Agriculture Reference
In-Depth Information
Queitsch, C., Hong, S. W., Vierling, E., & Lindquist, S. (2000). Hsp101 plays a crucial role in
thermotolerance in Arabidopsis . Plant Cell , 12, 479-492.
Radin, J. W., Lu, Z., Percy, R. G., & Zeiger, E. (1994). Genetic variability for stomatal conduc-
tance in Pima cotton and its relation to improvements of heat adaptation. Proc. Natl. Acad.
Sci. USA , 91, 7217-7221.
Rick, C. M., & Dempsey, W. H. (1969). Position of the stigma in relation to fruit setting of the
tomato. Botanical Gazette 130, 180-186.
Rodríguez, M., Canales, E., & Borrás-Hidalgo, O. (2005). Molecular aspects of abiotic stress in
plants. Biotechnol. Appl. 22, 1-10.
Sairam, R. K., & Tyagi, A. (2004). Physiology and molecular biology of salinity stress tolerance
in plants. Curr. Sci . 86, 407-421.
Sakamoto, A., & Murata, N. (2002). The role of glycine betaine in the protection of plants from
stress clues from transgenic plants. Plant Cell Environ . 25, 163-171.
Sanmiya, K., Suzuki, K., Egawa, Y., & Shono, M. (2004). Mitochondrial small Heatshock pro-
tein enhances thermo tolerance in tobacco plants. FEBS Lett. 557:265-268.
Sarieva, G. E., Kenzhebaeva, S. S., & Lichtenthaler, H. K. (2010). Adaptation potential of pho-
tosynthesis in wheat cultivars with a capability of leaf rolling under high temperature condi-
tions. Russ. J. PlantPhysiol. 57, 28-36.
Sato, S., Kamiyama, M., Iwata, T., Makita, N., Furukawa, H., & Ikeda, H. (2006). Moderate
increase of mean daily temperature adversely affects fruit set of Lycopersiconesculentum by
disrupting specific physiological processes in male reproductive development. Ann. Bot . 97,
731-738.
Sato, S., Peet, M. M., & Gardner, R. G. (2001). Formation of partenocarpic fruit, undeveloped
flowers and aborted flowers in tomato under moderately elevated temperatures. Sci Horti , 90,
243-254.
Savchenko, G. E., Klyuchareva, E. A., Abrabchik, L. M., & Serdyuchenko, E. V. (2002). Ef-
fect of periodic heat shock on the membrane system of etioplasts. Russ. J. Plant Physiol . 49,
349-359.
Sch¨offl, F., Prandl, R., & Reindl, A. (1999). Molecular responses to heat stress. In: Shinozaki,
K., Yamaguchi-Shinozaki, K. (Eds.), Molecular Responses to Cold, Drought, Heat and Salt
Stress in Higher Plants. R. G. Landes Co., Austin, Texas, 81-98.
Scott, J. W., Bryan, H. H., & Ramos, L. J. (1997). High temperature fruit setting ability of large-
fruited, joint less pedicel tomato hybrids with various combinations of heat-tolerance. Proc.
Fla. State Hortic. Soc . 110, 281-284.
Scott, J. W., Olson, S. M., Howe, T. K., Stoffella, P. J., Bartz, J. A., & Bryan, H. H. (1995).
'Equinox' heat-tolerant hybrid tomato. HortScience 30, 647-648.
Scott, J. W., Volin, R. B., Bryan, H. H., & Olson, S. M. (1986). Use of hybrids to develop heat
tolerant tomato cultivars. Proc. Fla. State Hortic. Soc . 99, 311-315.
Semenov, M. A., & Halford, N. G. (2009). Identifying target traits and molecular mechanisms
for wheat breeding under a changing climate. J. Exp. Bot., 60, 2791-2804.
Shinozaki, K., & Yamaguchi-Shinozaki, K. (2007). Gene networks involved in drought stress
response and tolerance. J. Exp. Bot., 58, 221-227.
Siddique, K. H. M., Loss, S. P., Regan, K. L., & Jettner, R. L. (1999). Adaptation and seed
yield of cool season grain legumes in Mediterranean environments of south-western Australia.
Aust. J. Agric. Res. 50 , 375-387.
Search WWH ::




Custom Search