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ABA 信号 9
Abscisic Acid- and Low Temperature-increased Gene Expression
alongwith Enhancement ofFreezing Tolerance in Physcomitrella
patens
Manabu Nagao, Anzu Minami, Keita Arakawa, Seizo Fujikawa* and
Daisuke Takezawa
Institute of Low Temperature Science; *Graduate School of
Agriculture, Hokkaido University, Sapporo, Japan
Cold acclimation at low, non-freezing temperatures enhances
ability of plants to tolerate freezing at various subzero
temperatures, accompanying physiological and morphological
alterations at the cellular level. Abscisic acid (ABA) is
postulated tobe crucialtothedevelopmentoffreezingtolerance
during the cold acclimation process inplants. A number of genes
are reported to be inducedby cold acclimation and ABA treatment
in higher plants, and the proteins encoded by these genes are
thought to play a role in protecting plant cells from freezing
injury. However, specific functions of these cold- and
ABA-induced genes in vivo are not well understood because of
lackof studieson geneticmutants deficient ineach gene. Inthe
present study, we attempted to use Physcomitrella patens, in
which specificgenescanbedisruptedbyhomologousrecombination,
as a model system to identify the roles of the cold- and
ABA-induced genes and to clarify the basic mechanism of freezing
tolerance in plants.
Equilibrium freezing test of P. patens protonema cells
revealed that the cells grown under the normal growth condition
are labile to freezing. ABA treatment, however, dramatically
increased the freezing tolerance within several hours. Cold
treatment at 4 淸 also increasedthe freezing tolerance,but the
increase was far less than that achieved by ABA.
We examined ultrastructures of freeze-labile and tolerant
protonema cells by freeze-fracture electron microscopy. When
non-treated control cells were subjected to freezing at –4 淸,
メaparticulate domainsモ and メfracture jump lesionsモ, structures
characteris
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