数字农科院2.0

Advanced gene editing techniques for enhancing disease resistance and climate resilience in crops

文献类型: 外文期刊

作者: Sarfraz, Zareen;Zarlashat, Yusra;Ambreen, Alia;Mujahid, Muhammad;Iqbal, Muhammad Shahid

作者机构:

关键词: (1-1-1)CRISPR-Cas9;disease resistance;gene editing;multi resistance;sustainable agriculture;TALENs;ZFNs;zinc finger

期刊名称: FUNCTIONAL PLANT BIOLOGY

ISSN: 1445-4408

年卷期: 2025 年 52 卷 6 期

页码:

收录情况: SCIE(2025版)

摘要: Ensuring food security and solving the issues brought on by climate change require breeding and engineering of climate-resilient crops. Despite its contributions to reducing agricultural diseases, genetic engineering has several limitations, including high labor costs, lengthy processing times, and poor productivity. Genome editing has become a potential method to provide notable opportunities to explain complex biological processes, genetically solve the causes of diseases, and improve crops for disease resistance by effectively modifying multiple traits. Genome editing techniques including TALENs, ZFNs, and CRISPR/Cas9 increase agricultural productivity by developing climate-resistant crops and promoting climate-resilient agriculture. Among these approaches, CRISPR/Cas9 shows exceptional efficacy, minimal chance of off-target effects, and improved traits such as drought tolerance and disease resistance. This study explores advanced gene editing techniques for improving disease resistance in crops and developing climate-resilient varieties to reduce food insecurity and hunger. It demonstrates that these techniques have enhanced the nutritional content and resilience of many crops by fighting abiotic and biotic stresses. Future agricultural practices could alter the genes and improve disease-resistant crops by genome editing techniques.

分类号:

  • 相关文献

[1]基因编辑技术研究进展及在水稻品质研究中的展望(英文). 谢红军,朱明东,汤国华,凌春强,余应弘. 2017

[2]基因组编辑技术在昆虫功能基因组研究中的应用. 张忠杰,刘晓静,李木旺,谭安江,黄勇平. 2015

[3]CRISPR/Cas9: A powerful tool for crop genome editing. Song G, Jia M, Chen K, Kong X, Khattak B, Xie C, Li A, Mao L. 2016

[4]Breakthrough in CRISPR/Cas system: Current and future directions and challenges. Ali, Ahmad,Zafar, Muhammad Mubashar,Farooq, Zunaira,Ahmed, Syed Riaz,Ijaz, Aqsa,Anwar, Zunaira,Abbas, Huma,Tariq, Muhammad Sayyam,Tariq, Hala,Mustafa, Mahwish,Bajwa, Mubasher Hussain,Shaukat, Fiza,Razzaq, Abdul,Maozhi, Ren. 2023

[5]Physiological and Molecular Mechanisms of Lepidopteran Insects: Genomic Insights and Applications of Genome Editing for Future Research. Dongsheng Niu,Qing Zhao,Linbo Xu,Kejian Lin. 2024

[6]利用TALENs技术建立基因定点修饰的猪Oct-4-EGFP细胞系. 刘畅,冯冲,宋志强,李西睿,王宁,储明星,潘登科. 2013

[7]基因组编辑技术应用于作物遗传改良的进展与挑战. 王福军,赵开军. 2018

[8]TALENs:植物基因组定点剪辑的分子剪. 赵开军,杨兵. 2012

[9]Intracellular delivery of artificial transcription factors fused to the protein transduction domain of HIV-1 Tat. Zhao, Xinghui,Dong, Yunzhu,Guo, Junwei,Liu, Jie,Huang, Peitang,Dong, Dayong,Fan, Hongyan,Guo, Qiang,Yang, Xiuxu,Xu, Junjie,Li, Jianmin,Fu, Ling,Chen, Wei,Zhao, Zhanzhong,Liu, Jie. 2013

[10]Functional characterization of rice CW-domain containing zinc finger proteins involved in histone recognition. Zhang, Zhe,Zhang, Feng,Cheng, Zhi-jun,Lin, Qi-bing,Wu, Fu-qing,Wang, Jiu-lin,Wang, Jie,Guo, Xiu-ping,Zhang, Xin,Lei, Cal-lin,Zhao, Zhi-chao,Zhu, Shan-shan,Wan, Jian-min,Liu, Ling-long,Zhang, Huan,Wan, Jian-min.

