Actomyosin-mediated statolith positioning in gravisensing plant cells studied in microgravity

被引:26
作者
Braun, M [1 ]
Buchen, B [1 ]
Sievers, A [1 ]
机构
[1] Univ Bonn, Inst Bot, D-53115 Bonn, Germany
关键词
actomyosin; Chara (rhizoids and protonemata); fast-rotating clinostat (FRC); gravisensing; microgravity; statolith;
D O I
10.1007/s003440010052
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The positioning and gravity-induced sedimentation of statoliths is crucial for gravisensing in most higher and lower plants. In positively gravitropic rhizoids and, for the first time, in negatively gravitropic protonemata of characean green algae, statolith positioning, by actomyosin forces was investigated in microgravity (<10(-4) g) during parabolic flights of rockets (TEXUS/MAXUS) and during the SpaceShuttle flight STS 65. In both cell types, the natural position of statoliths is the result of actomyosin forces which compensate the statoliths' weight in this position. When this balance of forces was disturbed in microgravity or on the fast-rotating clinostat (FRC), a basipetal displacement of the statoliths was observed in rhizoids. After several hours in microgravity, the statoliths were loosely arranged over an area whose apical border was in the same range as in 1g, whereas the basal border had increased its distance from the tip. In protonemata, the actomyosin forces act net-acropetally. Thus, statoliths were transported towards the tip when protonemata were exposed to microgravity or rotated on the FRC. In preinverted protonemata, statoliths were transported away from the tip to a dynamically stable resting, position. Experiments in microgravity and on the FRC gave similar results and allowed us to distinguish between active and passive forces acting on statoliths. The results indicate that actomyosin forces act differently on statoliths in the different regions of both cell types in order to keep the statoliths in a position where they function as susceptors and initiate gravitropic reorientation, even in cells that had never experienced gravity during their growth and development.
引用
收藏
页码:137 / 145
页数:9
相关论文
共 32 条
[1]   Immunolocalization of myosin in rhizoids of Chara globularis Thuill. [J].
Braun, M .
PROTOPLASMA, 1996, 191 (1-2) :1-8
[2]   Relocalization of the calcium gradient and a dihydropyridine receptor is involved in upward bending by bulging of Chara protonemata, but not in downward bending by bowing of Chara rhizoids [J].
Braun, M ;
Richter, P .
PLANTA, 1999, 209 (04) :414-423
[3]   Distribution and dynamics of the cytoskeleton in graviresponding protonemata and rhizoids of characean algae: exclusion of microtubules and a convergence of actin filaments in the apex suggest an actin-mediated gravitropism [J].
Braun, M ;
Wasteneys, GO .
PLANTA, 1998, 205 (01) :39-50
[4]   CENTRIFUGATION CAUSES ADAPTATION OF MICROFILAMENTS - STUDIES ON THE TRANSPORT OF STATOLITHS IN GRAVITY SENSING CHARA-RHIZOIDS [J].
BRAUN, M ;
SIEVERS, A .
PROTOPLASMA, 1993, 174 (1-2) :50-61
[5]   Gravitropism in tip-growing cells [J].
Braun, M .
PLANTA, 1997, 203 (Suppl 1) :S11-S19
[6]  
BRAUN M, 1994, EUR J CELL BIOL, V63, P289
[7]   Association of spectrin-like proteins with the actin-organized aggregate of endoplasmic reticulum in the Spitzenkorper of gravitropically tip-growing plant cells [J].
Braun, M .
PLANT PHYSIOLOGY, 2001, 125 (04) :1611-1619
[8]  
Braun M, 1996, PLANTA, V199, P443, DOI 10.1007/BF00195738
[9]  
Braun M., 2000, ACTIN DYNAMIC FRAMEW, P237
[10]  
BRAUN M, 2002, IN PRESS PROTOPLASMA