CRISPR/Cas9-mediated genome editing techniques and new breeding strategies in cereals - current status, improvements, and perspectives.
暂无分享,去创建一个
[1] Damian Gruszka,et al. CRISPR/Cas9 boosts wheat yield by reducing brassinosteroid signaling. , 2023, Trends in biochemical sciences.
[2] J. Kumlehn,et al. Barley stripe mosaic virus-mediated somatic and heritable gene editing in barley (Hordeum vulgare L.) , 2023, Frontiers in Plant Science.
[3] J. Mortimer,et al. Genome editing of a rice CDP-DAG synthase confers multipathogen resistance , 2023, Nature.
[4] Chuanxiao Xie,et al. A straight-forward seed production technology system for foxtail millet (Setaria italica). , 2023, Journal of integrative plant biology.
[5] J. Liu,et al. Reducing brassinosteroid signalling enhances grain yield in semi-dwarf wheat , 2023, Nature.
[6] Rui Zhang,et al. An efficient CRISPR–Cas12a promoter editing system for crop improvement , 2023, Nature Plants.
[7] Z. Kang,et al. TaUAM3, a UDP‐Ara mutases protein, positively regulates wheat resistance to the stripe rust fungus , 2023, Food and Energy Security.
[8] Yuxuan Guo,et al. Off-target effects in CRISPR/Cas9 gene editing , 2023, Frontiers in Bioengineering and Biotechnology.
[9] Jae-Young Yun,et al. Application of CRISPR-Based C-to-G Base editing in rice protoplasts , 2023, Applied Biological Chemistry.
[10] K. Kang,et al. Knockout Mutants of OsPUB7 Generated Using CRISPR/Cas9 Revealed Abiotic Stress Tolerance in Rice , 2023, International journal of molecular sciences.
[11] G. Ali,et al. CRISPR/Cas9 editing of wheat Ppd-1 gene homoeologs alters spike architecture and grain morphometric traits , 2023, Functional & Integrative Genomics.
[12] Jinfang Chu,et al. Tiller Number1 encodes an ankyrin repeat protein that controls tillering in bread wheat , 2023, Nature Communications.
[13] W. Gordon-Kamm,et al. Leaf transformation for efficient random integration and targeted genome modification in maize and sorghum , 2023, Nature Plants.
[14] Diqiu Yu,et al. Molecular characterization reveals that OsSAPK3 improves drought tolerance and grain yield in rice , 2023, BMC Plant Biology.
[15] W. Chen,et al. Ethylene-responsive SbWRKY50 suppresses leaf senescence by inhibition of chlorophyll degradation in sorghum. , 2023, The New phytologist.
[16] Jinhong Kan,et al. CRISPR/Cas9-guided knockout of eIF4E improves Wheat yellow mosaic virus resistance without yield penalty. , 2023, Plant biotechnology journal.
[17] Mingming Xin,et al. An elite γ-gliadin allele improves end-use quality in wheat. , 2023, The New phytologist.
[18] A. Tyagi,et al. A CRISPR way for accelerating cereal crop improvement: Progress and challenges , 2023, Frontiers in Genetics.
[19] F. Kragler,et al. Heritable transgene-free genome editing in plants by grafting of wild-type shoots to transgenic donor rootstocks , 2023, Nature Biotechnology.
[20] Caixia Gao,et al. CRISPR-edited plants by grafting , 2023, Nature Biotechnology.
[21] C. Hill,et al. New semi‐dwarfing alleles with increased coleoptile length by gene editing of gibberellin 3‐oxidase 1 using CRISPR‐Cas9 in barley (Hordeum vulgare L.) , 2023, Plant biotechnology journal.
[22] Yuqing He,et al. Creation of Two-Line Fragrant Glutinous Hybrid Rice by Editing the Wx and OsBADH2 Genes via the CRISPR/Cas9 System , 2023, International journal of molecular sciences.
[23] E. P. Amorim,et al. Gene Editing for Plant Resistance to Abiotic Factors: A Systematic Review , 2023, Plants.
[24] Xiangyuan Wan,et al. Bibliometric Analysis of Functional Crops and Nutritional Quality: Identification of Gene Resources to Improve Crop Nutritional Quality through Gene Editing Technology , 2023, Nutrients.
[25] Haiwen Zhang,et al. CRISPR-Cas technology opens a new era for the creation of novel maize germplasms , 2022, Frontiers in Plant Science.
[26] Zuxin Zhang,et al. ZmBET5L1 inhibits primary root growth and decreases osmotic stress tolerance by mediating vesicle aggregation and tethering in maize. , 2022, Plant, cell & environment.
[27] L. Xia,et al. Plant base editing and prime editing: The current status and future perspectives. , 2022, Journal of integrative plant biology.
[28] Matthew R. Tucker,et al. Ovule cell wall composition is a maternal determinant of grain size in barley , 2022, bioRxiv.
[29] Shuangxia Jin,et al. CRISPR/Cas Genome Editing Technologies for Plant Improvement against Biotic and Abiotic Stresses: Advances, Limitations, and Future Perspectives , 2022, Cells.
[30] J. Dubcovsky,et al. Recent advances in crop transformation technologies. , 2022, Nature plants.
[31] Caixia Gao,et al. Optimized prime editing in monocot plants using PlantPegDesigner and engineered plant prime editors (ePPEs) , 2022, Nature Protocols.
[32] Lei Hua,et al. CRISPR‐induced miRNA156‐recognition element mutations in TaSPL13 improve multiple agronomic traits in wheat , 2022, Plant biotechnology journal.
[33] R. Varshney,et al. Developing drought‐smart, ready‐to‐grow future crops , 2022, The plant genome.
[34] Xiumei Yu,et al. Simultaneous editing of three homoeologues of TaCIPK14 confers broad‐spectrum resistance to stripe rust in wheat , 2022, Plant biotechnology journal.
[35] M. Ramesh,et al. Application of CRISPR/Cas system in cereal improvement for biotic and abiotic stress tolerance , 2022, Planta.
[36] S. Agapito-Tenfen,et al. Unintended Genomic Outcomes in Current and Next Generation GM Techniques: A Systematic Review , 2022, Plants.
[37] Haiwen Zhang,et al. Analysis of the Utilization and Prospects of CRISPR-Cas Technology in the Annotation of Gene Function and Creation New Germplasm in Maize Based on Patent Data , 2022, Cells.
[38] D. Voytas,et al. Direct delivery and fast-treated Agrobacterium co-culture (Fast-TrACC) plant transformation methods for Nicotiana benthamiana , 2022, Nature Protocols.
[39] F. Ordon,et al. Novel resistance to the Bymovirus BaMMV established by targeted mutagenesis of the PDIL5‐1 susceptibility gene in barley , 2022, Plant biotechnology journal.
[40] R. Thilmony,et al. Multiplex CRISPR/Cas9-mediated genome editing to address drought tolerance in wheat. , 2022, GM crops & food.
[41] Jian‐Kang Zhu,et al. Cut–dip–budding delivery system enables genetic modifications in plants without tissue culture , 2022, Innovation (Cambridge (Mass.)).
[42] Chongjing Xia,et al. Barley FASCIATED EAR genes determine inflorescence meristem size and yield traits , 2022, The Crop Journal.
[43] D. Inzé,et al. BREEDIT: a multiplex genome editing strategy to improve complex quantitative traits in maize. , 2022, The Plant cell.
[44] Xiangyuan Wan,et al. Triphasic regulation of ZmMs13 encoding an ABCG transporter is sequentially required for callose dissolution, pollen exine and anther cuticle formation in maize , 2022, Journal of advanced research.
[45] Qijun Chen,et al. Optimized prime editing efficiently generates glyphosate-resistant rice plants carrying homozygous TAP-IVS mutation in EPSPS. , 2022, Molecular plant.
[46] M. C. Quecine,et al. The key role of indole-3-acetic acid biosynthesis by Bacillus thuringiensis RZ2MS9 in promoting maize growth revealed by the ipdC gene knockout mediated by the CRISPR-Cas9 system. , 2022, Microbiological research.
[47] C. Zhang,et al. Virus-Induced Gene Editing and Its Applications in Plants , 2022, International journal of molecular sciences.
[48] Wenzhu Jiang,et al. The OsWRKY63-OsWRKY76-OsDREB1B module regulates chilling tolerance in rice. , 2022, The Plant journal : for cell and molecular biology.
[49] Huawei Zhang,et al. The Promising Nanovectors for Gene Delivery in Plant Genome Engineering , 2022, International journal of molecular sciences.
[50] C. Zhuang,et al. CRISPR/Cas9-Induced Mutagenesis of TMS5 Confers Thermosensitive Genic Male Sterility by Influencing Protein Expression in Rice (Oryza sativa L.) , 2022, International journal of molecular sciences.
[51] R. Singh,et al. Recent advancements and future perspectives of foxtail millet genomics , 2022, Plant Growth Regulation.
[52] Caihuan Tian,et al. Improving bread wheat yield through modulating an unselected AP2/ERF gene , 2022, Nature Plants.
[53] Yuling Jiao,et al. Discovery of a bread wheat mutant with extra spikelets and a gain in grain yield , 2022, Nature Plants.
[54] Jiayang Li,et al. Improving the efficiency of prime editing with epegRNAs and high-temperature treatment in rice , 2022, Science China Life Sciences.
[55] P. Langridge,et al. Developments and prospects for doubled haploid wheat. , 2022, Biotechnology advances.
