Physiological changes and DREB1s expression profiles of tall fescue in response to freezing stress
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[1] G. Brazauskas,et al. Adaptability and phenotypic stability of Lolium perenne L. cultivars of diverse origin grown at the margin of the species distribution , 2018 .
[2] A. Kosmala,et al. Insight into cellular proteome of Lolium multiflorum/Festuca arundinacea introgression forms to decipher crucial mechanisms of cold acclimation in forage grasses. , 2018, Plant Science.
[3] Md. Rabiul Islam,et al. Transcriptomic profiling of tall fescue in response to heat stress and improved thermotolerance by melatonin and 24-epibrassinolide , 2018, BMC Genomics.
[4] X. Tao,et al. Identification and Expression Profile of CYPome in Perennial Ryegrass and Tall Fescue in Response to Temperature Stress , 2017, Front. Plant Sci..
[5] A. Kosmala,et al. Abiotic stresses influence the transcript abundance of PIP and TIP aquaporins in Festuca species , 2017, Journal of Applied Genetics.
[6] Jian‐Kang Zhu. Abiotic Stress Signaling and Responses in Plants , 2016, Cell.
[7] B. Jurczyk,et al. Enhanced expression of Rubisco activase splicing variants differentially affects Rubisco activity during low temperature treatment in Lolium perenne. , 2016, Journal of plant physiology.
[8] R. Qu,et al. Expression of the shrimp antimicrobial peptide penaeidin 4-1 confers resistance against brown patch disease in tall fescue , 2016, Plant Cell, Tissue and Organ Culture (PCTOC).
[9] Zhulong Chan,et al. Exogenous application of ABA mimic 1 (AM1) improves cold stress tolerance in bermudagrass (Cynodon dactylon) , 2016, Plant Cell, Tissue and Organ Culture (PCTOC).
[10] Mallikarjuna Rao Kovi,et al. Population Structure, Genetic Variation, and Linkage Disequilibrium in Perennial Ryegrass Populations Divergently Selected for Freezing Tolerance , 2015, Front. Plant Sci..
[11] K. Jonavičienė,et al. Changes in Lolium perenne transcriptome during cold acclimation in two genotypes adapted to different climatic conditions , 2015, BMC Plant Biology.
[12] Zhenlin Du,et al. Global Transcriptome Profiles of 'Meyer' Zoysiagrass in Response to Cold Stress , 2015, PloS one.
[13] P. M. Pijut,et al. Candidate gene association mapping for winter survival and spring regrowth in perennial ryegrass. , 2015, Plant science : an international journal of experimental plant biology.
[14] A. Kosmala,et al. Metabolite profiling during cold acclimation of Lolium perenne genotypes distinct in the level of frost tolerance , 2015, Journal of Applied Genetics.
[15] E. Nevo,et al. An RNA sequencing transcriptome analysis of the high-temperature stressed tall fescue reveals novel insights into plant thermotolerance , 2014, BMC Genomics.
[16] C. Paina,et al. Vernalization Mediated Changes in the Lolium perenne Transcriptome , 2014, PloS one.
[17] Pingfang Yang,et al. The Cysteine2/Histidine2-Type Transcription Factor ZINC FINGER OF ARABIDOPSIS THALIANA6 Modulates Biotic and Abiotic Stress Responses by Activating Salicylic Acid-Related Genes and C-REPEAT-BINDING FACTOR Genes in Arabidopsis1[C][W] , 2014, Plant Physiology.
[18] B. S. Bushman,et al. Association of Freezing Tolerance to LpCBFIIIb and LpCBFIIIc Gene Polymorphism in Perennial Ryegrass Accessions , 2012 .
[19] B. Jurczyk,et al. The effects of cold, light and time of day during low-temperature shift on the expression of CBF6, FpCor14b and LOS2 in Festuca pratensis. , 2012, Plant science : an international journal of experimental plant biology.
[20] B. Jurczyk,et al. Differences in leaf proteome response to cold acclimation between Lolium perenne plants with distinct levels of frost tolerance. , 2011, Journal of plant physiology.
[21] C. Busso,et al. QTL analyses and comparative genetic mapping of frost tolerance, winter survival and drought tolerance in meadow fescue (Festuca pratensis Huds.) , 2011, Theoretical and Applied Genetics.
