Diversity and dynamics of the Spitzenkorper in growing hyphal tips of higher fungi

被引:82
作者
LopezFranco, R [1 ]
Bracker, CE [1 ]
机构
[1] PURDUE UNIV,DEPT BOT & PLANT PATHOL,W LAFAYETTE,IN 47907
关键词
cell polarity; diversity; cytoplasmic dynamics; fungi; hyphal tip growth; Spitzenkorper; video-enhanced microscopy;
D O I
10.1007/BF01279189
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The Spitzenkorper, located in the apex of growing hyphae of septate fungi, has been portrayed previously as a spheroid complex containing a cluster of apical (secretory) vesicles which sometimes encloses a differentiated core area. With the aid of computer-enhanced video microscopy and phase-contrast optics, we studied 32 fungi in the Ascomycetes, Deuteromycetes, Hyphomycetes, Basidiomycetes, and Agonomycetes. The Spitzenkorper appeared as a highly dynamic and pleomorphic multicomponent complex capable of changing shape, size, and position within the hyphal apex during growth. The main theme of this study is to demonstrate two kinds of morphological diversity/variation in Spitzenkorper from diverse fungi: (a) inherent diversity-Spitzenkorper features characteristic of particular fungi, and (b) dynamic pleomorphism-gradual or rapid changes in size, shape, and position of the Spitzenkorper within a single hyphal tip. Several components associated with the Spitzenkorper were identified: (a) vesicle cluster, (b) vesicle cloud, (c) differentiated core region(s) within the Spitzenkorper, (d) apical granules, (e) cytoplasmic filaments. Eight morphological patterns of Spitzenkorper organization are described in the higher fungi based on the shape and distribution of their components. An additional (ninth) pattern was recognized in the chytridiomycete Allomyces macrogynous from recent work by others. All these patterns appeared to be conserved at the genus level. In all patterns but one, a core region was observed by light microscopy. The Spitzenkorper not only exhibited spontaneous dynamic pleomorphism but also reacted to stress conditions (light, mechanical, and electrical fields). These reactions include migration of the Spitzenkorper back into the subapical zone and/or disassembly of its components. The understanding and conceptualization of this dynamic complex is problematic and should remain flexible enough to encompass the diversity of Spitzenkorper patterns and the dynamic pleomorphism of this specialized apical apparatus which appears to drive hyphal tip growth in the higher fungi.
引用
收藏
页码:90 / 111
页数:22
相关论文
共 47 条
[21]   THE EFFECTS OF ANTI-MICROTUBULE AGENTS ON ORGANELLE POSITIONING IN THE COWPEA RUST FUNGUS, UROMYCES-PHASEOLI VAR VIGNAE [J].
HERR, FB ;
HEATH, MC .
EXPERIMENTAL MYCOLOGY, 1982, 6 (01) :15-24
[22]  
HOCH H.C., 1986, ULTRASTRUCTURE TECHN, P183
[23]   ULTRASTRUCTURE OF FREEZE-SUBSTITUTED HYPHAE OF THE BASIDIOMYCETE LAETISARIA-ARVALIS [J].
HOCH, HC ;
HOWARD, RJ .
PROTOPLASMA, 1980, 103 (03) :281-297
[24]   CYTOPLASMIC MICROTUBULES AND FUNGAL MORPHOGENESIS - ULTRASTRUCTURAL EFFECTS OF METHYL BENZIMIDAZOLE-2-YLCARBAMATE DETERMINED BY FREEZE-SUBSTITUTION OF HYPHAL TIP CELLS [J].
HOWARD, RJ ;
AIST, JR .
JOURNAL OF CELL BIOLOGY, 1980, 87 (01) :55-64
[25]   EFFECTS OF MBC ON HYPHAL TIP ORGANIZATION, GROWTH, AND MITOSIS OF FUSARIUM-ACUMINATUM, AND THEIR ANTAGONISM BY D2O [J].
HOWARD, RJ ;
AIST, JR .
PROTOPLASMA, 1977, 92 (3-4) :195-210
[26]   FREEZE SUBSTITUTION OF FUNGI FOR CYTOLOGICAL ANALYSIS [J].
HOWARD, RJ ;
ODONNELL, KL .
EXPERIMENTAL MYCOLOGY, 1987, 11 (04) :250-269
[27]   HYPHAL TIP CELL ULTRASTRUCTURE OF THE FUNGUS FUSARIUM - IMPROVED PRESERVATION BY FREEZE-SUBSTITUTION [J].
HOWARD, RJ ;
AIST, JR .
JOURNAL OF ULTRASTRUCTURE RESEARCH, 1979, 66 (03) :224-234
[28]  
HOWARD RJ, 1981, J CELL SCI, V48, P89
[29]   FIXATION INDUCES DIFFERENTIAL POLARIZED TRANSLOCATIONS OF ORGANELLES IN HYPHAE OF SAPROLEGNIA-FERAX [J].
KAMINSKYJ, SGW ;
JACKSON, SL ;
HEATH, IB .
JOURNAL OF MICROSCOPY-OXFORD, 1992, 167 :153-168
[30]   ULTRASTRUCTURE OF THE CYTOSKELETON IN FREEZE-SUBSTITUTED POLLEN TUBES OF NICOTIANA-ALATA [J].
LANCELLE, SA ;
CRESTI, M ;
HEPLER, PK .
PROTOPLASMA, 1987, 140 (2-3) :141-150