[56] Laura E. Dixon,et al. Speed vernalization to accelerate generation advance in winter cereal crops. , 2022, Molecular plant.
[57] A. Rasheed,et al. Genome edited wheat- current advances for the second green revolution. , 2022, Biotechnology advances.
[58] Jian‐Kang Zhu,et al. Efficient C‐to‐G editing in rice using an optimized base editor , 2022, Plant biotechnology journal.
[59] X. Ye,et al. Production of Conjoined Transgenic and Edited Barley and Wheat Plants for Nud Genes Using the CRISPR/SpCas9 System , 2022, Frontiers in Genetics.
[60] Kan Wang,et al. An Improved Agrobacterium-Mediated Transformation and Genome-Editing Method for Maize Inbred B104 Using a Ternary Vector System and Immature Embryos , 2022, Frontiers in Plant Science.
[61] T. Ahmed,et al. CRISPR/Cas9 Mediated Knockout of the OsbHLH024 Transcription Factor Improves Salt Stress Resistance in Rice (Oryza sativa L.) , 2022, Plants.
[62] D. Inzé,et al. Optimized Transformation and Gene Editing of the B104 Public Maize Inbred by Improved Tissue Culture and Use of Morphogenic Regulators , 2022, Frontiers in Plant Science.
[63] A. Karabekova,et al. CRISPR/Cas genome editing perspectives for barley breeding. , 2022, Physiologia plantarum.
[64] Rong Yu,et al. Efficient and genotype independent maize transformation using pollen transfected by DNA-coated magnetic nanoparticles. , 2022, Journal of integrative plant biology.
[65] Wei Li,et al. Gypsy retrotransposon-derived maize lncRNA GARR2 modulates gibberellin response. , 2022, The Plant journal : for cell and molecular biology.
[66] Ying-xin Zhang,et al. CRISPR-Based Genome Editing: Advancements and Opportunities for Rice Improvement , 2022, International journal of molecular sciences.
[67] Maged F. Serag,et al. DNA–Carbon Nanotube Binding Mode Determines the Efficiency of Carbon Nanotube-Mediated DNA Delivery to Intact Plants , 2022, ACS Applied Nano Materials.
[68] G. Kleter,et al. Occurrence and Nature of Off-Target Modifications by CRISPR-Cas Genome Editing in Plants , 2022, ACS agricultural science & technology.
[69] Rongjian Ye,et al. A new gain-of-function OsGS2/GRF4 allele generated with CRISPR/Cas9 genome editing technology increases rice grain size and yield , 2022, The Crop Journal.
[70] Chuanxiao Xie,et al. Targeted generation of Null Mutants in ZmGDIα confers resistance against maize rough dwarf disease without agronomic penalty , 2022, Plant biotechnology journal.
[71] Jinlong Li,et al. ZmCOI2a and ZmCOI2b redundantly regulate anther dehiscence and gametophytic male fertility in maize. , 2022, The Plant journal : for cell and molecular biology.
[72] Qingjun Cao,et al. Maize grain yield enhancement in modern hybrids associated with greater stalk lodging resistance at a high planting density: a case study in northeast China , 2022, Scientific Reports.
[73] S. Mallapaty. China’s approval of gene-edited crops energizes researchers , 2022, Nature.
[74] Jin-Fang Chu,et al. Creation of fragrant sorghum by CRISPR/Cas9. , 2022, Journal of integrative plant biology.
[75] Yanpeng Wang,et al. Genome-edited powdery mildew resistance in wheat without growth penalties , 2022, Nature.
[76] P. Qi,et al. Editing of the starch synthase IIa gene led to transcriptomic and metabolomic changes and high amylose starch in barley. , 2022, Carbohydrate polymers.
[77] R. Varshney,et al. Breeding More Crops in Less Time: A Perspective on Speed Breeding , 2022, Biology.
[78] Ping Yang,et al. Simultaneous editing of host factor gene TaPDIL5-1 homoeoalleles confers wheat yellow mosaic virus resistance in hexaploid wheat. , 2022, The New phytologist.
[79] Xiaodong Wang,et al. Simultaneous Improvement of Grain Yield and Quality through Manipulating Two Type C G Protein Gamma Subunits in Rice , 2022, International journal of molecular sciences.
[80] Xiangyuan Wan,et al. Use of CRISPR/Cas9-Based Gene Editing to Simultaneously Mutate Multiple Homologous Genes Required for Pollen Development and Male Fertility in Maize , 2022, Cells.
[81] K. Kang,et al. Marker-Assisted Backcrossing (MABc) to Improve Eating Quality with Thin Seed Coat and Aleurone Layer of Non-Glutinous Japonica Variety in Rice , 2022, Genes.
[82] Y. Ran,et al. Efficient Genome Editing in Setaria italica Using CRISPR/Cas9 and Base Editors , 2022, Frontiers in Plant Science.
[83] Chengdao Li,et al. CRISPR/Cas9 gene editing and natural variation analysis demonstrate the potential for HvARE1 in improvement of nitrogen use efficiency in barley. , 2022, Journal of integrative plant biology.
[84] X. An,et al. CRISPR/Cas System: Applications and Prospects for Maize Improvement , 2022, ACS Agricultural Science & Technology.
[85] Z. Ahmed,et al. Does Climate Change Affect the Yield of the Top Three Cereals and Food Security in the World? , 2022, Earth.
[86] Rongjian Ye,et al. Targeted Deletion of the First Intron of the Wxb Allele via CRISPR/Cas9 Significantly Increases Grain Amylose Content in Rice , 2022, Rice.
[87] Mingming Xin,et al. A single nucleotide deletion in the third exon of FT‐D1 increases the spikelet number and delays heading date in wheat (Triticum aestivum L.) , 2022, Plant biotechnology journal.
[88] Zhenan Li,et al. An R2R3-MYB Transcription Factor OsMYBAS1 Promotes Seed Germination under Different Sowing Depths in Transgenic Rice , 2022, Plants.
[89] Christopher J. Krueger,et al. A design optimized prime editor with expanded scope and capability in plants , 2021, Nature Plants.
[90] Charles W. Melnyk,et al. Monocotyledonous plants graft at the embryonic root–shoot interface , 2021, Nature.
[91] J. Botella,et al. Non-GM Genome Editing Approaches in Crops , 2021, Frontiers in Genome Editing.
[92] Shunchao Xu,et al. Engineering of rice varieties with enhanced resistances to both blast and bacterial blight diseases via CRISPR/Cas9 , 2021, Plant biotechnology journal.
[93] J. Botella,et al. Endogenous U6 promoters improve CRISPR/Cas9 editing efficiencies in Sorghum bicolor and show potential for applications in other cereals , 2021, Plant Cell Reports.
[94] S. Jobling,et al. Gene editing for barley grain quality improvement , 2021, Journal of Cereal Science.
[95] A. Fernie,et al. Genetic variation in YIGE1 contributes to ear length and grain yield in maize. , 2021, The New phytologist.
[96] P. Lemaux,et al. Morphogene‐assisted transformation of Sorghum bicolor allows more efficient genome editing , 2021, Plant biotechnology journal.
[97] Antony Ceasar. Genome-editing in millets: current knowledge and future perspectives , 2021, Molecular Biology Reports.
[98] M. K. Reddy,et al. CRISPR-Cas9 mediated mutation in GRAIN WIDTH and WEIGHT2 (GW2) locus improves aleurone layer and grain nutritional quality in rice , 2021, Scientific Reports.
[99] Guangyi Fan,et al. A donor-DNA-free CRISPR/Cas-based approach to gene knock-up in rice , 2021, Nature Plants.
[100] Muhammad Zubair Ghouri,et al. An Outlook on Global Regulatory Landscape for Genome-Edited Crops , 2021, International journal of molecular sciences.
[101] Zuxin Zhang,et al. An ethylene biosynthesis enzyme controls quantitative variation in maize ear length and kernel yield , 2021, Nature Communications.
[102] J. Daròs,et al. Simplifying plant gene silencing and genome editing logistics by a one‐Agrobacterium system for simultaneous delivery of multipartite virus vectors , 2021, Biotechnology journal.
[103] Freddy Mora-Poblete,et al. Achievements and Challenges of Genomics-Assisted Breeding in Forest Trees: From Marker-Assisted Selection to Genome Editing , 2021, International journal of molecular sciences.
[104] A. Rasheed,et al. Recent advancements on use of CRISPR /Cas9 in maize yield and quality improvement , 2021, Notulae Botanicae Horti Agrobotanici Cluj-Napoca.
[105] Q. Qian,et al. CRISPR‐Cas9 mediated OsMIR168a knockout reveals its pleiotropy in rice , 2021, Plant biotechnology journal.
[106] Chunyan Yang,et al. Development of a Csy4-processed guide RNA delivery system with soybean-infecting virus ALSV for genome editing , 2021, BMC plant biology.
[107] J. Steinbrenner,et al. CRISPR/SpCas9‐mediated double knockout of barley Microrchidia MORC1 and MORC6a reveals their strong involvement in plant immunity, transcriptional gene silencing and plant growth , 2021, Plant biotechnology journal.
[108] A. Bilichak,et al. Advances in Gene Editing of Haploid Tissues in Crops , 2021, Genes.
[109] C. Zhuang,et al. Improving the Rice Photosynthetic Efficiency and Yield by Editing OsHXK1 via CRISPR/Cas9 System , 2021, International journal of molecular sciences.
