Gene Editing

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    Development of cytosine and adenine base editors for maize precision breeding
    Xiao Fu, Nan Wang, Lina Li, Dexin Qiao, Xiantao Qi, Changlin Liu, Zhaoxu Gao, Chuanxiao Xie, Jinjie Zhu
    J Integr Plant Biol 2025, 67 (10): 2731-2743.  
    doi: 10.1111/jipb.13964
    Abstract (Browse 372)  |   Save
    Base editing technologies can improve crops, but their efficiency in maize remains suboptimal. This study attempts to overcome these limitations by examining optimized cytosine and adenine base editors (CBEs and ABEs), namely evoAPOBEC1, evoFERNY, evoCDA1, TadA8.20, and TadA8e, for precise genome editing in transient and stable expression maize cells. Employing a seed fluorescence reporter (SFR) system for rapid screening of BE transformants and transgene-free progenies, we enhanced editing efficiencies and heritability. Notably, TadA8.20 and evoCDA1 attained multiplexed editing efficiencies of up to 100.0% and 79.0% at the tested loci, respectively, with some homozygous and bi-allelic mutants exceeding 72.4% and 73.7%. Precise editing of ZmACC1/2 (acetyl-CoA carboxylase) improved herbicide resistance, with ZmACC2 mutants displaying improved performance. This study advances crop genetic engineering by facilitating robust, multi-locus modifications without altered agronomic performance, enhancing herbicide tolerance in maize. The successful utilization of these BE is a significant step forward in agricultural biotechnology and precision breeding.
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    A series of maize cytosine and adenine base editors was developed using various deaminase variants, enabling efficient multiplex genome editing in maize. Precise editing of the ZmACC1/2 genes generated herbicide-tolerant maize germplasm, offering a solution for weed management in maize-soybean intercropping systems.
      
    Directional improvement of agronomic traits in salt-tolerant rice by multiplex-genome-editing
    Yu Hao, Bingqun Xu, Wubei Zong, Shengting Li, Duoduo Du, Miaomiao Chen, Dongdong Xiao, Yingang Song, Xiaotong Guo, Weitao Li, Zeqiang Wu, Kai Zhang, Nan Liao, Dan Hu, Yao-guang Liu, Jingxin Guo
    J Integr Plant Biol 2025, 67 (9): 2480-2490.  
    DOI: 10.1111/jipb.13926
    Abstract (Browse 492)  |   Save
    Soil salinization has emerged as a major threat affecting crop yields. Global warming leads to a massive loss of terrestrial water and makes soils saltier. Cultivating salt-tolerant crops is the major strategy adopted for utilizing these salinized soils. Sea Rice 86 (SR86) is one such elite salt-tolerant rice variety derived from ancient indica rice. However, SR86 has multiple wild traits, such as tallness and strong photoperiod sensitivity (PS), which have limited its application in agricultural production. In this study, we edited 13 genes responsible for 10 traits in SR86 to develop an improved SR86M line by using clustered regularly interspaced palindromic repeats (CRISPR)/CRISPR-associated protein 9 multiplex-genome-editing technology, high-throughput sequencing, crossing, and progeny selection. Subsequent analysis of SR86M detected nine genes with expected mutations, leading to changes in seven traits, including improvements of plant architecture, plant height and PS decreased, grain number, grain length, fragrance, and nitrogen utilization efficiency increased. The improved agronomic traits in SR86M are similar to modern cultivated rice, along with elite salt tolerance like SR86, indicating suitability for potential cultivation. Our results also reveal the efficiency of multiplex-genome-editing in directional improvement of crop varieties.
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    CRISPR/Cas9 multiplex editing of 13 genes improved the salt-tolerant rice variety Sea Rice 86 (SR86); the optimized SR86M line maintained salt tolerance with enhanced agronomic traits (plant architecture, grain shape, aroma).
      
