Is the 16S-23S rRNA internal transcribed spacer region a good tool for use in molecular systematics and population genetics? A case study in cyanobacteria

被引:279
作者
Boyer, SL [1 ]
Flechtner, VR [1 ]
Johansen, JR [1 ]
机构
[1] John Carroll Univ, Dept Biol, Cleveland, OH 44118 USA
关键词
internal transcribed spacer; cyanobacteria; intergenic spacer region; rRNA; phylogenetics; population genetics;
D O I
10.1093/oxfordjournals.molbev.a003877
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
We amplified, TA-cloned, and sequenced the 16S-23S internal transcribed spacer (ITS) regions from single isolates of several cyanobacterial species, Calothrix parietina, Scytonema hyalinum, Coelodesmium wrangelii, Tolypothrix distorta, and a putative new genus (isolates SRS6 and SRS70), to investigate the potential of this DNA sequence for phylogenetic and population genetic studies. All isolates carried ITS regions containing the sequences coding for two tRNA molecules (tRNA(Ile) and tRNA(Ala)). We retrieved additional sequences without tRNA features from both C. parietina and S. hyalinum. Furthermore, in S. hyalinum, we found two of these non-tRNA-encoding regions to be identical in length but different in sequence. This is the first report of ITS regions from a single cyanobacterial isolate not only different in configuration, but also, within one configuration, different in sequence. The potential of the ITS region as a tool for studying molecular systematics and population genetics is significant, but the presence of multiple nonidentical rRNA operons poses problems. Multiple nonidentical rRNA operons may impact both studies that depend on comparisons of phylogenetically homologous sequences and those that employ restriction enzyme digests of PCR products. We review current knowledge of the numbers and kinds of 16S-23S ITS regions present across bacterial groups and plastids, and we discuss broad patterns congruent with higher-level systematics of prokaryotes.
引用
收藏
页码:1057 / 1069
页数:13
相关论文
共 104 条
[41]   A plastid of probable green algal origin in apicomplexan parasites [J].
Kohler, S ;
Delwiche, CF ;
Denny, PW ;
Tilney, LG ;
Webster, P ;
Wilson, RJM ;
Palmer, JD ;
Roos, DS .
SCIENCE, 1997, 275 (5305) :1485-1489
[42]  
KOMAREK J, 1989, NOSTOCALES ALGOL STU, V56, P247
[43]  
Komarek J, 1986, ARCH HYDROBIOL S73, V43, P157
[44]   The chloroplast genome of a chlorophyll a+c-containing alga, Odontella sinensis [J].
Kowallik, KV ;
Stoebe, B ;
Schaffran, I ;
KrothPancic, P ;
Freier, U .
PLANT MOLECULAR BIOLOGY REPORTER, 1995, 13 (04) :336-342
[45]   ORGANIZATION OF THE PLASTID GENOME FROM THE RHODOPHYTE CHANDRUS-CRISPUS (GIGARTINALES) - SEQUENCE AND PHYLOGENY OF THE 16S RIBOSOMAL-RNA GENE [J].
LEBLANC, C ;
BOYEN, C ;
DEGOER, SL .
EUROPEAN JOURNAL OF PHYCOLOGY, 1995, 30 (02) :133-140
[46]   MAPPING AND SPACER IDENTIFICATION OF RIBOSOMAL-RNA OPERONS OF SALMONELLA-TYPHIMURIUM [J].
LEHNER, AF ;
HARVEY, S ;
HILL, CW .
JOURNAL OF BACTERIOLOGY, 1984, 160 (02) :682-686
[47]   Ancestral chloroplast genome in Mesostigma viride reveals an early branch of green plant evolution [J].
Lemieux, C ;
Otis, C ;
Turmel, M .
NATURE, 2000, 403 (6770) :649-652
[48]  
Li X, 2000, THESIS J CARROLL U C
[49]   NUCLEOTIDE-SEQUENCE OF A 16S RIBOSOMAL-RNA GENE FROM ANABAENA SP STRAIN PCC-7120 [J].
LIGON, PJB ;
MEYER, KG ;
MARTIN, JA ;
CURTIS, SE .
NUCLEIC ACIDS RESEARCH, 1991, 19 (16) :4553-4553
[50]   TRANSFER-RNA GENES ARE FOUND BETWEEN THE 16S AND 23S RIBOSOMAL-RNA GENES IN BACILLUS-SUBTILIS [J].
LOUGHNEY, K ;
LUND, E ;
DAHLBERG, JE .
NUCLEIC ACIDS RESEARCH, 1982, 10 (05) :1607-1624