Responses of two asian pear rootstocks (Pyrus spp.) to Fe-deficiency chlorosis induced by addition of bicarbonate to nutrient solution
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Yuanwen Teng | A. Itai | F. Tamura | Chunhui Ma | J. Chun | K. Tanabe
[1] K. Mengel,et al. Bicarbonate, the most important factor inducing iron chlorosis in vine grapes on calcareous soil , 1984, Plant and Soil.
[2] R. Boxma. Bicarbonate as the most important soil factor in lime-induced chlorosis in the Netherlands , 1972, Plant and Soil.
[3] E. Alcántara,et al. A comparison of ferric-chelate reductase and chlorophyll and growth ratios as indices of selection of quince, pear and olive genotypes under iron deficiency stress , 2002, Plant and Soil.
[4] V. Römheld,et al. Strategies of plants for acquisition of iron , 1994, Plant and Soil.
[5] W. Brüggemann,et al. Iron reductase systems on the plant plasma membrane—A review , 2004, Plant and Soil.
[6] S. R. Cianzio. Recent advances in breeding for improving iron utilization by plants , 2004, Plant and Soil.
[7] E. Alcántara,et al. Selection of olive varieties for tolerance to iron chlorosis. , 2003, Journal of plant physiology.
[8] J. Abadía,et al. RESPONSES OF “NEWHALL” ORANGE TREES TO IRON DEFICIENCY IN HYDROPONICS: EFFECTS ON LEAF CHLOROPHYLL, PHOTOSYNTHETIC EFFICIENCY, AND ROOT FERRIC CHELATE REDUCTASE ACTIVITY , 2001 .
[9] A. Rombolà,et al. Iron deficiency and chlorosis in orchard and vineyard ecosystems , 2001 .
[10] R. Kastori,et al. Effect of bicarbonate and Fe supply on Fe nutrition of grapevine , 2000 .
[11] A. Rombolà,et al. In vitro performance at high culture pH and in vivo responses to Fe-deficiency of leaf-derived quince BA 29 (Cydonia oblonga)somaclones regenerated at variable medium pH , 2000 .
[12] Ramon Dolcet-Sanjuan,et al. Responses of Two Somaclonal Variants of Quince (Cydonia oblonga) to Iron Deficiency in the Greenhouse and Field , 1996 .
[13] A. Rombolà,et al. Response to iron‐deficiency stress of pear and quince genotypes 1 , 1995 .
[14] F. Cinelli. Physiological responses of clonal quince rootstocks to iron-deficiency induced by addition of bicarbonate to nutrient solution , 1995 .
[15] W. Brüggemann,et al. Iron reductase systems on the plant plasma membrane-A review , 1994 .
[16] J. Abadía,et al. Iron chlorosis in the Ebro River basin, Spain , 1992 .
[17] R. Chaney,et al. Screening chickpea for iron chlorosis resistance using bicarbonate in nutrient solution to simulate calcareous soils , 1992 .
[18] K. Schaller,et al. Effect of bicarbonate and phosphate on iron‐chlorosis of grape‐vines with special regard to the susceptibiliy of the rootstocks. I. field experiments , 1987 .
[19] H. Bienfait,et al. Free space iron pools in roots: generation and mobilization. , 1985, Plant physiology.
[20] R. Chaney. Diagnostic practices to identify iron deficiency in higher plants , 1984 .
[21] E. Landsberg. Organic acid synthesis and release of hydrogen ions in response to Fe deficiency stress of mono‐ and dicotyledonous plant species , 1981 .
[22] D. Thorne,et al. Nutrient deficiencies in Utah orchards. , 1950 .