T. H. H. Chen (Editor), M. Uemura (Editor), S. Fujikawa's Cold Hardiness in Plants: Molecular Genetics, Cell Biology PDF

By T. H. H. Chen (Editor), M. Uemura (Editor), S. Fujikawa (Editor)

ISBN-10: 0851990592

ISBN-13: 9780851990590

ISBN-10: 1845930118

ISBN-13: 9781845930110

In keeping with papers from the seventh overseas Plant chilly Hardiness Seminar held in Japan in 2004, this booklet offers the newest learn findings on plant freezing and chilling rigidity from significant laboratories all over the world. The chapters specialize in a number of points of molecular genetics and the usage of transgenic crops to additional our figuring out of plant chilly hardiness on the molecular point. subject matters lined comprise: vernalization genes in iciness cereals; worldwide research of gene networks to resolve complicated abiotic tension responses; regulate of development and chilly acclimation in silver birch; and the impression of Plasma Membrane-associated Proteins on Acquisition of Freezing Tolerance in Arabidopsis thaliana.

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Extra info for Cold Hardiness in Plants: Molecular Genetics, Cell Biology and Physiology (Cabi Publishing)

Sample text

Monocot CBF phylogenetic relationships. A minimum evolution phylogenetic tree was derived from an alignment of the monocot CBF polypeptides; an identical tree topology was obtained utilizing the neighbour joining function on the same alignment. For HvCBF8 members, theoretical polypeptide sequences were generated that account for the pseudogene-based frameshifts (see text). HvCBF4A and HvCBF4B encode identical polypeptides; only HvCBF4A is shown. OsDREB2A is a closely related monocot AP2 domain-containing protein that lacks the flanking CBF signature sequences.

J. F. (2004) Freezing-sensitive tomato has a functional CBF cold response pathway, but a CBF regulon that differs from that of freezing-tolerant Arabidopsis. Plant Journal 39, 905–919. M. A. (2004) An Arabidopsis homeodomain transcription factor gene, HOS9, mediates cold tolerance through a CBF-independent pathway. Proceedings of the National Academy of Sciences USA 101, 9873–9878. S. SKINNER,1,2,* J. VON ZITZEWITZ,2 L. MARQUEZ-CEDILLO,2 T. FILICHKIN,2 P. SZU″CS,3 K. J. F. H. M. HAYES2 1 Department of Horticulture, College of Agriculture, Oregon State University, Corvallis, OR 97331, USA; 2Department of Crop and Soil Science, College of Agriculture, Oregon State University, Corvallis, OR 97331, USA; 3Agricultural Research Institute of the Hungarian Academy of Sciences, H-2462 Martonvásár, Hungary; 4Department of Crop and Soil Sciences, Michigan State University, East Lansing, MI 48824, USA; 5Department of Horticulture and Crop Science, The Ohio State University/OARDC, Wooster, OH 44691, USA Introduction Low-temperature tolerance within the Triticeae Plants display a broad capacity range to survive cold and freezing conditions (Thomashow, 1999).

G. , 2000). , 2004). We have found that this population shows significant phenotypic variation for LT tolerance, but there is no QTL on 5H; additional efforts to localize the LT-tolerance QTL are currently in progress. The principal objective is to determine whether allelic variation at CBF loci is responsible for genetic variation in the cold tolerance of barley. Towards this end, we assessed the CBF gene family size and complexity, genome distribution and relationship with known Triticeae LT-tolerance QTLs in barley.

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Cold Hardiness in Plants: Molecular Genetics, Cell Biology and Physiology (Cabi Publishing) by T. H. H. Chen (Editor), M. Uemura (Editor), S. Fujikawa (Editor)


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