Genome Scan of Rice Landrace Populations Collected Across Time Revealed Climate Changes’ Selective Footprints in the Genes Network Regulating Flowering Time
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J. Frouin | N. Ahmadi | M. B. Barry | Miguel de Navascués | Julien Frouin | Nourollah Ahmadi | Mamadou Billo Barry | Miguel de Navascués | Mamadou Aminata Toure | M. Toure
[1] B. Gaut,et al. The evolutionary genomics of species’ responses to climate change , 2021, Nature Ecology & Evolution.
[2] E. Álvarez-Buylla,et al. Beyond the Genetic Pathways, Flowering Regulation Complexity in Arabidopsis thaliana , 2021, International journal of molecular sciences.
[3] A. Cortés,et al. Harnessing Crop Wild Diversity for Climate Change Adaptation , 2021, Genes.
[4] Haiyang Liu,et al. OsPRR37 Alternatively Promotes Heading Date Through Suppressing the Expression of Ghd7 in the Japonica Variety Zhonghua 11 under Natural Long-Day Conditions , 2021, Rice.
[5] R. Snowdon,et al. Crop adaptation to climate change as a consequence of long-term breeding , 2020, Theoretical and Applied Genetics.
[6] Xuan Ma,et al. Characterization and identification of OsFTL8 gene in rice , 2020, Plant Biotechnology Reports.
[7] Yufeng Wu,et al. OsSYL2 AA, an allele identified by gene‐based association, increases style length in rice (Oryza sativa L.) , 2020, The Plant journal : for cell and molecular biology.
[8] M. Navascués,et al. Evolution of flowering time in a selfing annual plant: Roles of adaptation and genetic drift , 2020, bioRxiv.
[9] S. Footitt,et al. Changes in phenological events in response to a global warming scenario reveal greater adaptability of winter annual compared with summer annual arabidopsis ecotypes , 2020, Annals of botany.
[10] M. Cruzan,et al. Landscape Genetics of Plants: Challenges and Opportunities , 2020, Plant communications.
[11] Hua Wei,et al. Molecular basis of heading date control in rice , 2020, aBIOTECH.
[12] M. Navascués,et al. Power and limits of selection genome scans on temporal data from a selfing population , 2020, bioRxiv.
[13] Xianran Li,et al. Dynamic effects of interacting genes underlying rice flowering-time phenotypic plasticity and global adaptation , 2020, Genome research.
[14] J. Prevéy. Climate Change: Flowering Time May Be Shifting in Surprising Ways , 2020, Current Biology.
[15] P. Bhalla,et al. High Temperature Susceptibility of Sexual Reproduction in Crop Plants. , 2020, Journal of experimental botany.
[16] Jianhua Zhang,et al. Involvement of OsGF14b Adaptation in the Drought Resistance of Rice Plants , 2019, Rice.
[17] C. Tovar,et al. Potential adaptive strategies for 29 sub-Saharan crops under future climate change , 2019, Nature Climate Change.
[18] T. Iizumi,et al. Evidence of crop production losses in West Africa due to historical global warming in two crop models , 2019, Scientific Reports.
[19] Changkui Guo,et al. Crop Pollen Development under Drought: From the Phenotype to the Mechanism , 2019, International journal of molecular sciences.
[20] A. Challinor,et al. Emergence of robust precipitation changes across crop production areas in the 21st century , 2019, Proceedings of the National Academy of Sciences.
[21] Meiru Li,et al. Overexpression of OsFTL10 induces early flowering and improves drought tolerance in Oryza sativa L. , 2019, PeerJ.
[22] M. Kelly. Adaptation to climate change through genetic accommodation and assimilation of plastic phenotypes , 2019, Philosophical Transactions of the Royal Society B.
[23] Anushya Muruganujan,et al. PANTHER version 14: more genomes, a new PANTHER GO-slim and improvements in enrichment analysis tools , 2018, Nucleic Acids Res..
[24] Suman Ranjan Sensarma,et al. Sustainable Solutions for Food Security: Combating Climate Change by Adaptation , 2019 .
[25] D. Watson. Adaption to Climate Change: Climate Adaptive Breeding of Maize, Wheat and Rice , 2019, Sustainable Solutions for Food Security.
[26] Yanzhong Yang,et al. Arginine methylation of the C-terminus RGG motif promotes TOP3B topoisomerase activity and stress granule localization , 2018, Nucleic acids research.