[11]The last half-repeat of transcription activator-like effector (TALE) is dispensable and thereby TALE-based technology can be simplified. Zheng, Chong-Ke,Wang, Chun-Lian,Zhang, Xiao-Ping,Wang, Fu-Jun,Qin, Teng-Fei,Zhao, Kai-Jun.

[12]In planta haploid induction by genome editing of DMP in the model legume Medicago truncatula. Wang N., Xia X., Jiang T., Li L., Zhang P., Niu L., Cheng H., Wang K., Lin H.. 2023

[13]Multiplex precision gene editing by a surrogate prime editor in rice. Li H., Zhu Z., Li S., Li J., Yan L., Zhang C., Ma Y., Xia L.. 2022

[14]Generation Of A New Thermo-Sensitive G.enic Male Sterile Rice L ine By Targeted Mutagenesis Of Tms5 Gene Through Crispr/Cas9 System. Wang, Wei,Wei Xiangjin,Sheng Zhonghua,Barman, Hirendra Nath,Jiao Guiai,Barman, Hirendra Nath,Cai Yicong,Zhong, Min,Hu Peisong,Tang Shaoqing,Wu Yawen,Fiaz, Sajid. 2019

[15]The Potential of CRISPR/Cas9 Gene Editing as a Treatment Strategy for Inherited Diseases. Sameh A. Abdelnour,Long Xie,Abdallah A. Hassanin,Erwei Zuo,Yangqing Lu. 2021

[16]Time-ordering japonica/geng genomes analysis indicates the importance of large structural variants in rice breeding. Wang, Yu,Li, Fengcheng,Zhang, Fan,Wu, Lian,Xu, Na,Sun, Qi,Chen, Hao,Yu, Zhiwen,Lu, Jiahao,Jiang, Kai,Wang, Xiaoche,Wen, Siyu,Zhou, Yao,Zhao, Hui,Jiang, Qian,Wang, Jiahong,Jia, Ruizong,Sun, Jian,Tang, Liang,Xu, Hai,Hu, Wei,Xu, Zhengjin. 2022

[17]CRISPR-Cas System, a Possible “Savior” of Rice Threatened by Climate Change: An Updated Review. Nabeel Shaheen,Shakeel Ahmad,Salem S. Alghamdi,Hafiz Mamoon Rehman,Muhammad Arshad Javed,Javaria Tabassum,Gaoneng Shao. 2023

[18]Improve meat production and virus resistance by simultaneously editing multiple genes in livestock using Cas12iMax. Ren, Jilong,Hai, Tang,Chen, Yangcan,Sun, Ke,Han, Zhiqiang,Wang, Jing,Li, Chongyang,Wang, Qingwei,Wang, Leyun,Zhu, Huabing,Yu, Dawei,Li, Wei,Zhao, Shanjiang. 2023

[19]Emerging Strategies Mold Plasticity of Vegetable Plants in Response to High Temperature Stress. Wen Feng Nie,Enjie Xing,Jinyu Wang,Yueying Mao,Xiaotao Ding,Jianfei Guo. 2022

[20]Generation of immunodeficient pig with hereditary tyrosinemia type 1 and their preliminary application for humanized liver. Jilong Ren,Dawei Yu,Jing Wang,Kai Xu,Yanan Xu,Renren Sun,Peipei An,Chongyang Li,Guihai Feng,Ying Zhang,Xiangpeng Dai,Hongye Zhao,Zhengzhu Wang,Zhiqiang Han,Haibo Zhu,Yuchun Ding,Xiaoyan You,Xueqin Liu,Meng Wu,Lin Luo,Ziyi Li,Yong Guang Yang,Zheng Hu,Hong jiang Wei,Liangpeng Ge,Tang Hai,Wei Li. 2022

作者其他论文 更多>>