[22] Eva M Farré,et al. CIRCADIAN CLOCK-ASSOCIATED 1 and LATE ELONGATED HYPOCOTYL regulate expression of the C-REPEAT BINDING FACTOR (CBF) pathway in Arabidopsis , 2011, Proceedings of the National Academy of Sciences.
[23] E. Watkins,et al. Physiological changes during cold acclimation of perennial ryegrass accessions differing in freeze tolerance. , 2010 .
[24] Zbigniew Zwierzykowski,et al. Identification of leaf proteins differentially accumulated during cold acclimation between Festuca pratensis plants with distinct levels of frost tolerance. , 2009, Journal of experimental botany.
[25] Colleen J. Doherty,et al. Roles for Arabidopsis CAMTA Transcription Factors in Cold-Regulated Gene Expression and Freezing Tolerance[W][OA] , 2009, The Plant Cell Online.
[26] D. Wyse,et al. Freezing tolerance of selected perennial ryegrass (Lolium perenne L.) accessions and its association with field winterhardiness and turf traits , 2008, Euphytica.
[27] S. Jurkonienė,et al. Changes in plasmalemma K+Mg2+ -ATPase dephosphorylating activity and H+ transport in relation to seasonal growth and freezing tolerance of Festuca pratensis Huds. , 2008, Journal of plant physiology.
[28] G. May,et al. Analysis of tall fescue ESTs representing different abiotic stresses, tissue types and developmental stages , 2008, BMC Plant Biology.
[29] A. Kosmala,et al. Introgression mapping of genes for winter hardiness and frost tolerance transferred from Festuca arundinacea into Lolium multiflorum. , 2007, The Journal of heredity.
[30] Aaron J. Patton,et al. Zoysiagrass Species and Genotypes Differ in Their Winter Injury and Freeze Tolerance , 2007 .
[31] A. Kosmala,et al. GISH/FISH mapping of genes for freezing tolerance transferred from Festuca pratensis to Lolium multiflorum , 2006, Heredity.
[32] Shiyou Lü,et al. Isolation and identification of a cold-inducible gene encoding a putative DRE-binding transcription factor from Festuca arundinacea. , 2005, Plant physiology and biochemistry : PPB.
[33] Yuanlei Hu,et al. Transgenic tall fescue containing the Agrobacterium tumefaciens ipt gene shows enhanced cold tolerance , 2005, Plant Cell Reports.
[34] Jian-Kang Zhu,et al. ICE1: a regulator of cold-induced transcriptome and freezing tolerance in Arabidopsis. , 2003, Genes & development.
[35] C. Taliaferro,et al. Freeze Tolerance of bermudagrasses , 2002 .
[36] R. Morcuende,et al. Contrasting responses of photosynthesis and carbon metabolism to low temperatures in tall fescue and clovers. , 2001, Physiologia plantarum.
[37] E. Stockinger,et al. Low temperature regulation of the Arabidopsis CBF family of AP2 transcriptional activators as an early step in cold-induced COR gene expression. , 1998, The Plant journal : for cell and molecular biology.
[38] E. Fallahi,et al. Limitations of Photosynthesis in Lolium perenne after Chilling , 1990 .
[39] Tianzi Chen,et al. Correction notice: Measurements of Proline and Malondialdehyde Contents and Antioxidant Enzyme Activities in Leaves of Drought Stressed Cotton , 2023, BIO-PROTOCOL.
[40] O. Rognli,et al. Identification of candidate genes important for frost tolerance in Festuca pratensis Huds. by transcriptional profiling. , 2011, Plant science : an international journal of experimental plant biology.
[41] A. Kosmala,et al. Chromosome pairing in triploid intergeneric hybrids ofFestuca pratensis withLolium multiflorum, revealed by GISH , 2010, Journal of Applied Genetics.
[42] Wei Tang,et al. Heterologous expression of the Arabidopsis DREB1A/CBF3 gene enhances drought and freezing tolerance in transgenic Lolium perenne plants , 2010, Plant Biotechnology Reports.
[43] C. Xiaoli,et al. Evaluation of low-temperature tolerance of zoysia grass. , 2009 .
[44] S. Askew,et al. Influence of late-season iron, nitrogen, and seaweed extract on fall color retention and cold tolerance of four bermudagrass cultivars , 2006 .