[110] Yiping Qi,et al. Precise plant genome editing using base editors and prime editors , 2021, Nature Plants.
[111] Masafumi Mikami,et al. Regulation of germination by targeted mutagenesis of grain dormancy genes in barley , 2021, Plant biotechnology journal.
[112] F. Fornara,et al. Targeted knockout of the gene OsHOL1 removes methyl iodide emissions from rice plants , 2021, Scientific Reports.
[113] Qinlong Zhu,et al. The ScCas9++ variant expands the CRISPR toolbox for genome editing in plants. , 2021, Journal of integrative plant biology.
[114] M. Baloğlu,et al. CRISPR/Cas9 mediated targeted mutagenesis of LIGULELESS‐1 in sorghum provides a rapidly scorable phenotype by altering leaf inclination angle , 2021, Biotechnology journal.
[115] M. Baloğlu,et al. CRISPR/Cas-mediated genome editing in sorghum — recent progress, challenges and prospects , 2021, In Vitro Cellular & Developmental Biology - Plant.
[116] J. Šamaj,et al. CRISPR/Cas9-Induced Loss-of-Function Mutation in the Barley Mitogen-Activated Protein Kinase 6 Gene Causes Abnormal Embryo Development Leading to Severely Reduced Grain Germination and Seedling Shootless Phenotype , 2021, Frontiers in Plant Science.
[117] L. Xia,et al. Increasing yield potential through manipulating of an ARE1 ortholog related to nitrogen use efficiency in wheat by CRISPR/Cas9. , 2021, Journal of integrative plant biology.
[118] S. A. Zafar,et al. CRISPR/Cas9 mediated disruption of Inositol Pentakisphosphate 2-Kinase 1 (TaIPK1) reduces phytic acid and improves iron and zinc accumulation in wheat grains , 2021, Journal of advanced research.
[119] Babar Hussain,et al. Applications and Potential of Genome-Editing Systems in Rice Improvement: Current and Future Perspectives , 2021, Agronomy.
[120] Y. Li,et al. Reference genome assemblies reveal the origin and evolution of allohexaploid oat , 2021, Nature Genetics.
[121] W. Gordon-Kamm,et al. Wuschel2 enables highly efficient CRISPR/Cas-targeted genome editing during rapid de novo shoot regeneration in sorghum , 2021, Communications Biology.
[122] G. Song,et al. CRISPR/Cas9‐mediated genome editing for wheat grain quality improvement , 2021, Plant biotechnology journal.
[123] Margaret R. Krause,et al. Harnessing translational research in wheat for climate resilience , 2021, Journal of experimental botany.
[124] G. Parveez,et al. Multiplex CRISPR/Cas9-mediated genome editing of the FAD2 gene in rice: a model genome editing system for oil palm , 2021, Journal of Genetic Engineering and Biotechnology.
[125] M. Zhang,et al. A C-Terminal Encoded Peptide, ZmCEP1, is essential for kernel development in maize (Zea mays L.). , 2021, Journal of experimental botany.
[126] G. Kang,et al. TaPHT1;9‐4B and its transcriptional regulator TaMYB4‐7D contribute to phosphate uptake and plant growth in bread wheat , 2021, The New phytologist.
[127] L. Xia,et al. Present and future prospects for wheat improvement through genome editing and advanced technologies , 2021, Plant communications.
[128] C. Fan,et al. Development of mutants with varying flowering times by targeted editing of multiple SVP gene copies in Brassica napus L. , 2021 .
[129] Yunbi Xu,et al. Breeding by design for future rice: Genes and genome technologies , 2021 .
[130] Songtao Liu,et al. Advances in Cereal Crop Genomics for Resilience under Climate Change , 2021, Life.
[131] Fei Wang,et al. Creation of aromatic maize by CRISPR/Cas. , 2021, Journal of integrative plant biology.
[132] Mingming Xin,et al. Histone acetyltransferase TaHAG1 acts as a crucial regulator to strengthen salt tolerance of hexaploid wheat , 2021, Plant physiology.
[133] Ligeng Ma,et al. Recent advances in CRISPR/Cas9 and applications for wheat functional genomics and breeding , 2021, aBIOTECH.
[134] R. Hedrich,et al. Erratum to: Prospects for the accelerated improvement of the resilient crop quinoa , 2021, Journal of Experimental Botany.
[135] Changyin Wu,et al. Phosphorylation of OsFD1 by OsCIPK3 Promotes the Formation of RFT1-containing Florigen Activation Complex for Long-day Flowering in Rice. , 2021, Molecular plant.
[136] feng xiu Li,et al. Fine-tuning Flowering Time via Genome Editing of Upstream Open Reading Frames of Heading Date 2 in Rice , 2021, Rice.
[137] Youzhi Ma,et al. Pyramiding favorable alleles in an elite wheat variety in one generation by CRISPR/Cas9-mediated multiplex gene editing. , 2021, Molecular plant.
[138] Sun‐mi Lee,et al. Improving lignocellulosic biofuel production by CRISPR/Cas9‐mediated lignin modification in barley , 2021 .
[139] L. Fan,et al. Rice bioinformatics in the genomic era: Status and perspectives , 2021 .
[140] K. Kang,et al. Breeding of High Cooking and Eating Quality in Rice by Marker-Assisted Backcrossing (MABc) Using KASP Markers , 2021, Plants.
[141] D. Voytas,et al. Viruses as vectors for the delivery of gene-editing reagents , 2021, Genome editing for precision crop breeding.
[142] T. Yin,et al. Establishing in planta haploid inducer line by edited SiMTL in foxtail millet (Setaria italica) , 2021, Plant biotechnology journal.
[143] Hongkun Zheng,et al. A high-quality genome assembly highlights rye genomic characteristics and agronomically important genes , 2021, Nature Genetics.
[144] R. Imai,et al. In planta Genome Editing in Commercial Wheat Varieties , 2021, Frontiers in Plant Science.
[145] J. Grimwood,et al. Long-read sequence assembly: a technical evaluation in barley , 2021, The Plant cell.
[146] H. Budak,et al. Efficient genome editing in wheat using Cas9 and Cpf1 (AsCpf1 and LbCpf1) nucleases , 2021, Functional & Integrative Genomics.
[147] Yaoguang Liu,et al. CRISPR/Cas9 Guided Mutagenesis of Grain Size 3 Confers Increased Rice (Oryza sativa L.) Grain Length by Regulating Cysteine Proteinase Inhibitor and Ubiquitin-Related Proteins , 2021, International journal of molecular sciences.
[148] G. Barker,et al. Wheat with greatly reduced accumulation of free asparagine in the grain, produced by CRISPR/Cas9 editing of asparagine synthetase gene TaASN2 , 2021, Plant biotechnology journal.
[149] Shaofang Li,et al. High-Efficiency and Multiplex Adenine Base Editing in Plants Using New TadA Variants. , 2021, Molecular plant.
[150] Qingyu Wu,et al. Enhancing grain-yield-related traits by CRISPR–Cas9 promoter editing of maize CLE genes , 2021, Nature Plants.
[151] R. Song,et al. Comparative Study between the CRISPR/Cpf1 (Cas12a) and CRISPR/Cas9 Systems for Multiplex Gene Editing in Maize , 2021, Agriculture.
[152] T. Higashiyama,et al. Detection of a biolistic delivery of fluorescent markers and CRISPR/Cas9 to the pollen tube , 2021, Plant Reproduction.
[153] Sudeep Sarkar,et al. Consequences and Mitigation Strategies of Abiotic Stresses in Wheat (Triticum aestivum L.) under the Changing Climate , 2021, Agronomy.
[154] S. S. Nadakuduti,et al. Advances in Genome Editing With CRISPR Systems and Transformation Technologies for Plant DNA Manipulation , 2021, Frontiers in Plant Science.
[155] M. Bhatta,et al. Need for speed: manipulating plant growth to accelerate breeding cycles. , 2021, Current opinion in plant biology.
[156] G. Demirer,et al. Efficient Transient Gene Knock-down in Tobacco Plants Using Carbon Nanocarriers. , 2021, Bio-protocol.
[157] Ling Jiang,et al. Decreased grain size1, a C3HC4-type RING protein, influences grain size in rice (Oryza sativa L.) , 2021, Plant Molecular Biology.
[158] Yali Sun,et al. Genome-Wide Characterization of Jasmonates Signaling Components Reveals the Essential Role of ZmCOI1a-ZmJAZ15 Action Module in Regulating Maize Immunity to Gibberella Stalk Rot , 2021, International journal of molecular sciences.
[159] Yaoguang Liu,et al. Programmed Editing of Rice (Oryza sativa L.) OsSPL16 Gene Using CRISPR/Cas9 Improves Grain Yield by Modulating the Expression of Pyruvate Enzymes and Cell Cycle Proteins , 2020, International journal of molecular sciences.
[160] Q. Shu,et al. An Inositol 1,3,4,5,6-Pentakisphosphate 2-Kinase 1 Mutant with a 33-nt Deletion Showed Enhanced Tolerance to Salt and Drought Stress in Rice , 2020, Plants.
[161] M. Palmgren,et al. GRF-GIF Chimeras Boost Plant Regeneration. , 2020, Trends in plant science.
[162] Kun Yu,et al. Highly efficient generation of bacterial leaf blight-resistant and transgene-free rice using a genome editing and multiplexed selection system , 2020, BMC Plant Biology.
