Opportunities and avenues for achieving crop climate resilience
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Nan Wang | Tinashe Zenda | Huijun Duan | Anyi Dong | Xiaocui Yan | Yuan Zhong | Qian Yang
[1] A. Pareek,et al. Orphan crops: A genetic treasure trove for hunting stress tolerance genes , 2022, Food and Energy Security.
[2] M. Konar,et al. Compound heat and moisture extreme impacts on global crop yields under climate change , 2022, Nature Reviews Earth & Environment.
[3] Jie Song,et al. Improving Wheat Salt Tolerance for Saline Agriculture. , 2022, Journal of agricultural and food chemistry.
[4] A. Fernie,et al. Understanding source-sink interactions: Progress in model plants and translational research to crops in controlled and field conditions. , 2022, Molecular plant.
[5] Fusuo Zhang,et al. Genome-wide dissection of changes in maize root system architecture during modern breeding , 2022, Nature plants.
[6] S. S. Alzahrani,et al. Modification of starch content and its management strategies in plants in response to drought and salinity: current status and future prospects , 2022, Journal of Soil Science and Plant Nutrition.
[7] S. Cutler,et al. Focus on climate change and plant abiotic stress biology , 2022, The Plant cell.
[8] C. Messina,et al. Breeding crops for drought-affected environments and improved climate resilience , 2022, The Plant cell.
[9] R. Varshney,et al. Developing drought‐smart, ready‐to‐grow future crops , 2022, The plant genome.
[10] R. Napier,et al. Nucleic acid aptamers as aptasensors for plant biology. , 2022, Trends in plant science.
[11] Manali Das,et al. Recent advances in machine learning applications in metabolic engineering. , 2022, Biotechnology advances.
[12] W. Xiong,et al. Climate change challenges plant breeding. , 2022, Current opinion in plant biology.
[13] W. Weckwerth,et al. Interpretable machine learning methods for predictions in systems biology from omics data , 2022, Frontiers in Molecular Biosciences.
[14] J. Langdale,et al. Climate change challenges, plant science solutions , 2022, The Plant cell.
[15] K. Vandepoele,et al. Charting plant gene functions in the multi-omics and single-cell era. , 2022, Trends in plant science.
[16] T. Minkina,et al. Molecular and Physiological Mechanisms to Mitigate Abiotic Stress Conditions in Plants , 2022, Life.
[17] Muhammad Bilal Ahmed,et al. Endophyte-Mediated Stress Tolerance in Plants: A Sustainable Strategy to Enhance Resilience and Assist Crop Improvement , 2022, Cells.
[18] T. Lawson,et al. Improving photosynthesis through multidisciplinary efforts: The next frontier of photosynthesis research , 2022, Frontiers in Plant Science.
[19] Yongjiang Zhang,et al. RhizoPot platform: A high-throughput in situ root phenotyping platform with integrated hardware and software , 2022, Frontiers in Plant Science.
[20] R. Varshney,et al. Smart breeding driven by big data, artificial intelligence and integrated genomic-enviromic prediction. , 2022, Molecular plant.
[21] M. Muthamilarasan,et al. Modulating physiological and transcriptional regulatory mechanisms for enhanced climate resilience in cereal crops. , 2022, Journal of plant physiology.
[22] W. Araújo,et al. Full Title: "Using synthetic biology to improve photosynthesis for sustainable food production". , 2022, Journal of biotechnology.
[23] Takayoshi Ishii,et al. Cowpea speed breeding using regulated growth chamber conditions and seeds of oven-dried immature pods potentially accommodates eight generations per year , 2022, Plant methods.
[24] M. Hirai,et al. Ethanol-Mediated Novel Survival Strategy against Drought Stress in Plants , 2022, Plant & cell physiology.
[25] M. Medema,et al. Integrative omics approaches for biosynthetic pathway discovery in plants , 2022, Natural product reports.
[26] K. Niyogi,et al. Soybean photosynthesis and crop yield are improved by accelerating recovery from photoprotection , 2022, Science.
[27] T. Sprink,et al. Genome editing around the globe: An update on policies and perceptions , 2022, Plant physiology.
[28] Rahul Mahadev Shelake,et al. Engineering drought and salinity tolerance traits in crops through CRISPR-mediated genome editing: Targets, tools, challenges, and perspectives , 2022, Plant communications.
[29] C. Raines. Improving plant productivity by re‐tuning the regeneration of RuBP in the Calvin–Benson–Bassham cycle , 2022, The New phytologist.
[30] A. McCormick,et al. The small subunit of Rubisco and its potential as an engineering target , 2022, Journal of experimental botany.
[31] Liantao Liu,et al. Recent advances in methods for in situ root phenotyping , 2022, PeerJ.
[32] Baohui Liu,et al. Genome-Wide Association Studies Reveal Novel Loci for Herbivore Resistance in Wild Soybean (Glycine soja) , 2022, International journal of molecular sciences.
[33] W. Frommer,et al. An increasing number of countries regulate genome editing in crops. , 2022, The New phytologist.
