MORPHOLOGY OF DNA CONTAINING STRUCTURES (NUCLEOIDS) AS A PROSPECTIVE CHARACTER IN CYANOPHYTE TAXONOMY

被引:6
作者
CEPAK, V
机构
[1] Institute of Botany, Department of Phycology, Trebon, CZ‐379 82
关键词
CYANOBACTERIA; CYANOBACTERIUM; CYANOPHYTES; CYANOTHECE; DAPI STAINING; DNA CONTAINING STRUCTURES; MORPHOLOGY OF NUCLEOIDS; OSCILLATORIALES; SYNECHOCOCCUS; TAXONOMY;
D O I
10.1111/j.0022-3646.1993.00844.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
DNA containing structures (nucleoids) were visualized by 4'6-diamidino-2-phenylindole (DAPI) fluorescent staining in two groups of cyanophytes (59 filamentous oscillatorialean species and 12 coccal Synechococcus-like organisms) to test the possibility of using nucleoid morphology in cyanophyte taxonomy. The morphology of nucleoids (size, shape, and structure) in oscillatorialean species is specific for individual families. The morphology of the nucleoid in Synechococus-like species agrees with the proposed separation of the genus Cyanothece from Synechococcus. A much different nucleoid morphology in three species of Cyanothece suggests that these species should be separated into a new genus. On the basis of other characters, the species could be returned to the genus Cyanobacterium. My results indicate that the morphology of nucleoids is a valuable character in the classification of the cyanophytes examined; thus, it is a prospective feature that could be used in the taxonomy of other groups of cyanophytes. Additionally, DAPI staining is not a complicated procedure. The new character is easy to see in samples taken from nature, both living and preserved.
引用
收藏
页码:844 / 852
页数:9
相关论文
共 24 条
[1]  
Anagnostidis K., Komarek J., Modern approach to the classification system cyanophytes. 3—Oscillatoriales, Arch. Hydrobiol. (Suppl. 80), Algolog. Studies, 50, pp. 327-472, (1988)
[2]  
Cepak V., Kovacik L., Komarek J., DNA containing structures (nucleoids) in some cyanophytes/cyanobacteria as revealed by DAPI fluorescent staining, Arch. Hydrobiol. (Suppl. 92), Algolog. Studies, 64, pp. 25-39, (1991)
[3]  
Coleman A.W., Cyanophyte and cyanelle DNA: a search for the origins of plastids, J. Phycol., 21, pp. 371-379, (1985)
[4]  
Coleman A.W., Maguire M., Coleman J.R., Mithramycin and DAPI‐DNA staining for fluorescence microspectrophotometric measurement of nuclei, plastids and virus particles, J. Histochem. Cytochem., 29, pp. 959-968, (1981)
[5]  
de Waard A., Duyvesteyn M., Are sequence‐specific deoxyribonucleases of value as taxonomic markers of cyanobacterial species, Arch. Microbiol., 128, pp. 242-247, (1980)
[6]  
Fuhs G.W., Cytochemical examination of blue‐green algae, The Biology of Blue Green Algae, pp. 117-143, (1973)
[7]  
Giovannoni S., Turner S., Oslen G.J., Barns S., Lane D.J., Pace N.R., Evolutionary relationships among cyanobacteria and green chloroplasts, J. Bacteriol., 170, pp. 3584-3592, (1988)
[8]  
Harrison P.J., Waters R.E., Taylor F.J.R., A broad spectrum artificial medium for coastal and open ocean phytoplankton, Journal of Phycology, 16, pp. 28-35, (1980)
[9]  
Herdman M., Janvier M., Waterbury J.B., Rippka R., Stanier R.Y., Mandel M., Deoxyribonucleic acid base composition of cyanobacteria, J. Gen. Microbiol., 111, pp. 63-71, (1979)
[10]  
Jaag D., Die Zellgrösse als Artenmerkmal bei den Blaualgen, Schweiz. Z. Hydrol., 9, pp. 16-33, (1941)