[163] Wei Huang,et al. Regulation of Brassinosteroid Signaling and Salt Resistance by SERK2 and Potential Utilization for Crop Improvement in Rice , 2020, Frontiers in Plant Science.
[164] M. Fujita,et al. CRISPR/Cas9-targeted mutagenesis of OsERA1 confers enhanced responses to abscisic acid and drought stress and increased primary root growth under nonstressed conditions in rice , 2020, PloS one.
[165] Yongwei Sun,et al. Modification of starch composition, structure and properties through editing of TaSBEIIa in both winter and spring wheat varieties by CRISPR/Cas9 , 2020, Plant biotechnology journal.
[166] Li-hong Xie,et al. Targeted Mutagenesis of POLYAMINE OXIDASE 5 that Negatively Regulates Mesocotyl Elongation Enables the Generation of Direct-seeding Rice with Improved Grain Yield. , 2020, Molecular plant.
[167] Yanli Wang,et al. Generation of paternal haploids in wheat by genome editing of the centromeric histone CENH3 , 2020, Nature Biotechnology.
[168] H. Akhani,et al. A Review of C4 Plants in Southwest Asia: An Ecological, Geographical and Taxonomical Analysis of a Region With High Diversity of C4 Eudicots , 2020, Frontiers in Plant Science.
[169] G. Song,et al. Efficient multiplex genome editing by CRISPR/Cas9 in common wheat , 2020, Plant biotechnology journal.
[170] Yaoguang Liu,et al. Precise Editing of the OsPYL9 Gene by RNA-Guided Cas9 Nuclease Confers Enhanced Drought Tolerance and Grain Yield in Rice (Oryza sativa L.) by Regulating Circadian Rhythm and Abiotic Stress Responsive Proteins , 2020, International journal of molecular sciences.
[171] Ruben Betz,et al. Engineering Smut Resistance in Maize by Site-Directed Mutagenesis of LIPOXYGENASE 3 , 2020, Frontiers in Plant Science.
[172] J. Zhuang,et al. Identification through fine mapping and verification using CRISPR/Cas9-targeted mutagenesis for a minor QTL controlling grain weight in rice , 2020, TAG. Theoretical and applied genetics. Theoretische und angewandte Genetik.
[173] Caixia Gao,et al. Prime editing efficiently generates W542L and S621I double mutations in two ALS genes in maize , 2020, Genome Biology.
[174] S. Gerasimova,et al. Conversion of hulled into naked barley by Cas endonuclease-mediated knockout of the NUD gene , 2020, BMC Plant Biology.
[175] P. Ronald,et al. A GRF-GIF chimeric protein improves the regeneration efficiency of transgenic plants , 2020, Nature Biotechnology.
[176] Er-kui Yue,et al. OsmiR535, a Potential Genetic Editing Target for Drought and Salinity Stress Tolerance in Oryza sativa , 2020, Plants.
[177] S. Toki,et al. Potato Virus X Vector-Mediated DNA-Free Genome Editing in Plants , 2020, Plant & cell physiology.
[178] Yu-Jin Jung,et al. Transcriptomic and physiological analysis of OsCAO1 knockout lines using the CRISPR/Cas9 system in rice , 2020, Plant Cell Reports.
[179] Chao Li,et al. Applications of CRISPR–Cas in agriculture and plant biotechnology , 2020, Nature Reviews Molecular Cell Biology.
[180] S. Bae,et al. Simultaneous targeting of duplicated genes in Petunia protoplasts for flower color modification via CRISPR-Cas9 ribonucleoproteins , 2020, Plant Cell Reports.
[181] X. Ye,et al. CRISPR/Cas9 editing of wheat TaQ genes alters spike morphogenesis and grain threshability. , 2020, Journal of genetics and genomics = Yi chuan xue bao.
[182] Xiao-xia Wen,et al. Effects of GS3 and GL3.1 for Grain Size Editing by CRISPR/Cas9 in Rice , 2020 .
[183] Dezhi Wu,et al. Creation of male‐sterile lines that can be restored to fertility by exogenous methyl jasmonate for the establishment of a two‐line system for the hybrid production of rice (Oryza sativa L.) , 2020, Plant biotechnology journal.
[184] Yaoguang Liu,et al. CRISPR/Cas9 Directed Mutagenesis of OsGA20ox2 in High Yielding Basmati Rice (Oryza sativa L.) Line and Comparative Proteome Profiling of Unveiled Changes Triggered by Mutations , 2020, International journal of molecular sciences.
[185] S. Khan,et al. Targeted mutagenesis of EOD3 gene in Brassica napus L. regulates seed production , 2020, Journal of cellular physiology.
[186] H. Rahman,et al. Creation of novel alleles of fragrance gene OsBADH2 in rice through CRISPR/Cas9 mediated gene editing , 2020, PloS one.
[187] Jinyan Wang,et al. Evaluation of the quality of a high-resistant starch and low-glutelin rice (Oryza sativa L.) generated through CRISPR/Cas9-mediated targeted mutagenesis. , 2020, Journal of agricultural and food chemistry.
[188] K. Jung,et al. A Revolution toward Gene-Editing Technology and Its Application to Crop Improvement , 2020, International journal of molecular sciences.
[189] S. Bae,et al. Generation and Transcriptome Profiling of Slr1-d7 and Slr1-d8 Mutant Lines with a New Semi-Dominant Dwarf Allele of SLR1 Using the CRISPR/Cas9 System in Rice , 2020, International journal of molecular sciences.
[190] R. Lupi,et al. CRISPR-Cas9 Multiplex Editing of the α-Amylase/Trypsin Inhibitor Genes to Reduce Allergen Proteins in Durum Wheat , 2020, Frontiers in Sustainable Food Systems.
[191] S. H. Jamali,et al. Is plant variety registration keeping pace with speed breeding techniques? , 2020, Euphytica.
[192] Masatomo Kobayashi,et al. Antagonistic regulation of the gibberellic acid response during stem growth in rice , 2020, Nature.
[193] Guoying Wang,et al. Generation of Transgene-Free Semidwarf Maize Plants by Gene Editing of Gibberellin-Oxidase20-3 Using CRISPR/Cas9 , 2020, Frontiers in Plant Science.
[194] A. Alok,et al. The present and potential future methods for delivering CRISPR/Cas9 components in plants , 2020, Journal of Genetic Engineering and Biotechnology.
[195] Xuan Zeng,et al. CRISPR/Cas9-mediated mutation of OsSWEET14 in rice cv. Zhonghua11 confers resistance to Xanthomonas oryzae pv. oryzae without yield penalty , 2020, BMC Plant Biology.
[196] Yaoguang Liu,et al. Knockout of Pi21 by CRISPR/Cas9 and iTRAQ-Based Proteomic Analysis of Mutants Revealed New Insights into M. oryzae Resistance in Elite Rice Line , 2020, Genes.
[197] Y. Zong,et al. Precise, predictable multi-nucleotide deletions in rice and wheat using APOBEC–Cas9 , 2020, Nature Biotechnology.
[198] Zhenghe Li,et al. Highly efficient DNA-free plant genome editing using virally delivered CRISPR–Cas9 , 2020, Nature Plants.
[199] Yongrui Wu,et al. Loss of Function of an RNA Polymerase III Subunit Leads to Impaired Maize Kernel Development1[OPEN] , 2020, Plant Physiology.
[200] Junhui Wang,et al. Functional dissection of HGGT and HPT in barley vitamin E biosynthesis via CRISPR/Cas9-enabled genome editing. , 2020, Annals of botany.
[201] R. Di,et al. Validation of barley 2OGO gene as a functional orthologue of Arabidopsis DMR6 gene in Fusarium head blight susceptibility , 2020, Scientific Reports.
[202] Min Liu,et al. ZmSRL5 is involved in drought tolerance by maintaining cuticular wax structure in maize. , 2020, Journal of integrative plant biology.
[203] Guangxi Wu,et al. CRISPR/Cas9‐mediated knockout and overexpression studies reveal a role of maize phytochrome C in regulating flowering time and plant height , 2020, Plant biotechnology journal.
[204] I. Amin,et al. Precise CRISPR-Cas9 Mediated Genome Editing in Super Basmati Rice for Resistance Against Bacterial Blight by Targeting the Major Susceptibility Gene , 2020, Frontiers in Plant Science.
[205] Jianbin Zeng,et al. Highly efficient and genotype-independent barley gene editing based on anther culture , 2020, Plant communications.
[206] Y. Zong,et al. New D hordein alleles were created in barley using CRISPR/Cas9 genome editing , 2020, Cereal Research Communications.
[207] Shengyuan Sun,et al. Targeted mutagenesis of amino acid transporter genes for rice quality improvement using the CRISPR/Cas9 system , 2020 .
[208] Waquar A Ansari,et al. Genome Editing in Cereals: Approaches, Applications and Challenges , 2020, International journal of molecular sciences.
[209] Changling Huang,et al. Precise base editing of non-allelic acetolactate synthase genes confers sulfonylurea herbicide resistance in maize , 2020 .
[210] X. Deng,et al. CRISPR/Cas9-mediated disruption of TaNP1 genes results in complete male sterility in bread wheat. , 2020, Journal of genetics and genomics = Yi chuan xue bao.
[211] J. Kumlehn,et al. Site‐directed mutagenesis in bread and durum wheat via pollination by cas9/guide RNA‐transgenic maize used as haploidy inducer , 2020, Plant biotechnology journal.
[212] F. Wang,et al. Maize ZmPT7 regulates Pi uptake and redistribution which is modulated by phosphorylation , 2020, Plant biotechnology journal.