[34] Tinashe Zenda,et al. Reproductive-Stage Heat Stress in Cereals: Impact, Plant Responses and Strategies for Tolerance Improvement , 2022, International journal of molecular sciences.
[35] R. Varshney,et al. The Key to the Future Lies in the Past: Insights from Grain Legume Domestication and Improvement Should Inform Future Breeding Strategies , 2022, Plant & cell physiology.
[36] L. Qiao,et al. Soil quality both increases crop production and improves resilience to climate change , 2022, Nature Climate Change.
[37] Junmei Hu,et al. Expanding the gene pool for soybean improvement with its wild relatives , 2022, aBIOTECH.
[38] Yuwen Yang,et al. Increase Crop Resilience to Heat Stress Using Omic Strategies , 2022, Frontiers in Plant Science.
[39] D. Tissue,et al. Synthetic biology and opportunities within agricultural crops , 2022, Journal of Sustainable Agriculture and Environment.
[40] D. Bonfil,et al. Six decades of warming and drought in the world’s top wheat-producing countries offset the benefits of rising CO2 to yield , 2022, Scientific Reports.
[41] F. V. van Eeuwijk,et al. Identification of environment types and adaptation zones with self-organizing maps; applications to sunflower multi-environment data in Europe , 2022, Theoretical and Applied Genetics.
[42] 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.
[43] J. Batley,et al. Advancing designer crops for climate resilience through an integrated genomics approach. , 2022, Current opinion in plant biology.
[44] Huanming Yang,et al. The single-cell stereo-seq reveals region-specific cell subtypes and transcriptome profiling in Arabidopsis leaves. , 2022, Developmental cell.
[45] Yuling Jiao,et al. Advances and Applications of Single-cell Omics Technologies in Plant Research. , 2022, The Plant journal : for cell and molecular biology.
[46] M. Santini,et al. Complex drought patterns robustly explain global yield loss for major crops , 2022, Scientific Reports.
[47] S. Dyer,et al. Progenitor species hold untapped diversity for potential climate-responsive traits for use in wheat breeding and crop improvement , 2022, Heredity.
[48] N. U. Jayawardana,et al. Modern plant biotechnology as a strategy in addressing climate change and attaining food security , 2022, Agriculture & Food Security.
[49] Peter W. B. Phillips,et al. Genome-edited crops for improved food security of smallholder farmers , 2022, Nature Genetics.
[50] Kenichi Tsuda,et al. Plant-Microbiota Interactions in Abiotic Stress Environments. , 2022, Molecular plant-microbe interactions : MPMI.
[51] R. Mittler,et al. Plant responses to multifactorial stress combination. , 2022, The New phytologist.
[52] Iker Irisarri,et al. Plant genome sequence assembly in the era of long reads: Progress, challenges and future directions , 2022, Quantitative Plant Biology.
[53] Y. Gibon,et al. High-throughput plant phenotyping: a role for metabolomics? , 2022, Trends in plant science.
[54] A. Husaini. High-value pleiotropic genes for developing multiple stress-tolerant biofortified crops for 21st-century challenges , 2022, Heredity.
[55] Y. Kuzyakov,et al. Rhizosphere bacteriome structure and functions , 2022, Nature communications.
[56] S. Mallapaty. China’s approval of gene-edited crops energizes researchers , 2022, Nature.
[57] R. Varshney,et al. Breeding More Crops in Less Time: A Perspective on Speed Breeding , 2022, Biology.
[58] K. Cassman,et al. Climate and agronomy, not genetics, underpin recent maize yield gains in favorable environments , 2022, Proceedings of the National Academy of Sciences.
[59] L. Voesenek,et al. Water stress resilient cereal crops: Lessons from wild relatives , 2022, Journal of integrative plant biology.
[60] Tao Xu,et al. Melatonin is a potential target for improving horticultural crop resistance to abiotic stress , 2022, Scientia Horticulturae.
[61] H. Nguyen,et al. Pangenomics in crop improvement—from coding structural variations to finding regulatory variants with pangenome graphs , 2021, The plant genome.
[62] Songtao Liu,et al. Omics-Facilitated Crop Improvement for Climate Resilience and Superior Nutritive Value , 2021, Frontiers in Plant Science.
[63] H. Meinke,et al. Crop traits enabling yield gains under more frequent extreme climatic events. , 2021, The Science of the total environment.
[64] A. Challinor,et al. Effects of combined abiotic stresses on nutrient content of European wheat and implications for nutritional security under climate change , 2021, Scientific Reports.
[65] Ma. Luisa Buchaillot,et al. Crop phenotyping in a context of Global Change: what to measure and how to do it. , 2021, Journal of integrative plant biology.
[66] R. Varshney,et al. Features and applications of haplotypes in crop breeding , 2021, Communications Biology.
[67] L. Fan,et al. Twenty years of plant genome sequencing: achievements and challenges. , 2021, Trends in plant science.
[68] Atul K. Jain,et al. Climate impacts on global agriculture emerge earlier in new generation of climate and crop models , 2021, Nature Food.
[69] D. Inzé,et al. Increasing Yield on Dry Fields: Molecular Pathways With Growing Potential. , 2021, The Plant journal : for cell and molecular biology.