    Rapid design of transgene-free cabbage with desired anthocyanin contents via HI-Edit
    Hongrun Li, Jiaming Shen, Xinyu Zhao, Jialei Ji, Yong Wang, Limei Yang, Mu Zhuang, Liwang Liu, Yangyong Zhang, Honghao Lv
    J Integr Plant Biol 2025, 67 (9): 2259-2261.  
    doi: 10.1111/jipb.13943
    Abstract (Browse 258)  |   Save
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    The HI-Edit system combines haploid induction and CRISPR/Cas-based genome editing to provide a promising way to design crops with desired traits in a rapid, precise and transgene-free manner. HI-Edit was applied to produce cabbages with desired anthocyanin contents.
      
    Efficient genetic transformation and genome editing via an Agrobacterium-mediated in commercial oat (Avena sativa L.) cultivars
    Kun Shi, Weihong Huang, Mengxin Zhu, Shouzhen Teng, Jinli Zhang, Zhizhen Duan, Chenchen Zhu, Tao Hu, Ke Wang, Zan Wang
    J Integr Plant Biol 2025, 67 (7): 1697-1699.  
    doi: 10.1111/jipb.13915
    Abstract (Browse 445)  |   Save
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    An optimized Agrobacterium-mediated transformation protocol for immature and mature oat embryos increased transformation efficiencies and the number of transformable cultivars and enabled highly efficient CRISPR/Cas9 and CRISPR/Cas12i genome editing to accelerate oat biotechnology breeding.
      
    Creation of fragrant peanut using CRISPR/Cas9
    Lulu Xue, Pengyu Qu, Huanhuan Zhao, Han Liu, Bingyan Huang, Xiaobo Wang, Zhongxin Zhang, Xiaodong Dai, Li Qin, Wenzhao Dong, Lei Shi, Xinyou Zhang
    J Integr Plant Biol 2025, 67 (6): 1438-1440.  
    doi: 10.1111/jipb.13864
    Abstract (Browse 331)  |   Save
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    Targeted knockout of the betaine aldehyde dehydrogenase genes AhBADH1 and AhBADH2 using CRISPR/Cas9 produced peanut mutant lines with significantly elevated 2-acetyl-1-pyrroline levels and a strong aroma, marking the first creation of fragrant peanut lines.
      
    Generation of novel bpm6 and dmr6 mutants with broad-spectrum resistance using a modified CRISPR/Cas9 system in Brassica oleracea
    Yulun Zhang, Jinhui Liu, Yingjie Li, Hongxue Ma, Jialei Ji, Yong Wang, Mu Zhuang, Limei Yang, Zhiyuan Fang, Jun Li, Chao Zhang, Liwang Liu, Marina Lebedeva, Vasiliy Taranov, Yangyong Zhang, Honghao Lv
    J Integr Plant Biol 2025, 67 (5): 1214-1216.  
    doi: 10.1111/jipb.13842
    Abstract (Browse 809)  |   Save
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    Using an optimized CRISPR/Cas9 system to knock out the BTB-POZ and MATH domain gene BoBPM6 and the DOWNY MILDEW RESISTANCE 6 gene in Brassica oleracea resulted in new lines with broad-spectrum disease resistance.
      
