Callose implication in stomatal opening and closure in the fern Asplenium nidus

被引:19
作者
Apostolakos, P. [1 ]
Livanos, P. [1 ]
Nikolakopoulou, T. L. [1 ]
Galatis, B. [1 ]
机构
[1] Univ Athens, Fac Biol, Dept Bot, Athens 15784, Greece
关键词
Asplenium nidus; callose; guard cell wall deformation; stomatal movement; beta-1; 3-d-glucanase; GUARD-CELL-WALL; VICIA-FABA L; ZEA-MAYS; DYNAMIC ORGANIZATION; POLLEN TUBES; LEAF STOMATA; CELLULOSE; MORPHOGENESIS; MICROTUBULES; DEPOSITION;
D O I
10.1111/j.1469-8137.2010.03206.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
P>The involvement of callose in the mechanism of stomatal pore opening and closing in the fern Asplenium nidus was investigated by examination of the pattern of callose deposition in open and closed stomata, and by examination of the effects of callose degradation and inhibition or induction of callose synthesis in stomatal movement. Callose was identified with aniline blue staining and a callose antibody and degraded via beta-1,3-d-glucanase. Callose synthesis was inhibited with 2-deoxy-d-glucose and induced by coumarin or dichlobenil. Stomatal pore opening and closing were assessed by estimation of the stomatal pore width. The open stomata entirely lacked callose, while the closed ones displayed distinct radial fibrillar callose arrays in the external periclinal walls. The latter displayed local bending at the region of callose deposition, a deformation that was absent in the open stomata. Both callose degradation and inhibition of callose synthesis reduced the stomatal ability to open in white light and close in darkness. By contrast, callose synthesis induction considerably improved stomatal pore opening and reduced stomatal closure in same conditions. The present data revealed that: during stomatal closure the external periclinal guard cell walls experience a strong mechanical stress, probably triggering callose synthesis; and that callose participates in stomatal movement.
引用
收藏
页码:623 / 635
页数:13
相关论文
共 44 条
[1]   2,6-dichlorobenzonitrile, a cellulose biosynthesis inhibitor, affects morphology and structural integrity of petunia and lily pollen tubes [J].
Anderson, JR ;
Barnes, WS ;
Bedinger, P .
JOURNAL OF PLANT PHYSIOLOGY, 2002, 159 (01) :61-67
[2]   The role of callose in guard-cell wall differentiation and stomatal pore formation in the fern Asplenium nidus [J].
Apostolakos, P. ;
Livanos, P. ;
Nikolakopoulou, T. L. ;
Galatis, B. .
ANNALS OF BOTANY, 2009, 104 (07) :1373-1387
[3]   Microtubule and actin filament organization during stomatal morphogenesis in the fern Asplenium nidus.: II.: Guard cells [J].
Apostolakos, P ;
Galatis, B .
NEW PHYTOLOGIST, 1999, 141 (02) :209-223
[4]   Microtubule Involvement in the Deposition of Radial Fibrillar Callose Arrays in Stomata of the Fern Asplenium nidus L. [J].
Apostolakos, Panagiotis ;
Livanos, Pantelis ;
Galatis, Basil .
CELL MOTILITY AND THE CYTOSKELETON, 2009, 66 (06) :342-349
[5]   Nonmotile cellulose synthase subunits repeatedly accumulate within localized regions at the plasma membrane in Arabidopsis hypocotyl cells following 2,6-dichlorobenzonitrile treatment [J].
DeBolt, Seth ;
Gutierrez, Ryan ;
Ehrhardt, David W. ;
Somerville, Chris .
PLANT PHYSIOLOGY, 2007, 145 (02) :334-338
[6]   Morlin, an inhibitor of cortical microtubule dynamics and cellulose synthase movement [J].
DeBolt, Seth ;
Gutierrez, Ryan ;
Ehrhardt, David W. ;
Melo, Carlos V. ;
Ross, Loretta ;
Cutler, Sean R. ;
Somerville, Christopher ;
Bonetta, Dario .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2007, 104 (14) :5854-5859
[7]   IDENTIFICATION OF A RECEPTOR PROTEIN IN COTTON FIBERS FOR THE HERBICIDE 2,6-DICHLOROBENZONITRILE [J].
DELMER, DP ;
READ, SM ;
COOPER, G .
PLANT PHYSIOLOGY, 1987, 84 (02) :415-420
[8]   Location of cellulose and callose in pollen tubes and grains of Nicotiana tabacum [J].
Ferguson, C ;
Teeri, TT ;
Siika-aho, M ;
Read, SM ;
Bacic, A .
PLANTA, 1998, 206 (03) :452-460
[9]   Dynamic organization of microtubules in guard cells of Vicia faba L. with diurnal cycle [J].
Fukuda, M ;
Hasezawa, S ;
Asai, N ;
Nakajima, N ;
Kondo, N .
PLANT AND CELL PHYSIOLOGY, 1998, 39 (01) :80-86
[10]  
Fukuda M, 2000, PLANT CELL PHYSIOL, V41, P600, DOI 10.1093/pcp/41.5.600