[70] Jason Earl Thomas,et al. Progress and challenges in sorghum biotechnology, a multipurpose feedstock for the bioeconomy , 2021, Journal of experimental botany.
[71] W. Weckwerth,et al. Rapid delivery systems for future food security , 2021, Nature Biotechnology.
[72] F. Kabil,et al. Maize root responses to drought stress depend on root class and axial position , 2021, Journal of Plant Research.
[73] Jianhua Zhu,et al. Abiotic stress responses in plants , 2021, Nature Reviews Genetics.
[74] Kate M. Creasey Krainer,et al. Current Advancements and Limitations of Gene Editing in Orphan Crops , 2021, Frontiers in Plant Science.
[75] F. Saleem,et al. De-novo Domestication for Improving Salt Tolerance in Crops , 2021, Frontiers in Plant Science.
[76] C. Messina,et al. Can We Harness “Enviromics” to Accelerate Crop Improvement by Integrating Breeding and Agronomy? , 2021, Frontiers in Plant Science.
[77] Juan Zhao,et al. Melatonin enhances drought stress tolerance in maize through coordinated regulation of carbon and nitrogen assimilation. , 2021, Plant physiology and biochemistry : PPB.
[78] R. M. Rivero,et al. Developing climate-resilient crops: Improving plant tolerance to stress combination. , 2021, The Plant journal : for cell and molecular biology.
[79] W. Weckwerth,et al. Fast-forward breeding for a food-secure world. , 2021, Trends in genetics : TIG.
[80] Zhonghu He,et al. Warming climate challenges breeding , 2021, Nature Plants.
[81] Nazarul Hasan,et al. Recent advancements in molecular marker-assisted selection and applications in plant breeding programmes , 2021, Journal of Genetic Engineering and Biotechnology.
[82] C. M. Parihar,et al. Water budgeting in conservation agriculture-based sub-surface drip irrigation in tropical maize using HYDRUS-2D in South Asia , 2021, Scientific Reports.
[83] M. Reynolds,et al. Mitigating tradeoffs in plant breeding , 2021, iScience.
[84] Fostering multidisciplinary collaborations , 2021, Nature Computational Science.
[85] P. Khavari,et al. Integrating single-cell and spatial transcriptomics to elucidate intercellular tissue dynamics , 2021, Nature Reviews Genetics.
[86] Vincent Garin,et al. Environmental characterization and yield gap analysis to tackle genotype-by-environment-by-management interactions and map region-specific agronomic and breeding targets in groundnut , 2021 .
[87] M. Kapralov,et al. Rubisco substitutions predicted to enhance crop performance through carbon uptake modelling , 2021, Journal of experimental botany.
[88] S. Chapman,et al. Scaling up high-throughput phenotyping for abiotic stress selection in the field , 2021, Theoretical and Applied Genetics.
[89] Songtao Liu,et al. Advances in Cereal Crop Genomics for Resilience under Climate Change , 2021, Life.
[90] P. Langridge,et al. Breeding crops for climate resilience , 2021, Theoretical and Applied Genetics.
[91] F. Morales,et al. Climate Change, Crop Yields, and Grain Quality of C3 Cereals: A Meta-Analysis of [CO2], Temperature, and Drought Effects , 2021, Plants.
[92] R. Varshney,et al. Genomics and breeding innovations for enhancing genetic gain for climate resilience and nutrition traits , 2021, Theoretical and Applied Genetics.
[93] Lijuan Duan,et al. Nanoparticle Delivery of CRISPR/Cas9 for Genome Editing , 2021, Frontiers in Genetics.
[94] S. Jackson,et al. Advancing crop genomics from lab to field , 2021, Nature Genetics.
[95] A. Cortés,et al. Harnessing Crop Wild Diversity for Climate Change Adaptation , 2021, Genes.
[96] R. Furbank,et al. Expression of a CO2-permeable aquaporin enhances mesophyll conductance in the C4 species Setaria viridis , 2021, bioRxiv.
[97] S. Salvi,et al. Wheat root systems as a breeding target for climate resilience , 2021, Theoretical and Applied Genetics.
[98] R. Varshney,et al. Designing Future Crops: Genomics-Assisted Breeding Comes of Age. , 2021, Trends in plant science.
[99] I. Henderson,et al. Addressing Research Bottlenecks to Crop Productivity. , 2021, Trends in plant science.
[100] A. Bentley,et al. The Modern Plant Breeding Triangle: Optimizing the Use of Genomics, Phenomics, and Enviromics Data , 2021, Frontiers in Plant Science.
[101] Sumit G. Gandhi,et al. Plant Aquaporins: a frontward to make crop plants drought resistant. , 2021, Physiologia plantarum.
[102] B. Singh,et al. Phytomicrobiome for promoting sustainable agriculture and food security: Opportunities, challenges, and solutions. , 2021, Microbiological research.
[103] M. Muthamilarasan,et al. Phytohormone signaling and crosstalk in regulating drought stress response in plants , 2021, Plant Cell Reports.
[104] Lizhi Wang,et al. Interdisciplinary strategies to enable data-driven plant breeding in a changing climate , 2021 .
