Chilling stress suppresses chloroplast development and nuclear gene expression in leaves of mung bean seedlings

被引:40
作者
Yang, MT
Chen, SL
Lin, CY
Chen, YM
机构
[1] Natl Taiwan Univ, Inst Plant Biol, Taipei 106, Taiwan
[2] Ming Chuan Univ, Dept Biotechnol, Taoyuan 333, Taiwan
关键词
chilling stress; chilling-sensitive plants; chloroplast development; cold-suppressed genes; etioplast;
D O I
10.1007/s00425-004-1451-y
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Etiolated leaves of 28 degrees C-dark-grown mung bean (Vigna radiata L. cv. 2937) seedlings fail to turn green after being shifted to a light and cold environment. At the visible phenotypic level, incapability of leaf greening is the only failure event for the de-etiolation of mung bean seedlings at low temperature. Ultrastructural studies revealed that chloroplast development was completely suppressed by chilling treatment. A cDNA library originating from 28 degrees C-light-grown seedling leaves was constructed for screening cold-suppressed (cos) genes. Thirteen full-length cDNA clones were obtained, with 12 clones encoding chloroplast proteins, which, according to their known physiological functions, were important for chloroplast development and photosynthesis. Another cos cDNA encodes CYP90A2, which is a cytochrome P450 protein involved in the biosynthesis of brassinosteroid hormones. All cos genes are light-regulated at normal temperature. The influence of chilling stress on cos expression was examined in 10 degrees C-light- and 10 degrees C-dark-grown etiolated seedlings, and in 10 degrees C-light-grown green plants. The data show that cos expression in these three treatments is severely suppressed. This suppression is controlled at the transcriptional level, as demonstrated by nuclear runoff experiments, and is reversible because cos mRNAs accumulate again after the cold-treated plants have been transferred to 28 degrees C.
引用
收藏
页码:374 / 385
页数:12
相关论文
共 60 条
[51]   Brassinosteroids rescue the deficiency of CYP90, a cytochrome P450, controlling cell elongation and de-etiolation in arabidopsis [J].
Szekeres, M ;
Nemeth, K ;
KonczKalman, Z ;
Mathur, J ;
Kauschmann, A ;
Altmann, T ;
Redei, GP ;
Nagy, F ;
Schell, J ;
Koncz, C .
CELL, 1996, 85 (02) :171-182
[52]   THE SPECIFICITY OF THE METHYL GREEN-PYRONIN STAIN FOR NUCLEIC ACIDS [J].
TAFT, EB .
EXPERIMENTAL CELL RESEARCH, 1951, 2 (03) :312-326
[53]   Plant cold acclimation: Freezing tolerance genes and regulatory mechanisms [J].
Thomashow, MF .
ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1999, 50 :571-599
[54]   So what's new in the field of plant cold acclimation? Lots! [J].
Thomashow, MF .
PLANT PHYSIOLOGY, 2001, 125 (01) :89-93
[55]   Photoinhibition of Photosystem I damages both reaction centre proteins PSI-A and PSI-B and acceptor-side located small Photosystem I polypeptides [J].
Tjus S.E. ;
Møller B.L. ;
Scheller H.V. .
Photosynthesis Research, 1999, 60 (1) :75-86
[56]   CHLOROPHYLL BIOSYNTHESIS [J].
VON WETTSTEIN, D ;
GOUGH, S ;
KANNANGARA, CG .
PLANT CELL, 1995, 7 (07) :1039-1057
[57]  
WANG CY, 1982, HORTSCIENCE, V17, P173
[58]   CHILLING-ENHANCED PHOTOOXIDATION - THE PRODUCTION, ACTION AND STUDY OF REACTIVE OXYGEN SPECIES PRODUCED DURING CHILLING IN THE LIGHT [J].
WISE, RR .
PHOTOSYNTHESIS RESEARCH, 1995, 45 (02) :79-97
[59]   INTERACTION OF PLASTOCYANIN WITH PHOTOSYSTEM-I - A CHEMICAL CROSS-LINKING STUDY OF THE POLYPEPTIDE THAT BINDS PLASTOCYANIN [J].
WYNN, RM ;
MALKIN, R .
BIOCHEMISTRY, 1988, 27 (16) :5863-5869
[60]   Cool temperature-induced chlorosis in rice plants .2. Effects of cool temperature on the expression of plastid-encoded genes during shoot growth in darkness [J].
Yoshida, R ;
Kanno, A ;
Kameya, T .
PLANT PHYSIOLOGY, 1996, 112 (02) :585-590