    Exploiting the efficient Exo:Cas12i3-5M fusions for robust single and multiplex gene editing in rice
    Wenxue Wang, Shaoya Li, Jiaying Yang, Jingying Li, Lei Yan, Chen Zhang, Yubing He, Lanqin Xia
    J Integr Plant Biol 2025, 67 (5): 1246-1253.  
    doi: 10.1111/jipb.13850
    Abstract (Browse 470)  |   Save
    The development of a single and multiplex gene editing system is highly desirable for either functional genomics or pyramiding beneficial alleles in crop improvement. CRISPR/Cas12i3, which belongs to the Class II Type V-I Cas system, has attracted extensive attention recently due to its smaller protein size and less restricted canonical “TTN” protospacer adjacent motif (PAM). However, due to its relatively lower editing efficiency, Cas12i3-mediated multiplex gene editing has not yet been documented in plants. Here, we fused four 5′ exonucleases (Exo) including T5E, UL12, PapE, ME15 to the N terminal of an optimized Cas12i3 variant (Cas12i3-5M), respectively, and systematically evaluated the editing activities of these Exo:Cas12i3-5M fusions across six endogenous targets in rice stable lines. We demonstrated that the Exo:Cas12i3-5M fusions increased the gene editing efficiencies by up to 12.46-fold and 1.25-fold compared with Cas12i3 and Cas12i3-5M, respectively. Notably, the UL12:Cas12i3-5M fusion enabled robust single gene editing with editing efficiencies of up to 90.42%–98.61% across the six tested endogenous genes. We further demonstrated that, although all the Exo:Cas12i5-5M fusions were capable of multiplex gene editing, UL12:Cas12i3-5M exhibited a superior performance in the simultaneous editing of three, four, five or six genes with efficiencies of 82.76%, 61.36%, 52.94%, and 51.06% in rice stable lines, respectively. Together, we evaluated different Exo:Cas12i3-5M fusions systemically and established UL12:Cas12i3-5M as the more robust system for single and multiplex gene editing in rice. The development of an alternative robust single and multiplex gene editing system will enrich plant genome editing toolkits and facilitate pyramiding of agronomically important traits for crop improvement.
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    Fusion of four different 5'-exonucleases to the N terminus of a Cas12i3-5M variant and systematic evaluation of these fusions in rice stable lines revealed that fusion of the herpes simplex virus exonuclease UL12 with Cas12i3-5M outperformed other fusions in enabling robust rice single and multiplex gene editing.
      
    DNA-free base editing in lettuce via in vitro transcribed base editors
    Eunbin Lee, Yunsun Kim, Minju Kim, Donghui Lee and Beum‐Chang Kang
    J Integr Plant Biol 2025, 67 (2): 199-201.  
    doi: 10.1111/jipb.13822
    Abstract (Browse 375)  |   Save
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    A newly developed RNA-based adenine and cytosine base editing system achieves targeted and efficient A-to-G and C-to-T conversions in lettuce. This DNA-free base editing method has potential uses in crop breeding and biotechnology.
      
    Efficient gene disruption in polyploid genome by Cas9–Trex2 fusion protein
    Wenbo Pan, Chunlei Gao, De Niu, Jinghua Cheng, Jiao Zhang, Xiying Yan, Qiang Long, YaoYao Zhu, Wenjing Sun, Qi Xie, Yuehui He, Xing Wang Deng, Huawei Zhang, Jian Li
    J Integr Plant Biol 2025, 67 (1): 7-10.  
    doi: 10.1111/jipb.13797
    Abstract (Browse 373)  |   Save
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    The fusion of the exonuclease Trex2 with the Cas9 protein significantly enhanced the efficiency of genome editing in hexaploid common wheat, particularly for the simultaneous editing of multiple favorable alleles within a single generation, thereby facilitating genome editing-assisted breeding in polyploid crops.
      
    Efficient and transformation-free genome editing in pepper enabled by RNA virus-mediated delivery of CRISPR/Cas9
    Chenglu Zhao, Huanhuan Lou, Qian Liu, Siqi Pei, Qiansheng Liao, Zhenghe Li
    J Integr Plant Biol 2024, 66 (10): 2079-2082.  
    doi: 10.1111/jipb.13741
    Abstract (Browse 724)  |   Save
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    Tomato spotted wilt virus-mediated delivery of CRISPR/Cas9 bypasses the need for stable transformation and permits efficient, DNA-free genome editing in pepper. Remarkably, up to 77.9% of regenerated pepper plants contained heritable edits. This method has been validated with two pepper varieties and is compatible with existing tissue culture protocols.
      