[105] F. Fritschi,et al. Global Warming, Climate Change, and Environmental Pollution: Recipe for a Multifactorial Stress Combination Disaster. , 2021, Trends in plant science.
[106] L. DeHaan,et al. Genomic prediction enables rapid selection of high‐performing genets in an intermediate wheatgrass breeding program , 2021, The plant genome.
[107] S. Rhee,et al. Nanotechnology to advance CRISPR–Cas genetic engineering of plants , 2021, Nature Nanotechnology.
[108] Caixia Gao. Genome engineering for crop improvement and future agriculture , 2021, Cell.
[109] L. Peres,et al. De novo domestication of wild species to create crops with increased resilience and nutritional value. , 2021, Current opinion in plant biology.
[110] F. Olivares,et al. Plant microbiome structure and benefits for sustainable agriculture , 2021 .
[111] Bonggeun Song,et al. Genetics and breeding for climate change in Orphan crops , 2021, Theoretical and Applied Genetics.
[112] J. Alonso,et al. Leveraging synthetic biology approaches in plant hormone research. , 2021, Current opinion in plant biology.
[113] S. He,et al. Crops of the future: building a climate-resilient plant immune system. , 2021, Current opinion in plant biology.
[114] A. Raza,et al. A manipulative interplay between positive and negative regulators of phytohormones: A way forward for improving drought tolerance in plants. , 2021, Physiologia plantarum.
[115] M. Prasad,et al. Biotechnological approaches to dissect climate-resilient traits in millets and their application in crop improvement. , 2021, Journal of biotechnology.
[116] M. Nakazono,et al. Genetic regulation of root traits for soil flooding tolerance in genus Zea , 2021, Breeding science.
[117] Rafael Della Coletta,et al. How the pan-genome is changing crop genomics and improvement , 2021, Genome Biology.
[118] S. Jackson,et al. Genomic resources in plant breeding for sustainable agriculture , 2020, Journal of plant physiology.
[119] A. Fernie,et al. Integrating multi-omics data for crop improvement. , 2020, Journal of plant physiology.
[120] Hong-Xuan Lin,et al. Contribution of phenylpropanoid metabolism to plant development and plant-environment interactions. , 2020, Journal of integrative plant biology.
[121] B. Han,et al. Designing Future Crops: challenges and strategies for sustainable agriculture. , 2020, The Plant journal : for cell and molecular biology.
[122] A. Fernie,et al. Plant Single-Cell Metabolomics—Challenges and Perspectives , 2020, International journal of molecular sciences.
[123] R. Ramírez-González,et al. A haplotype-led approach to increase the precision of wheat breeding , 2020, Communications biology.
[124] W. Frommer,et al. Sensors for the quantification, localization and analysis of the dynamics of plant hormones , 2020, The Plant journal : for cell and molecular biology.
[125] F. Fritschi,et al. The impact of multifactorial stress combination on plant growth and survival , 2020, bioRxiv.
[126] R. Snowdon,et al. Crop adaptation to climate change as a consequence of long-term breeding , 2020, Theoretical and Applied Genetics.
[127] B. Kilian,et al. Crop Science special issue: Adapting agriculture to climate change: A walk on the wild side , 2020, Crop Science.
[128] Ankush Ashok Saddhe,et al. Plant sugars: homeostasis and transport under abiotic stress in plants. , 2020, Physiologia plantarum.
[129] H. Madani,et al. Improving Maize Yield with Advancing Planting Time and Nano-Silicon Foliar Spray Alone or Combined with Zinc , 2020, Silicon.
[130] Hualong Liu,et al. Whole-genome mining of abiotic stress gene loci in rice , 2020, Planta.
[131] Jinfa F. Zhang,et al. GWAS reveals consistent QTL for drought and salt tolerance in a MAGIC population of 550 lines derived from intermating of 11 Upland cotton (Gossypium hirsutum) parents , 2020, Molecular genetics and genomics : MGG.
[132] B. Singh,et al. Crop microbiome and sustainable agriculture , 2020, Nature Reviews Microbiology.
[133] L. Bizikova,et al. A scoping review of adoption of climate-resilient crops by small-scale producers in low- and middle-income countries , 2020, Nature Plants.
[134] V. Vadez,et al. An update and perspectives on the use of promoters in plant genetic engineering , 2020, Journal of biosciences.
[135] M. Gumma,et al. Harnessing wild relatives of pearl millet for germplasm enhancement: Challenges and opportunities , 2020, Crop Science.
[136] R. Varshney,et al. Genomic interventions for sustainable agriculture , 2020, Plant biotechnology journal.
[137] Jill T. Anderson,et al. Plant adaptation to climate change—Where are we? , 2020, Journal of systematics and evolution.
[138] T. Lawson,et al. Stimulating photosynthetic processes increases productivity and water-use efficiency in the field , 2020, Nature Plants.
[139] A. Furtado,et al. Wild Sorghum as a Promising Resource for Crop Improvement , 2020, Frontiers in Plant Science.
[140] Agnieszka A. Golicz,et al. Global Role of Crop Genomics in the Face of Climate Change , 2020, Frontiers in Plant Science.
