Comparative ultrastructure of plasmodesmata of Chara and selected bryophytes: Toward an elucidation of the evolutionary origin of plant plasmodesmata

被引:76
作者
Cook, ME
Graham, LE
Botha, CEJ
Lavin, CA
机构
[1] UNIV WISCONSIN, DEPT BOT, MADISON, WI 53706 USA
[2] UNIV WISCONSIN, INTEGRATED MICROSCOPY RESOURCE, MADISON, WI 53706 USA
[3] RHODES UNIV, DEPT BOT, SCHONLAND BOT LABS, ZA-6140 GRAHAMSTOWN, SOUTH AFRICA
关键词
bryophytes; Chara; charophycean algae; Monoclea; Norothylas; plant evolution; plasmodesmata; Sphagnum;
D O I
10.2307/2446040
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
We have used transmission electron microscopy to examine plasmodesmata of the charophycean green alga Chara zeylanica, and of the putatively early divergent bryophytes Monoclea gottschei (liverwort), Notothylas orbicularis (hornwort), and Sphagnum fimbriatum (moss), in an attempt to learn when seed plant plasmodesmata may have originated. The three bryophytes examined have desmotubules. In addition, Monoclea was found to have branched plasmodesmata, and plasmodesmata of Sphagnum displayed densely staining regions around the neck region, as well as ring-like wall specializations. In Chara, longitudinal sections revealed endoplasmic reticulum (ER) that sometimes appeared to be associated with plasmodesmata, but this was rare, despite abundant ER at the cell periphery. Across all three fixation methods, cross-sectional views showed an internal central structure, which in some cases appeared to be connected to the plasma membrane via spoke-like structures. Plasmodesmata were present even in the incompletely formed reticulum of forming cell plates, from which we conclude that primary plasmodesmata are formed at cytokinesis in Chara zeylanica. Based on these results it appears that plasmodesmata of Chara may be less specialized than those of seed plants, and that complex plasmodesmata probably evolved in the ancestor of land plants before extant lineages of bryophytes diverged.
引用
收藏
页码:1169 / 1178
页数:10
相关论文
共 66 条
[1]   ULTRASTRUCTURAL SPECIALIZATIONS OF THE CELL-WALL SLEEVE AROUND PLASMODESMATA [J].
BADELT, K ;
WHITE, RG ;
OVERALL, RL ;
VESK, M .
AMERICAN JOURNAL OF BOTANY, 1994, 81 (11) :1422-1427
[2]  
BAKER RGE, 1988, J HATTORI BOT LAB, V64, P359
[3]   PHYSIOLOGICAL-ASPECTS OF DESICCATION TOLERANCE - A RETROSPECT [J].
BEWLEY, JD .
INTERNATIONAL JOURNAL OF PLANT SCIENCES, 1995, 156 (04) :393-403
[4]   THE ULTRASTRUCTURE AND COMPUTER-ENHANCED DIGITAL IMAGE-ANALYSIS OF PLASMODESMATA AT THE KRANZ MESOPHYLL-BUNDLE SHEATH INTERFACE OF THEMEDA-TRIANDRA VAR IMBERBIS (RETZ) CAMUS,A. IN CONVENTIONALLY-FIXED LEAF BLADES [J].
BOTHA, CEJ ;
HARTLEY, BJ ;
CROSS, RHM .
ANNALS OF BOTANY, 1993, 72 (03) :255-261
[5]  
Bozzola JJ, 1992, ELECT MICROSCOPY
[6]   POLAR ORGANIZERS IN MONOPLASTIDIC MITOSIS OF HEPATICS (BRYOPHYTA) [J].
BROWN, RC ;
LEMMON, BE .
CELL MOTILITY AND THE CYTOSKELETON, 1992, 22 (01) :72-77
[7]   PROBING PLASMODESMAL TRANSPORT WITH PLANT-VIRUSES [J].
CITOVSKY, V .
PLANT PHYSIOLOGY, 1993, 102 (04) :1071-1076
[8]   SUBSTRUCTURE OF FREEZE-SUBSTITUTED PLASMODESMATA [J].
DING, B ;
TURGEON, R ;
PARTHASARATHY, MV .
PROTOPLASMA, 1992, 169 (1-2) :28-41
[9]  
DUCKETT CM, 1994, DEVELOPMENT, V120, P3247
[10]   PLASMODESMATA - COMPOSITION, STRUCTURE AND TRAFFICKING [J].
EPEL, BL .
PLANT MOLECULAR BIOLOGY, 1994, 26 (05) :1343-1356