[213] M. Mahfouz,et al. Engineering herbicide resistance via prime editing in rice , 2020, Plant biotechnology journal.
[214] R. Verma,et al. CRISPR-Cas9 mediated genome editing of drought and salt tolerance (OsDST) gene in indica mega rice cultivar MTU1010 , 2020, Physiology and Molecular Biology of Plants.
[215] H. Scheller,et al. No evidence for transient transformation via pollen magnetofection in several monocot species , 2020, Nature Plants.
[216] Daowen Wang,et al. Achieving Plant Genome Editing While Bypassing Tissue Culture. , 2020, Trends in plant science.
[217] A. America,et al. CRISPR/Cas9 Gene Editing of Gluten in Wheat to Reduce Gluten Content and Exposure—Reviewing Methods to Screen for Coeliac Safety , 2020, Frontiers in Nutrition.
[218] Pengcheng Wei,et al. Development of Plant Prime-Editing Systems for Precise Genome Editing , 2020, Plant communications.
[219] K. Jung,et al. Conventional and Molecular Techniques from Simple Breeding to Speed Breeding in Crop Plants: Recent Advances and Future Outlook , 2020, International journal of molecular sciences.
[220] Yi Zhang,et al. A CRISPR way for accelerating improvement of food crops , 2020, Nature Food.
[221] L. Xia,et al. Precise modifications of both exogenous and endogenous genes in rice by prime editing. , 2020, Molecular plant.
[222] David R. Liu,et al. Prime genome editing in rice and wheat , 2020, Nature Biotechnology.
[223] Joshua K Young,et al. Superior field performance of waxy corn engineered using CRISPR–Cas9 , 2020, Nature Biotechnology.
[224] Pamela C. Ronald,et al. Marker-free carotenoid-enriched rice generated through targeted gene insertion using CRISPR-Cas9 , 2020, Nature Communications.
[225] Q. Qian,et al. Production of novel beneficial alleles of a rice yield‐related QTL by CRISPR/Cas9 , 2020, Plant biotechnology journal.
[226] Hongyu Zhang,et al. OsINV3 and Its Homolog, OsINV2, Control Grain Size in Rice , 2020, International journal of molecular sciences.
[227] Zhaonong Hu,et al. Functional validation of nicotinic acetylcholine receptor (nAChR) α6 as a target of spinosyns in Spodoptera exigua utilizing the CRISPR/Cas9 system. , 2020, Pest management science.
[228] L. Ohnoutková,et al. Allelic Variants of CRISPR/Cas9 Induced Mutation in an Inositol Trisphosphate 5/6 Kinase Gene Manifest Different Phenotypes in Barley , 2020, Plants.
[229] Jianhui Ji,et al. Targeted Mutagenesis of the Rice FW 2.2-Like Gene Family Using the CRISPR/Cas9 System Reveals OsFWL4 as a Regulator of Tiller Number and Plant Yield in Rice , 2020, International journal of molecular sciences.
[230] Yuan Zong,et al. Targeted, random mutagenesis of plant genes with dual cytosine and adenine base editors , 2020, Nature Biotechnology.
[231] Yongjun Lin,et al. Improving nutritional quality of rice for human health , 2020, Theoretical and Applied Genetics.
[232] Wenchao Huang,et al. Rational Improvement of Rice Yield and Cold Tolerance by Editing the Three Genes OsPIN5b, GS3, and OsMYB30 With the CRISPR–Cas9 System , 2020, Frontiers in Plant Science.
[233] Ya Liu,et al. Discriminated sgRNAs-based SurroGate System Greatly Enhances the Screening Efficiency of Plant Base-edited Cells. , 2020, Molecular plant.
[234] X. Ye,et al. Efficient induction of haploid plants in wheat by editing of TaMTL using an optimized Agrobacterium-mediated CRISPR system , 2019, Journal of experimental botany.
[235] P. Qi,et al. Mutation of the d-hordein gene by RNA-guided Cas9 targeted editing reducing the grain size and changing grain compositions in barley. , 2019, Food chemistry.
[236] M. Mazarei,et al. Lipofection-mediated genome editing using DNA-free delivery of the Cas9/gRNA ribonucleoprotein into plant cells , 2019, Plant Cell Reports.
[237] M. Takemura,et al. A novel approach to carotenoid accumulation in rice callus by mimicking the cauliflower Orange mutation via genome editing , 2019, Rice.
[238] D. Voytas,et al. Plant gene editing through de novo induction of meristems , 2019, Nature Biotechnology.
[239] Yaoguang Liu,et al. CRISPR/Cas9-Induced Mutagenesis of Semi-Rolled Leaf1,2 Confers Curled Leaf Phenotype and Drought Tolerance by Influencing Protein Expression Patterns and ROS Scavenging in Rice (Oryza sativa L.) , 2019, Agronomy.
[240] Xianran Li,et al. A Large Transposon Insertion in the stiff1 Promoter Increases Stalk Strength in Maize[OPEN] , 2019, Plant Cell.
[241] K. Jung,et al. Deficiency of rice hexokinase HXK5 impairs synthesis and utilization of starch in pollen grains and causes male sterility. , 2019, Journal of experimental botany.
[242] Álvaro L. Pérez-Quintero,et al. Broad-spectrum resistance to bacterial blight in rice using genome editing , 2019, Nature Biotechnology.
[243] B. Je,et al. The maize heterotrimeric G protein β subunit controls shoot meristem development and immune responses , 2019, Proceedings of the National Academy of Sciences.
[244] Yaoguang Liu,et al. Generation of semi-dwarf rice (Oryza sativa L.) lines by CRISPR/Cas9-directed mutagenesis of OsGA20ox2 and proteomic analysis of unveiled changes caused by mutations , 2019, 3 Biotech.
[245] M. Demont,et al. Rice quality: How is it defined by consumers, industry, food scientists, and geneticists? , 2019, Trends in food science & technology.
[246] Jian‐Kang Zhu,et al. Simplified adenine base editors improve adenine base editing efficiency in rice , 2019, Plant biotechnology journal.
[247] Markita P Landry,et al. Carbon nanotube–mediated DNA delivery without transgene integration in intact plants , 2019, Nature Protocols.
[248] Q. Gao,et al. Rescue of a plant cytorhabdovirus as versatile expression platforms for planthopper and cereal genomic studies. , 2019, The New phytologist.
[249] Dandan Li,et al. Highly Efficient and Heritable Targeted Mutagenesis in Wheat via the Agrobacterium tumefaciens-Mediated CRISPR/Cas9 System , 2019, International journal of molecular sciences.
[250] Chang-Jin Park,et al. CRISPR/Cas9-targeted mutagenesis of Os8N3 in rice to confer resistance to Xanthomonas oryzae pv. oryzae , 2019, Rice.
[251] Xianran Li,et al. An Agrobacterium‐delivered CRISPR/Cas9 system for targeted mutagenesis in sorghum , 2019, Plant biotechnology journal.
[252] W. Jin,et al. Teosinte ligule allele narrows plant architecture and enhances high-density maize yields , 2019, Science.
[253] Dong Wang,et al. Extension of the in vivo haploid induction system from diploid maize to hexaploid wheat , 2019, Plant biotechnology journal.
[254] R. Visser,et al. Outlook for coeliac disease patients: towards bread wheat with hypoimmunogenic gluten by gene editing of α- and γ-gliadin gene families , 2019, BMC Plant Biology.
[255] G. Bai,et al. Gene editing of the wheat homologs of TONNEAU1‐recruiting motif encoding gene affects grain shape and weight in wheat , 2019, The Plant journal : for cell and molecular biology.
[256] Takeshi Hayashi,et al. Genome-Edited Triple-Recessive Mutation Alters Seed Dormancy in Wheat. , 2019, Cell reports.
[257] M. Tester,et al. Breeding crops to feed 10 billion , 2019, Nature Biotechnology.
[258] Shan Wang,et al. A deletion mutation in TaHRC confers Fhb1 resistance to Fusarium head blight in wheat , 2019, Nature Genetics.
[259] Baoxiang Qin,et al. Knockout of OsPRP1, a gene encoding proline-rich protein, confers enhanced cold sensitivity in rice (Oryza sativa L.) at the seedling stage , 2019, 3 Biotech.
[260] R. Song,et al. Dek42 encodes an RNA-binding protein that affects alternative pre-mRNA splicing and maize kernel development. , 2019, Journal of integrative plant biology.
[261] L. Mao,et al. Supersweet and waxy: meeting the diverse demands for specialty maize by genome editing , 2019, Plant biotechnology journal.
[262] Ú. Gonzales-Barrón,et al. Chemical and nutritional characterization of Chenopodium quinoa Willd (quinoa) grains: A good alternative to nutritious food. , 2019, Food chemistry.
[263] Meiying Fan,et al. CRISPR/Cas9‐mediated functional recovery of the recessive rc allele to develop red rice , 2019, Plant biotechnology journal.
[264] Stéphane Deschamps,et al. CRISPR-Cas9 Editing in Maize: Systematic Evaluation of Off-target Activity and Its Relevance in Crop Improvement , 2019, Scientific Reports.
[265] Yanpeng Wang,et al. CRISPR/Cas Genome Editing and Precision Plant Breeding in Agriculture. , 2019, Annual review of plant biology.
[266] Q. Shu,et al. Mutation of Inositol 1,3,4-trisphosphate 5/6-kinase6 Impairs Plant Growth and Phytic Acid Synthesis in Rice , 2019, Plants.