[141] J. Kudla,et al. Improving plant drought tolerance and growth under water limitation through combinatorial engineering of signalling networks , 2020, Plant biotechnology journal.
[142] S. Puranik,et al. Genome‐wide association mapping and comparative genomics identifies genomic regions governing grain nutritional traits in finger millet ( Eleusine coracana L. Gaertn.) , 2020, PLANTS, PEOPLE, PLANET.
[143] Rainer Waadt. Phytohormone signaling mechanisms and genetic methods for their modulation and detection. , 2020, Current opinion in plant biology.
[144] Chengdao Li,et al. Harness the power of genomic selection and the potential of germplasm in crop breeding for global food security in the era with rapid climate change , 2020, The Crop Journal.
[145] Yubin Li,et al. OsABA8ox2, an ABA catabolic gene, suppresses root elongation of rice seedlings and contributes to drought response , 2020, The Crop Journal.
[146] B. Trevaskis,et al. Phenology and related traits for wheat adaptation , 2020, Heredity.
[147] R. Varshney,et al. Superior haplotypes for haplotype‐based breeding for drought tolerance in pigeonpea (Cajanus cajan L.) , 2020, Plant biotechnology journal.
[148] Yang Bai,et al. A practical guide to amplicon and metagenomic analysis of microbiome data , 2020, Protein & Cell.
[149] L. Oñate-Sánchez,et al. Root Growth Adaptation to Climate Change in Crops , 2020, Frontiers in Plant Science.
[150] P. Ronald,et al. Crop biotechnology and the future of food , 2020, Nature Food.
[151] Ana I. Caño-Delgado,et al. The physiology of plant responses to drought , 2020, Science.
[152] A. E. Elçin,et al. Bioethical issues in genome editing by CRISPR-Cas9 technology , 2020, Turkish journal of biology = Turk biyoloji dergisi.
[153] B. Gérard,et al. Conservation agriculture for sustainable intensification in South Asia , 2020, Nature Sustainability.
[154] James W. Jones,et al. Towards a multiscale crop modelling framework for climate change adaptation assessment , 2020, Nature Plants.
[155] Keywan Hassani-Pak,et al. A roadmap for gene functional characterisation in crops with large genomes: Lessons from polyploid wheat , 2020, eLife.
[156] S. Sharma,et al. Tapping Pennisetum violaceum, a Wild Relative of Pearl Millet (Pennisetum glaucum), for Resistance to Blast (caused by Magnaporthe grisea) and Rust (caused by Puccinia substriata var. indica). , 2020, Plant Disease.
[157] G. Hammer,et al. Integrating genetic gain and gap analysis to predict improvements in crop productivity , 2020 .
[158] Hong Ma,et al. Molecular genetic analyses of abiotic stress responses during plant reproductive development , 2020, Journal of experimental botany.
[159] R. Furbank,et al. Photons to food: genetic improvement of cereal crop photosynthesis , 2020, Journal of experimental botany.
[160] Xin-Guang Zhu,et al. A wish list for synthetic biology in photosynthesis research , 2020, Journal of experimental botany.
[161] W. Araújo,et al. Engineering Improved Photosynthesis in the Era of Synthetic Biology , 2020, Plant communications.
[162] O. Babalola,et al. Metagenomics methods for the study of plant-associated microbial communities: A review. , 2020, Journal of microbiological methods.
[163] P. Gaur,et al. Rapid generation advance (RGA) in chickpea to produce up to seven generations per year and enable speed breeding , 2020 .
[164] T. Michael,et al. Building near-complete plant genomes. , 2020, Current opinion in plant biology.
[165] Xueyong Li,et al. Engineering Abiotic Stress Tolerance via CRISPR-Cas mediated genome editing. , 2020, Journal of experimental botany.
[166] Bin Wang,et al. Plant Synthetic Metabolic Engineering for Enhancing Crop Nutritional Quality , 2019, Plant communications.
[167] R. Henry. Innovations in plant genetics adapting agriculture to climate change. , 2019, Current opinion in plant biology.
[168] Marc-Sven Roell,et al. The impact of synthetic biology for future agriculture and nutrition. , 2019, Current opinion in biotechnology.
[169] K. Nagel,et al. Crop Improvement from Phenotyping Roots: Highlights Reveal Expanding Opportunities. , 2019, Trends in plant science.
[170] M. Warburton,et al. Development of drought‐tolerant breeding lines derived from Helianthus annuus × H. argophyllus interspecific crosses , 2019, Plant Breeding.
[171] R. Varshney,et al. Super-Pangenome by Integrating the Wild Side of a Species for Accelerated Crop Improvement , 2019, Trends in plant science.
[172] Elizabeth A. Ainsworth,et al. Genetic strategies for improving crop yields , 2019, Nature.
[173] R. Henry. Australian Wild Rice Populations: A Key Resource for Global Food Security , 2019, Front. Plant Sci..
[174] Guoying Wang,et al. Enhancing Genetic Gain through Genomic Selection: From Livestock to Plants , 2019, Plant communications.