[27] C. Müller,et al. Temperature increase reduces global yields of major crops in four independent estimates , 2017, Proceedings of the National Academy of Sciences.
[28] Jianliang Huang,et al. Crop Production under Drought and Heat Stress: Plant Responses and Management Options , 2017, Front. Plant Sci..
[29] S. Glémin,et al. The Evolutionary Interplay between Adaptation and Self-Fertilization , 2017, Trends in genetics : TIG.
[30] Zhou Du,et al. agriGO v2.0: a GO analysis toolkit for the agricultural community, 2017 update , 2017, Nucleic Acids Res..
[31] H. Bencherif,et al. Climatology of Guinea: Study of Climate Variability in N’zerekore , 2017 .
[32] J. Hermisson,et al. Soft sweeps and beyond: Understanding the patterns and probabilities of selection footprints under rapid adaptation , 2017, bioRxiv.
[33] Y. Vigouroux,et al. Genome scan reveals selection acting on genes linked to stress response in wild pearl millet , 2016, Molecular ecology.
[34] S. Brady,et al. Plant developmental responses to climate change. , 2016, Developmental biology.
[35] Hildegard Uecker. Evolutionary rescue in randomly mating, selfing, and clonal populations , 2016, bioRxiv.
[36] Kyle A. Emery,et al. Meeting future food demand with current agricultural resources , 2016 .
[37] T. Bataillon,et al. Can the experimental evolution programme help us elucidate the genetic basis of adaptation in nature? , 2015, Molecular ecology.
[38] Haiyang Wang,et al. Days to heading 7, a major quantitative locus determining photoperiod sensitivity and regional adaptation in rice , 2014, Proceedings of the National Academy of Sciences.
[39] Xiaoyun Liu,et al. The rice enhancer of zeste [E(z)] genes SDG711 and SDG718 are respectively involved in long day and short day signaling to mediate the accurate photoperiod control of flowering time , 2014, Front. Plant Sci..
[40] S. Aitken,et al. Evolutionary and plastic responses to climate change in terrestrial plant populations , 2013, Evolutionary applications.
[41] Philipp W. Messer,et al. Population genomics of rapid adaptation by soft selective sweeps. , 2013, Trends in ecology & evolution.
[42] N. Ahmadi,et al. Déterminants de la diversité variétale du riz dans la région de Vakinankaratra (Madagascar) , 2013 .
[43] Q. Qian,et al. LC2 and OsVIL2 promote rice flowering by photoperoid-induced epigenetic silencing of OsLF. , 2013, Molecular plant.
[44] Miklós Bálint,et al. The impact of global climate change on genetic diversity within populations and species , 2013, Molecular ecology.
[45] A. Hoffmann,et al. Genetics of climate change adaptation. , 2012, Annual review of genetics.
[46] P. Traoré,et al. Breeding Strategies for Adaptation of Pearl Millet and Sorghum to Climate Variability and Change in West Africa. , 2012 .
[47] Isabelle Olivieri,et al. Monitoring adaptive genetic responses to environmental change , 2012, Molecular ecology.
[48] N. Scarcelli,et al. Correlated response in plasticity to selection for early flowering in Arabidopsis thaliana , 2011, Journal of evolutionary biology.
[49] T. Mitchell-Olds,et al. Evolutionary genetics of plant adaptation. , 2011, Trends in genetics : TIG.
[50] M. Hirai,et al. Os-GIGANTEA Confers Robust Diurnal Rhythms on the Global Transcriptome of Rice in the Field[C][W][OA] , 2011, Plant Cell.
[51] R. Ishikawa,et al. Phytochrome B regulates Heading date 1 (Hd1)-mediated expression of rice florigen Hd3a and critical day length in rice , 2011, Molecular Genetics and Genomics.
[52] A. Hoffmann,et al. Climate change and evolutionary adaptation , 2011, Nature.
[53] J. Riechmann,et al. Gene networks controlling the initiation of flower development. , 2010, Trends in genetics : TIG.
[54] L. Excoffier,et al. Arlequin suite ver 3.5: a new series of programs to perform population genetics analyses under Linux and Windows , 2010, Molecular ecology resources.
[55] C. Field,et al. The velocity of climate change , 2009, Nature.
[56] L. Excoffier,et al. Detecting loci under selection in a hierarchically structured population , 2009, Heredity.