[267] Xiaoduo Lu,et al. A Subsidiary Cell-Localized Glucose Transporter Promotes Stomatal Conductance and Photosynthesis , 2019, Plant Cell.
[268] Yuan Zong,et al. Generation of herbicide tolerance traits and a new selectable marker in wheat using base editing , 2019, Nature Plants.
[269] P. Langridge,et al. CRISPR/Cas9‐mediated knockout of Ms1 enables the rapid generation of male‐sterile hexaploid wheat lines for use in hybrid seed production , 2019, Plant biotechnology journal.
[270] Binbin Zhao,et al. Development of a Haploid-Inducer Mediated Genome Editing System for Accelerating Maize Breeding. , 2019, Molecular plant.
[271] G. A. Beggs,et al. Control of meristem determinacy by trehalose 6-phosphate phosphatases is uncoupled from enzymatic activity , 2019, Nature Plants.
[272] Hitoshi Sakakibara,et al. An efficient DNA- and selectable-marker-free genome-editing system using zygotes in rice , 2019, Nature Plants.
[273] K. Edwards,et al. Development of an Agrobacterium‐delivered CRISPR/Cas9 system for wheat genome editing , 2019, Plant biotechnology journal.
[274] N. Borisjuk,et al. Genetic Modification for Wheat Improvement: From Transgenesis to Genome Editing , 2019, BioMed research international.
[275] L. Luo,et al. Enhanced rice salinity tolerance via CRISPR/Cas9-targeted mutagenesis of the OsRR22 gene , 2019, Molecular Breeding.
[276] Q. Qian,et al. Developing disease-resistant thermosensitive male sterile rice by multiplex gene editing. , 2019, Journal of integrative plant biology.
[277] Shujie Dong,et al. One-step genome editing of elite crop germplasm during haploid induction , 2019, Nature Biotechnology.
[278] Hu Jianzhong,et al. Characterization and Evaluation of OsLCT1 and OsNramp5 Mutants Generated Through CRISPR/Cas9-Mediated Mutagenesis for Breeding Low Cd Rice , 2019, Rice Science.
[279] P. Hu,et al. Editing of Rice Isoamylase Gene ISA1 Provides Insights into Its Function in Starch Formation , 2019, Rice Science.
[280] L. Comai,et al. Regeneration of Solanum tuberosum Plants from Protoplasts Induces Widespread Genome Instability[OPEN] , 2019, Plant Physiology.
[281] A. Kis,et al. Creating highly efficient resistance against wheat dwarf virus in barley by employing CRISPR/Cas9 system , 2019, Plant biotechnology journal.
[282] Mehmood Ali Noor,et al. Applications of the CRISPR/Cas9 System for Rice Grain Quality Improvement: Perspectives and Opportunities , 2019, International journal of molecular sciences.
[283] G. Ingram,et al. Single and multiple gene knockouts by CRISPR–Cas9 in maize , 2019, Plant Cell Reports.
[284] Jian-Kang Zhu,et al. Gene editing in plants: progress and challenges , 2019, National science review.
[285] L. Tran,et al. The CRISPR/Cas9 system and its applications in crop genome editing , 2019, Critical reviews in biotechnology.
[286] M. Pacher,et al. The CRISPR/Cas revolution continues: From efficient gene editing for crop breeding to plant synthetic biology. , 2018, Journal of integrative plant biology.
[287] P. Hofvander,et al. Genome editing in potato via CRISPR-Cas9 ribonucleoprotein delivery. , 2018, Physiologia plantarum.
[288] A. Nadolska-Orczyk,et al. A simple and efficient CRISPR/Cas9 platform for induction of single and multiple, heritable mutations in barley (Hordeum vulgare L.) , 2018, Plant Methods.
[289] K. Holubová,et al. Modification of Barley Plant Productivity Through Regulation of Cytokinin Content by Reverse-Genetics Approaches , 2018, Front. Plant Sci..
[290] G. Song,et al. Targeted mutagenesis using the Agrobacterium tumefaciens-mediated CRISPR-Cas9 system in common wheat , 2018, BMC Plant Biology.
[291] W. Harwood,et al. Creating Targeted Gene Knockouts in Barley Using CRISPR/Cas9. , 2018, Methods in molecular biology.
[292] S. Toki,et al. Targeted deletion of rice retrotransposon Tos17 via CRISPR/Cas9 , 2018, Plant Cell Reports.
[293] Matthias Lange,et al. Genebank genomics highlights the diversity of a global barley collection , 2018, Nature Genetics.
[294] A. Blennow,et al. Protein Targeting to Starch 1 is essential for starchy endosperm development in barley , 2018, Journal of experimental botany.
[295] W. Willett,et al. Options for keeping the food system within environmental limits , 2018, Nature.
[296] Chao Li,et al. Efficient C-to-T base editing in plants using a fusion of nCas9 and human APOBEC3A , 2018, Nature Biotechnology.
[297] Liyu Huang,et al. Developing superior alleles of yield genes in rice by artificial mutagenesis using the CRISPR/Cas9 system , 2018, The Crop Journal.
[298] S. Toki,et al. Production of high oleic/low linoleic rice by genome editing. , 2018, Plant physiology and biochemistry : PPB.
[299] R. Imai,et al. Biolistic-delivery-based transient CRISPR/Cas9 expression enables in planta genome editing in wheat , 2018, Scientific Reports.
[300] R. Song,et al. The ZmbZIP22 Transcription Factor Regulates 27-kD γ-Zein Gene Transcription during Maize Endosperm Development[OPEN] , 2018, Plant Cell.
[301] Diqiu Yu,et al. The sucrose non-fermenting-1-related protein kinases SAPK1 and SAPK2 function collaboratively as positive regulators of salt stress tolerance in rice , 2018, BMC Plant Biology.
[302] Rukmini Mishra,et al. Genome Editing in Rice: Recent Advances, Challenges, and Future Implications , 2018, Front. Plant Sci..
[303] V. Srivastava,et al. Heat‐shock‐inducible CRISPR/Cas9 system generates heritable mutations in rice , 2018, bioRxiv.
[304] Yan Liu,et al. Generation of Transgene-Free Maize Male Sterile Lines Using the CRISPR/Cas9 System , 2018, Front. Plant Sci..
[305] Yiping Qi,et al. Multiplex QTL editing of grain-related genes improves yield in elite rice varieties , 2018, Plant Cell Reports.
[306] E. Stokstad. European court ruling raises hurdles for CRISPR crops , 2018, Science.
[307] Martin J. Aryee,et al. Activities and specificities of CRISPR/Cas9 and Cas12a nucleases for targeted mutagenesis in maize , 2018, Plant biotechnology journal.
[308] Paul Nicholson,et al. Speed breeding in growth chambers and glasshouses for crop breeding and model plant research , 2018, Nature Protocols.
[309] Tao Zhang,et al. Plant Genome Editing Using FnCpf1 and LbCpf1 Nucleases at Redefined and Altered PAM Sites. , 2018, Molecular plant.
[310] Joshua K Young,et al. Concurrent modifications in the three homeologs of Ms45 gene with CRISPR-Cas9 lead to rapid generation of male sterile bread wheat (Triticum aestivum L.) , 2018, Plant Molecular Biology.
[311] Yunde Zhao,et al. Synthesis-dependent repair of Cpf1-induced double strand DNA breaks enables targeted gene replacement in rice , 2018, Journal of experimental botany.
[312] N. Talbot,et al. CRISPR-Cas9 ribonucleoprotein-mediated co-editing and counterselection in the rice blast fungus , 2018, Scientific Reports.
[313] Kunling Chen,et al. Analysis of the functions of TaGW2 homoeologs in wheat grain weight and protein content traits , 2018, The Plant journal : for cell and molecular biology.
[314] C. Li,et al. Expanded base editing in rice and wheat using a Cas9-adenosine deaminase fusion , 2018, Genome Biology.
[315] R. Bressan,et al. Mutations in a subfamily of abscisic acid receptor genes promote rice growth and productivity , 2018, Proceedings of the National Academy of Sciences.
[316] J. Imani,et al. Further analysis of barley MORC1 using a highly efficient RNA‐guided Cas9 gene‐editing system , 2018, Plant biotechnology journal.
[317] R. Burton,et al. Method for hull-less barley transformation and manipulation of grain mixed-linkage beta-glucan. , 2018, Journal of integrative plant biology.
[318] Jian‐Kang Zhu,et al. Generation of new glutinous rice by CRISPR/Cas9-targeted mutagenesis of the Waxy gene in elite rice varieties. , 2018, Journal of integrative plant biology.
[319] Jing Zhang,et al. High‐efficiency genome editing using a dmc1 promoter‐controlled CRISPR/Cas9 system in maize , 2018, Plant biotechnology journal.
[320] D. Voytas,et al. Novel alleles of rice eIF4G generated by CRISPR/Cas9‐targeted mutagenesis confer resistance to Rice tungro spherical virus , 2018, Plant biotechnology journal.
[321] Daniel F Voytas,et al. Targeted mutagenesis in wheat microspores using CRISPR/Cas9 , 2018, Scientific Reports.
[322] Honghui Lin,et al. Improved Base Editor for Efficiently Inducing Genetic Variations in Rice with CRISPR/Cas9-Guided Hyperactive hAID Mutant. , 2018, Molecular plant.