[175] C. N. Stewart,et al. Genome Editing, Gene Drives, and Synthetic Biology: Will They Contribute to Disease-Resistant Crops, and Who Will Benefit? , 2019, Annual review of phytopathology.
[176] P. Waterhouse,et al. Tools and Strategies for Long-Read Sequencing and De Novo Assembly of Plant Genomes. , 2019, Trends in plant science.
[177] C. Sneller,et al. Use of genomic selection in breeding rice (Oryza sativa L.) for resistance to rice blast (Magnaporthe oryzae) , 2019, Molecular Breeding.
[178] Marie-Bérengère Troadec,et al. Where are we with unintended effects in genome editing applications from DNA to phenotype: focus on plant applications , 2019, Transgenic Research.
[179] G. Moreno,et al. Wheat and barley can increase grain yield in shade through acclimation of physiological and morphological traits in Mediterranean conditions , 2019, Scientific Reports.
[180] M. Reynolds,et al. Genetic dissection of drought and heat‐responsive agronomic traits in wheat , 2019, Plant, cell & environment.
[181] M. Tester,et al. Breeding crops to feed 10 billion , 2019, Nature Biotechnology.
[182] P. Ronald,et al. Sub1 Rice: Engineering Rice for Climate Change. , 2019, Cold Spring Harbor perspectives in biology.
[183] C. Gutjahr,et al. Systems Biology of Plant-Microbiome Interactions. , 2019, Molecular plant.
[184] R. Varshney,et al. QTLian breeding for climate resilience in cereals: progress and prospects , 2019, Functional & Integrative Genomics.
[185] F. Yasmin,et al. Neglected treasures in the wild - legume wild relatives in food security and human health. , 2019, Current opinion in plant biology.
[186] M. F. Qaseem,et al. Effects of Pre-Anthesis Drought, Heat and Their Combination on the Growth, Yield and Physiology of diverse Wheat (Triticum aestivum L.) Genotypes Varying in Sensitivity to Heat and drought stress , 2019, Scientific Reports.
[187] Jianbing Yan,et al. De Novo Domestication: An Alternative Route toward New Crops for the Future. , 2019, Molecular plant.
[188] Enli Wang,et al. Improving process-based crop models to better capture genotype×environment×management interactions. , 2019, Journal of experimental botany.
[189] Zunfu Lv,et al. Adjusting sowing date and cultivar shift improve maize adaption to climate change in China , 2019, Mitigation and Adaptation Strategies for Global Change.
[190] S. Deutsch,et al. Intersubunit Coupling Enables Fast CO2-Fixation by Reductive Carboxylases , 2019, bioRxiv.
[191] M. Cooper,et al. Accelerating crop genetic gains with genomic selection , 2019, Theoretical and Applied Genetics.
[192] R. Varshney,et al. Haplotype analysis of key genes governing grain yield and quality traits across 3K RG panel reveals scope for the development of tailor‐made rice with enhanced genetic gains , 2019, Plant biotechnology journal.
[193] R. Henry,et al. Exploring and Exploiting Pan-genomics for Crop Improvement. , 2019, Molecular plant.
[194] C. Raines,et al. Feeding the world: improving photosynthetic efficiency for sustainable crop production , 2019, Journal of experimental botany.
[195] Michael P. Pound,et al. Uncovering the hidden half of plants using new advances in root phenotyping , 2019, Current opinion in biotechnology.
[196] Arren Bar-Even,et al. Synthetic biology approaches for improving photosynthesis , 2019, Journal of experimental botany.
[197] Yan Lv,et al. Impact of Climate Change on Crops Adaptation and Strategies to Tackle Its Outcome: A Review , 2019, Plants.
[198] Jian-Kang Zhu,et al. Gene editing in plants: progress and challenges , 2019, National science review.
[199] Donald R. Ort,et al. Synthetic glycolate metabolism pathways stimulate crop growth and productivity in the field , 2019, Science.
[200] Md. Anwar Hossen,et al. Conservation Agriculture for Rice-Based Intensive Cropping by Smallholders in the Eastern Gangetic Plain , 2018, Agriculture.
[201] I. Rao,et al. Source-Sink Relationships in Crop Plants and Their Influence on Yield Development and Nutritional Quality , 2018, Front. Plant Sci..
[202] Julian Taylor,et al. Mapping resistance to Phytophthora root rot identifies independent loci from cultivated (Cicer arietinum L.) and wild (Cicer echinospermum P.H. Davis) chickpea , 2018, Theoretical and Applied Genetics.
[203] M. Tester,et al. Barley yield formation under abiotic stress depends on the interplay between flowering time genes and environmental cues , 2018, bioRxiv.
[204] J. Kruk,et al. Improving photosynthesis, plant productivity and abiotic stress tolerance - current trends and future perspectives. , 2018, Journal of plant physiology.
[205] Jian‐Kang Zhu,et al. Developing naturally stress-resistant crops for a sustainable agriculture , 2018, Nature Plants.
[206] L. Tran,et al. Strigolactones in plant adaptation to abiotic stresses: An emerging avenue of plant research. , 2018, Plant, cell & environment.
