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Medicago

Reaney, M.J.T. Gusta, L.V. (1987). Factors influencing the induction of freezing tolerance by abscisic acid in cell suspension cultures of Bromus inermis Leyss and Medicago sativa L. Plant Physiology, 83, 423-7. [Pg.195]

Medicago sativa Not fully determined. Lethal genetic changes after long-term culture (3)... [Pg.230]

Miller, G. et al.. Responsive modes of Medicago sativa proline dehydrogenase genes during salt stress and recovery dictate free proline accumulation, Planta, 222, 70, 2005. [Pg.295]

Tetrahydroxyflavone Luteolin Seed extract Medicago saliva S. meliloli... [Pg.9]

M. J. Harrison and R. A. Dixon, Isoflavonoids accumulation and expression of defense gene transcripts during the establi.shment of vesicular-arbuscular mycorrhizal associations in roots of Medicago truncatula. Mol. Plant-Microbe Interact. 6 ... [Pg.290]

H. Liu, A. T. Trieu, L. A. Blaylock, and M. J. Harrison, Cloning and characterization of two phosphate transporters from Medicago truncatula roots Regulation in response to phosphate and to colonization by arbuscular mycorrhizal fungi. Mol. Plant-Microbe Interact. 11 A (1998). [Pg.294]

A. Hartmann, J. J. Giraud, and G. Catroux, Genotypic diversity of Sinorhizobinm (formerly Rhizobium) meliloti strains i.solated directly from a soil and from nodules of alfalfa (Medicago sativa) grown in the same. soil. FEMS Microbiol. Ecol. 25 107-116 (1998). [Pg.324]

E. S. P. Bromfield, L. R. Barran, and R. Weathcroft, Relative genetic structure of a population of Rhizobium meliloti isolated directly from soil and from nodules of alfalfa (Medicago. sativa) and sweet clover (Melilotus alba). Mol. Ecol. 4 183-188 (1995). [Pg.324]

D. Paffetti, C. Scotti, S. Gnocchi, S. Fancelli, and M. Bazzicalupo, Genetic diversity of an italian Rhizobium meliloti population from different Medicago sativa varieties. Appl. Environ. Microbiol. 62 2279-2285 (1996). [Pg.326]

N level Barley, lucerne Medicago saliva), meadow fes- 93... [Pg.382]

Lohse, S., W. Schliemann et al. (2005). Organization and metabolism of plastids and mitochondria in arbuscu-lar mycorrhizal roots of Medicago truncatula. Plant Physiol. 139(1) 329-340. [Pg.413]

The amino acid composition of storage proteins differs from that of the complete sprout [12, 13]. At least in the case of oilseed rape, alfalfa (Medicago sativa L.) and Camelina sativa, amino acids in the sprout are used mainly, either directly or indirectly, for the synthesis of the Rubisco proteins. Computer analysis shows that the amino acid composition of cruciferin and napin is completely different to the amino acid composition of Rubisco. This indicates that amino acids released from the seed storage proteins must be converted into other amino acids prior to Rubisco synthesis. [Pg.41]

Alfalfa (Medicago sativa) >1 Gene Bank accession. no. AF056313 McKersie etal, unpublished data... [Pg.44]

This work was supported by CNRS (UMR 6037 and GDR 2590), University of Rouen, Region Haute Normandie, IFRMP23 and Medicago Inc. [Pg.248]


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Alfalfa, Medicago

Alfalfa, Medicago sativa

Genome Medicago truncatula

Medicago Inc

Medicago falcata

Medicago hispida

Medicago lupulina

Medicago media

Medicago polymorpha

Medicago ruthenica

Medicago saliva

Medicago sativa

Medicago sativa L.

Medicago scutellata

Medicago seedlings

Medicago spp

Medicago truncatula

Plant genomes Medicago

Triticum medicago

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