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REFERENCES
Aloni, R., Aloni, E., Langhans, M., & Ullrich, C.I. (2005). Role of auxin in regulating Arabi-
dopsis flower development. Planta , 223 , 315-328.
Alvarez, J., & Smyth, D.R. (1999). CRABS CLAW and SPATULA , two Arabidopsis genes that
control carpel development in parallel with AGAMOUS . Development , 126 , 2377-86.
Alvarez, M.E., Pennell, R.I., Meijer, P.J., Ishikawa, A., Dixon, R.A., & Lamb, C. (1998).
Reactive oxygen intermediates mediate a systemic signal network in the establishment of
plant immunity. Cell , 92 , 773-784.
Bargoni, N. (1972a). Anaerobic glycolysis in the nectary of Convulvulus sepium . Bollettino-
Societa Italiana di Biologia Sperimentale , 48 , 1157-1159.
Bargoni, N. (1972b). Synthesis of sucrose in the nectary of Convolvulus sepium . Bollettino-
Societa Italiana di Biologia Sperimentale , 48 , 1159-1156.
Baum, S.F., Eshed, Y., & Bowman, J.L. (2001). The Arabidopsis nectary is an ABC-
independent floral structure. Development , 128 , 4657-4667.
Beck, E., & Ziegler, P. (1989). Biosynthesis and degradation of starch in higher plants. An-
nual Review of Plant Physiology and Plant Molecular Biology , 40 , 95-117.
Bell, J., Ryder, T., Wingate, V., Bailey, J., & Lamb, C. (1986). Differential accumulation of
plant defense gene transcripts in a compatible and an incompatible plant-pathogen interac-
tion. Molecular and Cellular Biology , 6 , 1615-1623.
Bieleski, R.L., & Redgwell, R.J. (1980). Sorbitol metabolism in nectaries from flowers of
Rosaceae. Australian Journal of Plant Physiology , 7 , 15-25.
Bosia, A., & Pescarmona, G.P. (1972). Substrate levels and regulation of glycolysis in the
nectary of Convulvulus sepium . Bollettino-Societa Italiana di Biologia Sperimentale , 48 ,
1200-1201.
Bowman, J.L., & Smyth, D.R. (1999). CRABS CLAW , a gene that regulates carpel and nectary
development in Arabidopsis , encodes a novel protein with zinc finger and helix-loop-helix
domains. Development , 126 , 2387-2396.
Bryant, J., Green, T.R., Gurusaddaiah, T., & Ryan, C.A. (1976). Proteinase inhibitor II from
potatoes: isolation and characterization of its protomer components. Biochemistry , 15 ,
3418-3424.
Búrquez, A., & Corbet, S.A. (1991). Do flowers reabsorb nectar? Functional Ecology , 5 , 369-
379.
Carter, C., Graham, R., & Thornburg, R.W. (1999). Nectarin I is a novel, soluble germin-like
protein expressed in the nectar of Nicotiana sp. Plant Molecular Biology , 41 , 207-216.
Carter, C., & Thornburg, R.W. (2000). Tobacco Nectarin I: purification and characterization
as a germin-like, manganese superoxide dismutase implicated in the defense of floral re-
productive tissues. Journal of Biological Chemistry , 275 , 36726-36733.
Carter, C., & Thornburg, R.W. (2003). The nectary-specific pattern of gene expression is
regulated by multiple promoter elements in the tobacco Nectarin I promoter. Plant Mo-
lecular Biology , 51 , 451-457.
Carter, C., & Thornburg, R.W. (2004a). Is the nectar redox cycle a floral defense against mi-
crobial attack? Trends in Plant Science , 9 , 320-324.
Carter, C., & Thornburg, R.W. (2004b). Tobacco Nectarin III is a bifunctional enzyme with
monodehydroascorbate reductase and carbonic anhydrase activities. Plant Molecular Biol-
ogy , 54 , 415-425.
Carter, C., & Thornburg, R.W. (2004c). Tobacco Nectarin V is a flavin-containing berberine
bridge enzyme-like protein with glucose oxidase activity. Plant Physiology , 134 , 460-469.
Carter, C.J., Shafir, S., Yehonatan, L., Palmer, R.G., & Thornburg, R.W. (2006). A novel role
for proline in plant floral nectars. Naturwissenschaften , 93 , 72-79.
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