest and brought it to the highlands of Mexico and South America where it was exposed to lower temperatures that imposed strong selection on flowering time. …”
Publicado 2022
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24por Feng, Xuanjun, Xiong, Hao, Zheng, Dan, Xin, Xiaobing, Zhang, Xuemei, Wang, Qingjun, Wu, Fengkai, Xu, Jie, Lu, Yanli“…Three populations of BC(2)F(8) recombinant inbred lines (RILs) were developed by crossing two different teosintes, Z. diploperennis and Z. parviglumis, with maize inbred lines B73 and Zheng58, and were screened for FER resistance. …”
Publicado 2022
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25por Inzunza Mascareño, Fausto R.Materias: Enlace del recurso
Publicado 2013
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26por Mutyambai, Daniel M., Bruce, Toby J. A., Midega, Charles A. O., Woodcock, Christine M., Caulfield, John C., Van Den Berg, Johnnie, Pickett, John A., Khan, Zeyaur R.“…Maize, a genetically diverse crop, is the domesticated descendent of its wild ancestor, teosinte. Recently, we have shown that certain maize landraces possess a valuable indirect defense trait not present in commercial hybrids. …”
Publicado 2015
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27por Zhang, Xiaolei, Lu, Ming, Xia, Aiai, Xu, Tao, Cui, Zhenhai, Zhang, Ruiying, Liu, Wenguo, He, Yan“…BACKGROUND: The maize husk consists of numerous leafy layers and plays vital roles in protecting the ear from pathogen infection and dehydration. Teosinte, the wild ancestor of maize, has about three layers of small husk outer covering the ear. …”
Publicado 2021
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28por Chen, Qiuyue, Samayoa, Luis Fernando, Yang, Chin Jian, Olukolu, Bode A., York, Alessandra M., Sanchez-Gonzalez, Jose de Jesus, Xue, Wei, Glaubitz, Jeffrey C., Bradbury, Peter J., Romay, Maria Cinta, Sun, Qi, Buckler, Edward S., Holland, James B., Doebley, John F.“…While selection drove changes in essentially all traits between teosinte and maize, selection explains little of the difference in domestication traits among populations within teosinte or maize.…”
Publicado 2021
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29por Devos, Yann, Aiassa, Elisa, Muñoz‐Guajardo, Irene, Messéan, Antoine, Mullins, Ewen“…Teosinte, wild maize relatives originating from Mexico and Central America, emerged as a noxious agricultural weed in France and Spain. …”
Publicado 2022
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30por Wang, Kailiang, Zhang, Zhen, Sha, XiaoQian, Yu, Peng, Li, Yongxiang, Zhang, Dengfeng, Liu, Xuyang, He, Guanhua, Li, Yu, Wang, Tianyu, Guo, Jie, Chen, Jiafa, Li, Chunhui“…Seminal roots play an important role in acquisition of water and nutrients by maize seedlings. Compared with its teosinte ancestor, maize underwent a change in seminal root number (SRN). …”
Publicado 2023
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31por Xue, Wei, Anderson, Sarah N., Wang, Xufeng, Yang, Liyan, Crisp, Peter A., Li, Qing, Noshay, Jaclyn, Albert, Patrice S., Birchler, James A., Bilinski, Paul, Stitzer, Michelle C., Ross-Ibarra, Jeffrey, Flint-Garcia, Sherry, Chen, Xuemei, Springer, Nathan M., Doebley, John F.“…In the course of generating populations of maize with teosinte chromosomal introgressions, an unusual sickly plant phenotype was noted in individuals from crosses with two teosinte accessions collected near Valle de Bravo, Mexico. …”
Publicado 2019
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32por Zobrist, Jacob D., Martin-Ortigosa, Susana, Lee, Keunsub, Azanu, Mercy K., Ji, Q, Wang, Kan“…Modern maize exhibits a significantly different phenotype than its wild progenitor teosinte despite many genetic similarities. Of the many subspecies of Zea mays identified as teosinte, Zea mays ssp. parviglumis is the most closely related to domesticated maize. …”
Publicado 2021
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33por Zhang, Ming, Li, Yidan, Liang, Xiaoyan, Lu, Minhui, Lai, Jinsheng, Song, Weibin, Jiang, Caifu“…SNP947‐G first occurred in the wild grass teosinte (at a allele frequency of 43%) and has become a minor allele in the maize population (allele frequency 6.1%), suggesting that SNP947‐G is derived from teosinte and that the genomic region flanking SNP947 likely has undergone selection during domestication or post‐domestication dispersal of maize. …”
Publicado 2022
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34por De-la-Vega-Camarillo, Esaú, Hernández-García, Juan Alfredo, Villa-Tanaca, Lourdes, Hernández-Rodríguez, César“…Three teosinte species are recognized: Zea diploperennis, Zea perennis, and Zea mays. …”
Publicado 2023
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36por Moreno-Pachon, Natalia M., Mutimawurugo, Marie-Chantal, Heynen, Eveline, Sergeeva, Lidiya, Benders, Anne, Blilou, Ikram, Hilhorst, Henk W. M., Immink, Richard G. H.Enlace del recurso
Publicado 2017
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37por Samayoa, Luis Fernando, Olukolu, Bode A., Yang, Chin Jian, Chen, Qiuyue, Stetter, Markus G., York, Alessandra M., Sanchez-Gonzalez, Jose de Jesus, Glaubitz, Jeffrey C., Bradbury, Peter J., Romay, Maria Cinta, Sun, Qi, Yang, Jinliang, Ross-Ibarra, Jeffrey, Buckler, Edward S., Doebley, John F., Holland, James B.“…We developed a novel linkage scan to identify quantitative trait loci (QTL) representing large-effect rare variants carried by only a single parent, which were more important in teosinte than maize. Teosinte also carried more putative juvenile-acting lethal variants identified by segregation distortion. …”
Publicado 2021
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38“…BACKGROUND: There was ancient human selection on the wild progenitor of modern maize, Balsas teosinte, for decreased shoot branching (tillering), in order to allow more nutrients to be diverted to grain. …”
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39“…SM-985 is a cationic AMP (CAMP) isolated from the cDNA library of Mexican teosinte (Zea mays ssp. mexicana). A computational prediction server running with different algorithms was used to screen the teosinte cDNA library for AMPs, and the SM-985 peptide was predicted as an AMP with high probability prediction values. …”
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40“…Tillering is an important biomass yield component trait in switchgrass (Panicum virgatum L.). Teosinte branched 1 (tb1)/Branched 1 (BRC1) gene is a known regulator for tillering/branching in several plant species; however, its role on tillering in switchgrass remains unknown. …”
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