    Targeted mutagenesis in Arabidopsis and medicinal plants using transposon-associated TnpB
    Zongyou Lv, Wenhua Chen, Shiyuan Fang, Boran Dong, Xingxing Wang, Lida Zhang, Jingshi Xue and Wansheng Chen
    J Integr Plant Biol 2024, 66 (10): 2083-2086.  
    doi: 10.1111/jipb.13758
    Abstract (Browse 516)  |   Save
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    The programmable nuclease TnpB is significantly smaller than Cas9, can edit genes in medicinal plants, including Artemisia annua, Salvia miltiorrhiza, Scutellaria baicalensis, Isatis indigotica, and Codonopsis pilosula, and has potential uses in molecular breeding to enhance crop yield and quality.
      
    PE6c greatly enhances prime editing in transgenic rice plants
    Zhenghong Cao, Wei Sun, Dexin Qiao, Junya Wang, Siyun Li, Xiaohan Liu, Cuiping Xin, Yu Lu, Syeda Leeda Gul, Xue-Chen Wang, Qi-Jun Chen
    J Integr Plant Biol 2024, 66 (9): 1864-1870.  
    doi: 10.1111/jipb.13738
    Abstract (Browse 579)  |   Save
    Prime editing is a versatile CRISPR/Cas-based precise genome-editing technique for crop breeding. Four new types of prime editors (PEs) named PE6a–d were recently generated using evolved and engineered reverse transcriptase (RT) variants from three different sources. In this study, we tested the editing efficiencies of four PE6 variants and two additional PE6 constructs with double-RT modules in transgenic rice (Oryza sativa) plants. PE6c, with an evolved and engineered RT variant from the yeast Tf1 retrotransposon, yielded the highest prime-editing efficiency. The average fold change in the editing efficiency of PE6c compared with PEmax exceeded 3.5 across 18 agronomically important target sites from 15 genes. We also demonstrated the feasibility of using two RT modules to improve prime-editing efficiency. Our results suggest that PE6c or its derivatives would be an excellent choice for prime editing in monocot plants. In addition, our findings have laid a foundation for prime-editing-based breeding of rice varieties with enhanced agronomically important traits.
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    In rice, the prime editor PE6c, with an evolved and engineered reverse transcriptase variant from the yeast Tf1 retrotransposon, yielded the highest editing efficiency. Moreover, using two reverse transcriptase modules improved prime-editing efficiency.
      
    Establishment of genome-editing system and assembly of a near-complete genome in broomcorn millet
    Yang Liu, Zixiang Cheng, Weiyao Chen, Chuanyin Wu, Jinfeng Chen, and Yi Sui
    J Integr Plant Biol 2024, 66 (8): 1688-1702.  
    doi: 10.1111/jipb.13664
    Abstract (Browse 352)  |   Save
    The ancient crop broomcorn millet (Panicum miliaceum L.) is an indispensable orphan crop in semi-arid regions due to its short life cycle and excellent abiotic stress tolerance. These advantages make it an important alternative crop to increase food security and achieve the goal of zero hunger, particularly in light of the uncertainty of global climate change. However, functional genomic and biotechnological research in broomcorn millet has been hampered due to a lack of genetic tools such as transformation and genome-editing techniques. Here, we successfully performed genome editing of broomcorn millet. We identified an elite variety, Hongmi, that produces embryogenic callus and has high shoot regeneration ability in in vitro culture. We established an Agrobacterium tumefaciens-mediated genetic transformation protocol and a clustered regularly interspaced short palindromic repeats (CRISPR)/Cas9-mediated genome-editing system for Hongmi. Using these techniques, we produced herbicide-resistant transgenic plants and edited phytoene desaturase (PmPDS), which is involved in chlorophyll biosynthesis. To facilitate the rapid adoption of Hongmi as a model line for broomcorn millet research, we assembled a near-complete genome sequence of Hongmi and comprehensively annotated its genome. Together, our results open the door to improving broomcorn millet using biotechnology.
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    An Agrobacterium tumefaciens-mediated genetic transformation protocol and a CRISPR/Cas9-mediated genome-editing system were established for Hongmi, an elite variety of broomcorn millet (Panicum miliaceum). Additionally, a near-complete, comprehensively annotated genome sequence of Hongmi was assembled. These advances open the door to improving broomcorn millet through biotechnology.
      