[207] S. Kumpatla,et al. Wild Relatives of Maize, Rice, Cotton, and Soybean: Treasure Troves for Tolerance to Biotic and Abiotic Stresses , 2018, Front. Plant Sci..
[208] D. Bertioli,et al. Introgression of wild alleles into the tetraploid peanut crop to improve water use efficiency, earliness and yield , 2018, PloS one.
[209] I. Choi,et al. Draft Genome Sequence of Phosphate-Solubilizing Chryseobacterium sp. Strain ISE14, a Biocontrol and Plant Growth-Promoting Rhizobacterium Isolated from Cucumber , 2018, Genome Announcements.
[210] V. Orsat,et al. Effect of Climate Change on the Yield of Cereal Crops: A Review , 2018 .
[211] O. Dhankher,et al. Climate resilient crops for improving global food security and safety. , 2018, Plant, cell & environment.
[212] D. Zúñiga-Dávila,et al. Draft Genome Sequence of Rhizobium sophoriradicis H4, a Nitrogen-Fixing Bacterium Associated with the Leguminous Plant Phaseolus vulgaris on the Coast of Peru , 2018, Genome Announcements.
[213] W. Powell,et al. Can genomics deliver climate-change ready crops? , 2018, Current opinion in plant biology.
[214] K. Niyogi,et al. Photosystem II Subunit S overexpression increases the efficiency of water use in a field-grown crop , 2018, Nature Communications.
[215] J. Zwiazek,et al. Regulation of aquaporins in plants under stress , 2018, Biological Research.
[216] S. Eigenbrode,et al. Confronting Climate Change Challenges to Dryland Cereal Production: A Call for Collaborative, Transdisciplinary Research, and Producer Engagement , 2018, Front. Ecol. Evol..
[217] Wenqin Wang,et al. Genome Sequencing and Assembly by Long Reads in Plants , 2017, Genes.
[218] G. de los Campos,et al. Genomic Selection in Plant Breeding: Methods, Models, and Perspectives. , 2017, Trends in plant science.
[219] W. Araújo,et al. Engineering photosynthesis: progress and perspectives , 2017, F1000Research.
[220] Andreas Stahl,et al. Exploring and Harnessing Haplotype Diversity to Improve Yield Stability in Crops , 2017, Front. Plant Sci..
[221] C. Lata,et al. Bacillus amyloliquefaciens Confers Tolerance to Various Abiotic Stresses and Modulates Plant Response to Phytohormones through Osmoprotection and Gene Expression Regulation in Rice , 2017, Front. Plant Sci..
[222] T. Pridmore,et al. Plant Phenomics, From Sensors to Knowledge , 2017, Current Biology.
[223] Jenelle A. Patterson,et al. Starch as a source, starch as a sink: the bifunctional role of starch in carbon allocation. , 2017, Journal of experimental botany.
[224] Jianliang Huang,et al. Crop Production under Drought and Heat Stress: Plant Responses and Management Options , 2017, Front. Plant Sci..
[225] P. Ahmad,et al. Plant responses to environmental stresses—from gene to biotechnology , 2017, AoB PLANTS.
[226] Chunyi Zhang,et al. Manipulation of Metabolic Pathways to Develop Vitamin-Enriched Crops for Human Health , 2017, Front. Plant Sci..
[227] M. Bindi,et al. Contribution of Crop Models to Adaptation in Wheat. , 2017, Trends in plant science.
[228] Y. Saranga,et al. Ancestral QTL Alleles from Wild Emmer Wheat Enhance Root Development under Drought in Modern Wheat , 2017, Front. Plant Sci..
[229] Diana Santelia,et al. Starch as a determinant of plant fitness under abiotic stress. , 2017, The New phytologist.
[230] M. Bagavathiannan,et al. Impact of Combined Abiotic and Biotic Stresses on Plant Growth and Avenues for Crop Improvement by Exploiting Physio-morphological Traits , 2017, Front. Plant Sci..
[231] E. Blumwald,et al. Unique Physiological and Transcriptional Shifts under Combinations of Salinity, Drought, and Heat1[OPEN] , 2017, Plant Physiology.
[232] Cristobal Uauy,et al. Genomic innovation for crop improvement , 2017, Nature.
[233] B. Singh,et al. Microbiome and the future for food and nutrient security , 2017, Microbial biotechnology.
[234] T. Erb,et al. A synthetic pathway for the fixation of carbon dioxide in vitro , 2016, Science.
[235] D. Edwards,et al. Advances in genomics for adapting crops to climate change , 2016 .
[236] Francesca Giordano,et al. Oxford Nanopore MinION Sequencing and Genome Assembly , 2016, Genom. Proteom. Bioinform..
[237] V. Walbot,et al. An Agrobacterium‐delivered CRISPR/Cas9 system for high‐frequency targeted mutagenesis in maize , 2016, Plant biotechnology journal.
[238] Iko T. Koevoets,et al. Roots Withstanding their Environment: Exploiting Root System Architecture Responses to Abiotic Stress to Improve Crop Tolerance , 2016, Front. Plant Sci..