[323] Bing Yang,et al. Highly Efficient A·T to G·C Base Editing by Cas9n-Guided tRNA Adenosine Deaminase in Rice. , 2018, Molecular plant.
[324] Qingyu Wu,et al. Role of heterotrimeric Gα proteins in maize development and enhancement of agronomic traits , 2018, PLoS genetics.
[325] M. Gu,et al. GS9 acts as a transcriptional activator to regulate rice grain shape and appearance quality , 2018, Nature Communications.
[326] Zhongming Fang,et al. Blocking amino acid transporter OsAAP3 improves grain yield by promoting outgrowth buds and increasing tiller number in rice , 2018, Plant biotechnology journal.
[327] M. Rey,et al. Magnesium Increases Homoeologous Crossover Frequency During Meiosis in ZIP4 (Ph1 Gene) Mutant Wheat-Wild Relative Hybrids , 2018, bioRxiv.
[328] Tingting Gu,et al. A method for the production and expedient screening of CRISPR/Cas9-mediated non-transgenic mutant plants , 2018, Horticulture Research.
[329] Baohong Zhang,et al. CRISPR/Cas9: An RNA‐guided highly precise synthetic tool for plant genome editing , 2018, Journal of cellular physiology.
[330] Xiaolu Yang,et al. Genetic variations in ARE1 mediate grain yield by modulating nitrogen utilization in rice , 2018, Nature Communications.
[331] A. Pattanayak,et al. Insights into maize genome editing via CRISPR/Cas9 , 2018, Physiology and Molecular Biology of Plants.
[332] Jeffry D Sander,et al. Developing a flexible, high‐efficiency Agrobacterium‐mediated sorghum transformation system with broad application , 2018, Plant biotechnology journal.
[333] Wei Wang,et al. Transgenerational CRISPR-Cas9 Activity Facilitates Multiplex Gene Editing in Allopolyploid Wheat , 2018, The CRISPR journal.
[334] Jinsheng Lai,et al. A retrotransposon in an HKT1 family sodium transporter causes variation of leaf Na+ exclusion and salt tolerance in maize. , 2018, The New phytologist.
[335] Kunling Chen,et al. Genome editing of bread wheat using biolistic delivery of CRISPR/Cas9 in vitro transcripts or ribonucleoproteins , 2018, Nature Protocols.
[336] Magdy Mahfouz,et al. Engineering plant architecture via CRISPR/Cas9-mediated alteration of strigolactone biosynthesis , 2018, BMC Plant Biology.
[337] Ru Zhang,et al. Application of protoplast technology to CRISPR/Cas9 mutagenesis: from single‐cell mutation detection to mutant plant regeneration , 2018, Plant biotechnology journal.
[338] Zhijun Cheng,et al. Disruption of OsSEC3A increases the content of salicylic acid and induces plant defense responses in rice , 2017, Journal of experimental botany.
[339] Yumei Xia,et al. Knock out of the annexin gene OsAnn3 via CRISPR/Cas9-mediated genome editing decreased cold tolerance in rice , 2017, Journal of Plant Biology.
[340] Rui Zhang,et al. Pollen magnetofection for genetic modification with magnetic nanoparticles as gene carriers , 2017, Nature Plants.
[341] Daniel F. Voytas,et al. Low‐gluten, nontransgenic wheat engineered with CRISPR/Cas9 , 2017, Plant biotechnology journal.
[342] Li Tang,et al. Knockout of OsNramp5 using the CRISPR/Cas9 system produces low Cd-accumulating indica rice without compromising yield , 2017, Scientific Reports.
[343] H. Budak,et al. CRISPR/Cas9 genome editing in wheat , 2017, Functional & Integrative Genomics.
[344] R. Imai,et al. An in planta biolistic method for stable wheat transformation , 2017, Scientific Reports.
[345] Yi Zhang,et al. Construction of a Genome-Wide Mutant Library in Rice Using CRISPR/Cas9. , 2017, Molecular plant.
[346] Shaojiang Chen,et al. Novel technologies in doubled haploid line development , 2017, Plant biotechnology journal.
[347] Yang Bai,et al. Simultaneous modification of three homoeologs of TaEDR1 by genome editing enhances powdery mildew resistance in wheat , 2017, The Plant journal : for cell and molecular biology.
[348] J. Batley,et al. Speed breeding: a powerful tool to accelerate crop research and breeding , 2017, bioRxiv.
[349] Jian‐Kang Zhu,et al. Gene Targeting by Homology-Directed Repair in Rice Using a Geminivirus-Based CRISPR/Cas9 System. , 2017, Molecular plant.
[350] Gang Liang,et al. OsSAPK2 Confers Abscisic Acid Sensitivity and Tolerance to Drought Stress in Rice , 2017, Front. Plant Sci..
[351] L. Mao,et al. RNA‐guided Cas9 as an in vivo desired‐target mutator in maize , 2017, Plant biotechnology journal.
[352] Bing Yang,et al. New variants of CRISPR RNA‐guided genome editing enzymes , 2017, Plant biotechnology journal.
[353] John K. McCooke,et al. A chromosome conformation capture ordered sequence of the barley genome , 2017, Nature.
[354] E. Stoger,et al. Heritable Genomic Fragment Deletions and Small Indels in the Putative ENGase Gene Induced by CRISPR/Cas9 in Barley , 2017, Front. Plant Sci..
[355] Haiyang Wang,et al. GW5 acts in the brassinosteroid signalling pathway to regulate grain width and weight in rice , 2017, Nature Plants.
[356] Ying Guo,et al. Isolation and characterization of the TaSnRK2.10 gene and its association with agronomic traits in wheat (Triticum aestivum L.) , 2017, PloS one.
[357] P. Quick,et al. CRISPR-Cas9 and CRISPR-Cpf1 mediated targeting of a stomatal developmental gene EPFL9 in rice , 2017, Plant Cell Reports.
[358] Yunde Zhao,et al. Generation of High-Amylose Rice through CRISPR/Cas9-Mediated Targeted Mutagenesis of Starch Branching Enzymes , 2017, Front. Plant Sci..
[359] Jian‐Kang Zhu,et al. Precise Editing of a Target Base in the Rice Genome Using a Modified CRISPR/Cas9 System. , 2017, Molecular plant.
[360] W. Jin,et al. A 4-bp Insertion at ZmPLA1 Encoding a Putative Phospholipase A Generates Haploid Induction in Maize. , 2017, Molecular plant.
[361] Mingliang Xu,et al. Quantitative Disease Resistance: Dissection and Adoption in Maize. , 2017, Molecular plant.
[362] Yunde Zhao,et al. Generation of Targeted Point Mutations in Rice by a Modified CRISPR/Cas9 System. , 2017, Molecular plant.
[363] J. Coimbra,et al. Quinoa: Nutritional, functional, and antinutritional aspects , 2017, Critical reviews in food science and nutrition.
[364] Rui Zhang,et al. Precise base editing in rice, wheat and maize with a Cas9-cytidine deaminase fusion , 2017, Nature Biotechnology.
[365] Jun Li,et al. Generation of thermosensitive male-sterile maize by targeted knockout of the ZmTMS5 gene. , 2017, Journal of genetics and genomics = Yi chuan xue bao.
[366] Hao Li,et al. Generation of targeted mutant rice using a CRISPR‐Cpf1 system , 2017, Plant biotechnology journal.
[367] Chengcai Chu,et al. High-efficiency breeding of early-maturing rice cultivars via CRISPR/Cas9-mediated genome editing. , 2017, Journal of genetics and genomics = Yi chuan xue bao.
[368] T. Ishii,et al. A future scenario of the global regulatory landscape regarding genome-edited crops. , 2017, GM crops & food.
[369] J. E. Díaz,et al. Speed breeding for multiple disease resistance in barley , 2017, Euphytica.
[370] M. Nuccio,et al. MATRILINEAL, a sperm-specific phospholipase, triggers maize haploid induction , 2017, Nature.
[371] Yanpeng Wang,et al. Efficient DNA-free genome editing of bread wheat using CRISPR/Cas9 ribonucleoprotein complexes , 2017, Nature Communications.
[372] H. Kaya,et al. Efficient targeted mutagenesis of rice and tobacco genomes using Cpf1 from Francisella novicida , 2016, Scientific Reports.
[373] Shaoyan Zheng,et al. Development of Commercial Thermo-sensitive Genic Male Sterile Rice Accelerates Hybrid Rice Breeding Using the CRISPR/Cas9-mediated TMS5 Editing System , 2016, Scientific Reports.
[374] Joshua K Young,et al. Genome editing in maize directed by CRISPR–Cas9 ribonucleoprotein complexes , 2016, Nature Communications.
[375] Aimee A. Malzahn,et al. Rapid Evolution of Manifold CRISPR Systems for Plant Genome Editing , 2016, Front. Plant Sci..
[376] S. Sang,et al. Bioactive phytochemicals in barley , 2016, Journal of food and drug analysis.
[377] Dipali G. Sashital,et al. Achieving Plant CRISPR Targeting that Limits Off‐Target Effects , 2016, The plant genome.
[378] V. Walbot,et al. An Agrobacterium‐delivered CRISPR/Cas9 system for high‐frequency targeted mutagenesis in maize , 2016, Plant biotechnology journal.
[379] Yi Zhang,et al. Efficient and transgene-free genome editing in wheat through transient expression of CRISPR/Cas9 DNA or RNA , 2016, Nature Communications.