    Application of CRISPR/Cas12i.3 for targeted mutagenesis in broomcorn millet (Panicum miliaceum L.)
    Yuhe Bai, Shengnan Liu, Yan Bai, Zhisong Xu, Hainan Zhao, Haiming Zhao, Jinsheng Lai, Ya Liu, Weibin Song
    J Integr Plant Biol 2024, 66 (8): 1544-1547.  
    DOI: 10.1111/jipb.13669
    Abstract (Browse 376)  |   Save
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    A CRISPR/Cas12i.3-based gene editing platform is established in broomcorn millet (Panicum miliaceum) and used to create new elite germplasm for this ancient crop.
      
    Developing guanine base editors for G-to-T editing in rice
    Lang Liu, Zhongming Zhang, Chenyang Wang, Fang Yan, Wenxian Sun, Xueping Zhou, Weiguo Miao, Huanbin Zhou
    J Integr Plant Biol 2024, 66 (8): 1557-1560.  
    doi: 10.1111/jipb.13729
    Abstract (Browse 356)  |   Save
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    Two guanine base editors created using an engineered N-methylpurine DNA glycosylase with CRISPR systems achieved targeted G-to-T editing with 4.94–12.50% efficiency in rice (Oryza sativa). The combined use of the DNA glycosylase and deaminases enabled co-editing of target guanines with adenines or cytosines.
      
    Targeted G-to-T base editing for generation of novel herbicide-resistance gene alleles in rice
    Yifu Tian, Xinbo Li, Jiyong Xie, Zai Zheng, Rundong Shen, Xuesong Cao, Mugui Wang, Chao Dong and Jian-Kang Zhu
    J Integr Plant Biol 2024, 66 (6): 1048-1051.  
    doi: 10.1111/jipb.13657
    Abstract (Browse 422)  |   Save
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    A newly developed rice guanine base editor (OsGTBE) achieves targeted and efficient G-to-T editing (C-to-A in the opposite strand) in rice. Using OsGTBE to edit endogenous herbicide-resistant loci generated several novel alleles conferring herbicide resistance, highlighting its utility in creating valuable germplasm and enhancing genetic diversity.
      
    CRISPR/CasΦ2-mediated gene editing in wheat and rye
    Sanzeng Zhao, Xueying Han, Yachen Zhu, Yuwei Han, Huiyun Liu, Zhen Chen, Huifang Li, Dan Wang, Chaofan Tian, Yuting Yuan, Yajie Guo, Xiaomin Si, Daowen Wang and Xiang Ji
    J Integr Plant Biol 2024, 66 (4): 638-641.  
    doi: 10.1111/jipb.13624
    Abstract (Browse 460)  |   Save
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    The compact CRISPR/CasΦ2 system provides a complementary genome engineering tool for efficient gene editing including cytosine and adenosine base editing in wheat and rye with high specificity, efficient use of the protospacer-adjacent motif TTN, and an alternative base-editing window.
      
    Simple method for transformation and gene editing in medicinal plants
    Xuesong Cao, Hongtao Xie, Minglei Song, Lianghui Zhao, Hailiang Liu, Guofu Li and Jian‐Kang Zhu
    J Integr Plant Biol 2024, 66 (1): 17-19.  
    doi: 10.1111/jipb.13593
    Abstract (Browse 799)  |   Save
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    A sample delivery method, modified from cut-dip-budding, uses explants with robust shoot regeneration ability, enabling transformation and gene editing in medicinal plants, bypassing tissue culture and hairy root formation. This method has potential for applications across a wide range of plant species.
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