[239] Matias D. Zurbriggen,et al. Synthetic strategies for plant signalling studies: molecular toolbox and orthogonal platforms. , 2016, The Plant journal : for cell and molecular biology.
[240] V. Shriram,et al. Phytohormones and their metabolic engineering for abiotic stress tolerance in crop plants , 2016 .
[241] A. Furtado,et al. Genomics of crop wild relatives: expanding the gene pool for crop improvement. , 2016, Plant biotechnology journal.
[242] W. Vriezen,et al. Breeding for plant heat tolerance at vegetative and reproductive stages , 2016, Plant Reproduction.
[243] Kin-Fan Au,et al. PacBio Sequencing and Its Applications , 2015, Genom. Proteom. Bioinform..
[244] A. Paterson,et al. Global agricultural intensification during climate change: a role for genomics , 2015, Plant biotechnology journal.
[245] Rajeev K. Varshney,et al. Application of genomics-assisted breeding for generation of climate resilient crops: progress and prospects , 2015, Front. Plant Sci..
[246] L X Dupuy,et al. Challenges and opportunities for quantifying roots and rhizosphere interactions through imaging and image analysis. , 2015, Plant, cell & environment.
[247] C. Royo,et al. Exploiting genetic diversity from landraces in wheat breeding for adaptation to climate change. , 2015, Journal of experimental botany.
[248] Elison B. Blancaflor,et al. Root Traits and Phenotyping Strategies for Plant Improvement , 2015, Plants.
[249] Tracy Lawson,et al. Multigene manipulation of photosynthetic carbon assimilation increases CO2 fixation and biomass yield in tobacco , 2015, Journal of experimental botany.
[250] T. Michael,et al. Progress, challenges and the future of crop genomes. , 2015, Current opinion in plant biology.
[251] S. Long,et al. Meeting the Global Food Demand of the Future by Engineering Crop Photosynthesis and Yield Potential , 2015, Cell.
[252] H. Robinson,et al. A modular gene targeting system for sequential transgene stacking in plants. , 2015, Journal of biotechnology.
[253] K. Shinozaki,et al. The transcriptional regulatory network in the drought response and its crosstalk in abiotic stress responses including drought, cold, and heat , 2014, Front. Plant Sci..
[254] G. Hammer,et al. Characterizing drought stress and trait influence on maize yield under current and future conditions , 2014, Global change biology.
[255] J. R. Evans. Improving Photosynthesis , 2013, Plant Physiology.
[256] J. Foley,et al. Yield Trends Are Insufficient to Double Global Crop Production by 2050 , 2013, PloS one.
[257] P. Visscher,et al. Pitfalls of predicting complex traits from SNPs , 2013, Nature Reviews Genetics.
[258] Shiyi Zhou,et al. Overexpression of the Wheat Aquaporin Gene, TaAQP7, Enhances Drought Tolerance in Transgenic Tobacco , 2012, PloS one.
[259] E. Blumwald,et al. Targeting metabolic pathways for genetic engineering abiotic stress-tolerance in crops. , 2012, Biochimica et biophysica acta.
[260] Jukon Kim,et al. Root-Specific Expression of OsNAC10 Improves Drought Tolerance and Grain Yield in Rice under Field Drought Conditions1[W][OA] , 2010, Plant Physiology.
[261] V. Brecht,et al. Carboxylation mechanism and stereochemistry of crotonyl-CoA carboxylase/reductase, a carboxylating enoyl-thioester reductase , 2009, Proceedings of the National Academy of Sciences.
[262] Dhu Hemathilake,et al. Agricultural productivity and food supply to meet increased demands , 2022, Future Foods.
[263] S. Ceccarelli,et al. Advanced analytics, phenomics and biotechnology approaches to enhance genetic gains in plant breeding , 2020 .
[264] R. Henry,et al. Crop wild relatives as a genetic resource for generating low-cyanide, drought-tolerant Sorghum , 2020 .
[265] E. Ruíz-May,et al. Inspection of Crop Wild Relative (Cicer microphyllum) as Potential Genetic Resource in Transgenic Development , 2019, Advances in Plant Transgenics: Methods and Applications.
[266] Shruti Sinha,et al. Status and Prospects of Next Generation Sequencing Technologies in Crop Plants. , 2018, Current issues in molecular biology.
[267] J. Batley,et al. Speed breeding: a powerful tool to accelerate crop research and breeding , 2017, bioRxiv.
[268] M. Pontin,et al. Azospirillum brasilense ameliorates the response of Arabidopsis thaliana to drought mainly via enhancement of ABA levels. , 2015, Physiologia plantarum.
[269] Jukon Kim,et al. OsNAC5 overexpression enlarges root diameter in rice plants leading to enhanced drought tolerance and increased grain yield in the field. , 2013, Plant biotechnology journal.
[270] Jianhua Zhang,et al. Abscisic acid accumulation modulates auxin transport in the root tip to enhance proton secretion for maintaining root growth under moderate water stress. , 2013, The New phytologist.
[271] Mark E. Cooper,et al. Modelling Crop Improvement in a G×E×M Framework via Gene–Trait–Phenotype Relationships , 2009 .