[380] R. Qin,et al. Rapid improvement of grain weight via highly efficient CRISPR/Cas9-mediated multiplex genome editing in rice. , 2016, Journal of genetics and genomics = Yi chuan xue bao.
[381] Hongyu Wang,et al. ARGOS8 variants generated by CRISPR‐Cas9 improve maize grain yield under field drought stress conditions , 2016, Plant biotechnology journal.
[382] Wei Zhang,et al. High-efficiency CRISPR/Cas9 multiplex gene editing using the glycine tRNA-processing system-based strategy in maize , 2016, BMC Biotechnology.
[383] Nathan M. Springer,et al. Advancing Crop Transformation in the Era of Genome Editing[OPEN] , 2016, Plant Cell.
[384] Ya-ping Fu,et al. Expanding the Range of CRISPR/Cas9 Genome Editing in Rice. , 2016, Molecular plant.
[385] Yaoguang Liu,et al. Enhanced Rice Blast Resistance by CRISPR/Cas9-Targeted Mutagenesis of the ERF Transcription Factor Gene OsERF922 , 2016, PloS one.
[386] N. Tuteja,et al. The CRISPR/Cas Genome-Editing Tool: Application in Improvement of Crops , 2016, Front. Plant Sci..
[387] Yunde Zhao,et al. Engineering Herbicide-Resistant Rice Plants through CRISPR/Cas9-Mediated Homologous Recombination of Acetolactate Synthase. , 2016, Molecular plant.
[388] Meiru Li,et al. Reassessment of the Four Yield-related Genes Gn1a, DEP1, GS3, and IPA1 in Rice Using a CRISPR/Cas9 System , 2016, Front. Plant Sci..
[389] Gang Liang,et al. Selection of highly efficient sgRNAs for CRISPR/Cas9-based plant genome editing , 2016, Scientific Reports.
[390] Yang Liu,et al. Efficient Targeted Genome Modification in Maize Using CRISPR/Cas9 System. , 2016, Journal of genetics and genomics = Yi chuan xue bao.
[391] Jinsheng Lai,et al. Efficiency and Inheritance of Targeted Mutagenesis in Maize Using CRISPR-Cas9. , 2016, Journal of genetics and genomics = Yi chuan xue bao.
[392] N. Patron,et al. Induction of targeted, heritable mutations in barley and Brassica oleracea using RNA-guided Cas9 nuclease , 2015, Genome Biology.
[393] Juan Li,et al. Identification of a regulatory element responsible for salt induction of rice OsRAV2 through ex situ and in situ promoter analysis , 2015, Plant Molecular Biology.
[394] Joshua K Young,et al. Targeted Mutagenesis, Precise Gene Editing, and Site-Specific Gene Insertion in Maize Using Cas9 and Guide RNA[OPEN] , 2015, Plant Physiology.
[395] Daniel F Voytas,et al. Efficient Virus-Mediated Genome Editing in Plants Using the CRISPR/Cas9 System. , 2015, Molecular plant.
[396] Wei Liu,et al. A Robust CRISPR/Cas9 System for Convenient, High-Efficiency Multiplex Genome Editing in Monocot and Dicot Plants. , 2015, Molecular plant.
[397] Yinong Yang,et al. Boosting CRISPR/Cas9 multiplex editing capability with the endogenous tRNA-processing system , 2015, Proceedings of the National Academy of Sciences.
[398] M. Spalding,et al. Large chromosomal deletions and heritable small genetic changes induced by CRISPR/Cas9 in rice , 2014, Nucleic acids research.
[399] Jian‐Kang Zhu,et al. The CRISPR/Cas9 system produces specific and homozygous targeted gene editing in rice in one generation. , 2014, Plant biotechnology journal.
[400] Yanpeng Wang,et al. Simultaneous editing of three homoeoalleles in hexaploid bread wheat confers heritable resistance to powdery mildew , 2014, Nature Biotechnology.
[401] Gang Bao,et al. CRISPR/Cas9 systems have off-target activity with insertions or deletions between target DNA and guide RNA sequences , 2014, Nucleic acids research.
[402] R. Qin,et al. Gene targeting using the Agrobacterium tumefaciens-mediated CRISPR-Cas system in rice , 2014, Rice.
[403] Jitender Singh,et al. Development of Transgenic Rice Harbouring Mutated Rice 5-Enolpyruvylshikimate 3-Phosphate Synthase (Os-mEPSPS) and Allium sativum Leaf Agglutinin (ASAL) Genes Conferring Tolerance to Herbicides and Sap-Sucking Insects , 2014, Plant Molecular Biology Reporter.
[404] Kang Zhang,et al. Targeted mutagenesis in Zea mays using TALENs and the CRISPR/Cas system. , 2014, Journal of genetics and genomics = Yi chuan xue bao.
[405] Kabin Xie,et al. RNA-guided genome editing in plants using a CRISPR-Cas system. , 2013, Molecular plant.
[406] Jian‐Kang Zhu,et al. Application of the CRISPR-Cas system for efficient genome engineering in plants. , 2013, Molecular plant.
[407] R. Tuli,et al. RNA-Guided Genome Editing for Target Gene Mutations in Wheat , 2013, G3: Genes, Genomes, Genetics.
[408] Qing Liu,et al. Production of high oleic rice grains by suppressing the expression of the OsFAD2-1 gene. , 2013, Functional plant biology : FPB.
[409] Xin Zhang,et al. Targeted mutagenesis in rice using CRISPR-Cas system , 2013, Cell Research.
[410] Bing Yang,et al. Demonstration of CRISPR/Cas9/sgRNA-mediated targeted gene modification in Arabidopsis, tobacco, sorghum and rice , 2013, Nucleic acids research.
[411] Botao Zhang,et al. Efficient genome editing in plants using a CRISPR/Cas system , 2013, Cell Research.
[412] Jun Li,et al. Targeted genome modification of crop plants using a CRISPR-Cas system , 2013, Nature Biotechnology.
[413] George M. Church,et al. Multiplex and homologous recombination–mediated genome editing in Arabidopsis and Nicotiana benthamiana using guide RNA and Cas9 , 2013, Nature Biotechnology.
[414] Jun Li,et al. Whole-genome sequencing reveals untapped genetic potential in Africa’s indigenous cereal crop sorghum , 2013, Nature Communications.
[415] HaoYuzhi,et al. Magnetic gold nanoparticles as a vehicle for fluorescein isothiocyanate and DNA delivery into plant cells , 2013 .
[416] Qian Qian,et al. Rare allele of OsPPKL1 associated with grain length causes extra-large grain and a significant yield increase in rice , 2012, Proceedings of the National Academy of Sciences.
[417] J. Doudna,et al. A Programmable Dual-RNA–Guided DNA Endonuclease in Adaptive Bacterial Immunity , 2012, Science.
[418] Prabhu L Pingali,et al. Green Revolution: Impacts, limits, and the path ahead , 2012, Proceedings of the National Academy of Sciences.
[419] P. Zimmet,et al. The worldwide epidemiology of type 2 diabetes mellitus—present and future perspectives , 2012, Nature Reviews Endocrinology.
[420] C. Pegoraro,et al. Importance of heat shock proteins in maize , 2011, Journal of Crop Science and Biotechnology.
[421] Qifa Zhang,et al. Genetic and molecular bases of rice yield. , 2010, Annual review of plant biology.
[422] J. Kumlehn,et al. Efficient generation of transgenic barley: the way forward to modulate plant-microbe interactions. , 2008, Journal of plant physiology.
[423] R. Henry. Genomics as a Tool for Cereal Chemistry , 2007 .
[424] D. Babić,et al. Relationship between hordein proteins and malt quality in barley cultivars grown in Croatia , 2007 .
[425] G. Petersen,et al. Phylogenetic relationships of Triticum and Aegilops and evidence for the origin of the A, B, and D genomes of common wheat (Triticum aestivum). , 2006, Molecular phylogenetics and evolution.
[426] OUP accepted manuscript , 2022, The Plant Cell.
[427] Yu-Jin Jung,et al. agronomy Research Trends and Challenges of Using CRISPR/Cas9 for Improving Rice Productivity , 2022 .
[428] OUP accepted manuscript , 2021, Plant Physiology.
[429] Monika S. Doblin,et al. Targeted mutation of barley (1,3;1,4)- b -glucan synthases reveals complex relationships between the storage and cell wall polysaccharide content , 2020 .
[430] M. A. Adviento‐Borbe,et al. An agronomic overview of US cereal cropping systems , 2020 .
[431] I. Godwin,et al. Genome Editing by CRISPR/Cas9 in Sorghum Through Biolistic Bombardment. , 2019, Methods in molecular biology.
[432] P. Quick,et al. Editing a Stomatal Developmental Gene in Rice with CRISPR/Cpf1. , 2019, Methods in molecular biology.
[433] D. Sudhakar,et al. Generation of insect resistant marker-free transgenic rice with a novel cry2AX1 gene , 2018 .
[434] Jeffry D. Sander,et al. Use of CRISPR/Cas9 for Crop Improvement in Maize and Soybean. , 2017, Progress in molecular biology and translational science.
[435] Rainer Fischer,et al. The CRISPR/Cas9 system for plant genome editing and beyond. , 2015, Biotechnology advances.
[436] Peter Hedden,et al. The genes of the Green Revolution. , 2003, Trends in genetics : TIG.
[437] S. Weining,et al. Genome-Wide Identification, Evolution and Expressional Analysis of OSCA Gene Family in Barley ( Hordeum vulgare L.) , 2022 .