[57] W. Peacock,et al. Expression, imprinting, and evolution of rice homologs of the polycomb group genes. , 2009, Molecular plant.
[58] N. Ahmadi,et al. Recent changes in varietal diversity of rice in Guinea , 2009, Plant Genetic Resources.
[59] Hiroyuki Tsuji,et al. The 14-3-3 protein GF14c acts as a negative regulator of flowering in rice by interacting with the florigen Hd3a. , 2009, Plant & cell physiology.
[60] S. Franks,et al. A change in climate causes rapid evolution of multiple life‐history traits and their interactions in an annual plant , 2008, Journal of evolutionary biology.
[61] A. Hoffmann,et al. Detecting genetic responses to environmental change , 2008, Nature Reviews Genetics.
[62] Richard B Primack,et al. Global warming and flowering times in Thoreau's Concord: a community perspective. , 2008, Ecology.
[63] T. Reusch,et al. Molecular ecology of global change , 2007, Molecular ecology.
[64] Edward S. Buckler,et al. TASSEL: software for association mapping of complex traits in diverse samples , 2007, Bioinform..
[65] B. Courtois,et al. Implications for in situ genetic resource conservation from the ecogeographical distribution of rice genetic diversity in Maritime Guinea , 2007, Plant Genetic Resources.
[66] B. Courtois,et al. Rice genetic diversity at farm and village levels and genetic structure of local varieties reveal need for in situ conservation , 2007, Genetic Resources and Crop Evolution.
[67] T. Tanabata,et al. Involvement of rice cryptochromes in de-etiolation responses and flowering. , 2006, Plant & cell physiology.
[68] T. Ishizuka,et al. Distinct and Cooperative Functions of Phytochromes A, B, and C in the Control of Deetiolation and Flowering in Rice[W][OA] , 2005, The Plant Cell Online.
[69] H. A. Orr,et al. The genetic theory of adaptation: a brief history , 2005, Nature Reviews Genetics.
[70] T. Mizuno,et al. Circadian-Associated Rice Pseudo Response Regulators (OsPRRs): Insight into the Control of Flowering Time , 2005, Bioscience, biotechnology, and biochemistry.
[71] T. Bataillon,et al. On the Distribution of Temporal Variations in Allele Frequency , 2004, Genetics.
[72] Hilde van der Togt,et al. Publisher's Note , 2003, J. Netw. Comput. Appl..
[73] H. A. Orr,et al. THE POPULATION GENETICS OF ADAPTATION: THE ADAPTATION OF DNA SEQUENCES , 2002, Evolution; international journal of organic evolution.
[74] G. Coupland,et al. Control of flowering time: interacting pathways as a basis for diversity. , 2002, The Plant cell.
[75] M. T. Jackson,et al. Genetic conservation: a role for rice farmers , 2000 .
[76] Nigel Maxted,et al. Plant Genetic Conservation: The in situ approach , 1997 .
[77] M. Beaumont,et al. Evaluating loci for use in the genetic analysis of population structure , 1996, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[78] G. Khush. Modern varieties — Their real contribution to food supply and equity , 1995 .
[79] R. Hay,et al. Harvest index: a review of its use in plant breeding and crop physiology , 1995 .
[80] B. Charlesworth. Evolutionary Rates in Partially Self-Fertilizing Species , 1992, The American Naturalist.
[81] B. Weir,et al. ESTIMATING F‐STATISTICS FOR THE ANALYSIS OF POPULATION STRUCTURE , 1984, Evolution; international journal of organic evolution.
[82] Peter J. Lamb,et al. Persistence of Subsaharan drought , 1982, Nature.
[83] R. Lande. STATISTICAL TESTS FOR NATURAL SELECTION ON QUANTITATIVE CHARACTERS , 1977, Evolution; international journal of organic evolution.
[84] J. M. Smith,et al. The hitch-hiking effect of a favourable gene. , 1974, Genetical research.
[85] H. Oka,et al. VARIATIONS IN THE BREEDING SYSTEMS OF A WILD RICE, ORYZA PERENNIS , 1967, Evolution; international journal of organic evolution.
[86] S. Wright. THE INTERPRETATION OF POPULATION STRUCTURE BY F‐STATISTICS WITH SPECIAL REGARD TO SYSTEMS OF MATING , 1965 .
[87] P. Sahadevan,et al. Natural crossing in rice , 1963, Proceedings / Indian Academy of Sciences.