Techniques in plant telomere biology

被引:12
作者
Fajkus, J
Sykorová, E
Leitch, AR
机构
[1] Acad Sci Czech Republ, Inst Biophys, CZ-61265 Brno, Czech Republic
[2] Masaryk Univ, CS-60177 Brno, Czech Republic
[3] Queen Mary Univ London, London E1 4NS, England
关键词
D O I
10.2144/05382RV01
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
The role model systems have played in understanding telomere biology has been enormous, and understanding has rapidly transferred to human I telomere research. Most work using model organisms to study telomerase and nontelomerase-based telomere-maintenance systems has centered on yeasts, ciliates, and insects. But it is now timely to put considerably more effort into plant models for a number of reasons: (i) the rice and Arabidopsis genome sequencing projects make data mining possible; (ii) extensive collections of insertion mutants of Arabidopsis thaliana enable phenotypic effects of protein gene knockouts to be analyzed, including for those genes involved in telomere structure, function (including, for example, in meiosis), and maintenance; and (iii) the variability of plant telomeres is considerable and ranges from the telomerase-mediated synthesis of the Arabidopsis-type (TT-TAGGG) and vertebrate-type (TTAGGG) repeats to sequences synthesized by telomerase-independent mechanism(s) that are still to be discovered. Here we describe how the understanding of telomere biology has been advanced by methods used to isolate telomeric sequences and prove that the putative sequences isolated are indeed telomeric. We show how assays designed to prove the activity of telomerase [e.g., telomeric repeat amplification protocol (TRAP)] lead not only to an understanding of telomere structure and function, but also to the understanding of cell activity in development and in the cell cycle. We review how assays designed to reveal protein/protein and protein/nucleic acid interactions promote understanding of the structure and activities of plant telomeres. Together the data are making significant contributions to telomere biology in general and could have medical implications.
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页码:233 / 243
页数:11
相关论文
共 97 条
[71]   Living with genome instability: Plant responses to telomere dysfunction [J].
Riha, K ;
McKnight, TD ;
Griffing, LR ;
Shippen, DE .
SCIENCE, 2001, 291 (5509) :1797-1800
[72]  
RODER MS, 1993, MOL GEN GENET, V238, P294
[73]   Nucleosome assembly on telomeric sequences [J].
Rossetti, L ;
Cacchione, S ;
Fuà, M ;
Savino, M .
BIOCHEMISTRY, 1998, 37 (19) :6727-6737
[74]   An evolutionary change in telomere sequence motif within the plant section Asparagales had significance for telomere nucleoprotein complexes [J].
Rotková, G ;
Sklenicková, M ;
Dvorácková, M ;
Sykorová, E ;
Leitch, AR ;
Fajkus, J .
CYTOGENETIC AND GENOME RESEARCH, 2004, 107 (1-2) :132-138
[75]   Stable inheritance of telomere chromatin structure and function in the absence of telomeric repeats [J].
Sadaie, M ;
Naito, T ;
Ishikawa, F .
GENES & DEVELOPMENT, 2003, 17 (18) :2271-2282
[76]   TTAGG telomeric repeats in chromosomes of some insects and other arthropods [J].
Sahara, K ;
Marec, F ;
Traut, W .
CHROMOSOME RESEARCH, 1999, 7 (06) :449-460
[77]  
Schrumpfová P, 2004, GENOME, V47, P316, DOI [10.1139/G03-136, 10.1139/g03-136]
[78]   INSITU HYBRIDIZATION TO PLANT TELOMERES USING SYNTHETIC OLIGOMERS [J].
SCHWARZACHER, T ;
HESLOPHARRISON, JS .
GENOME, 1991, 34 (03) :317-323
[79]   Human heterochromatin protein 1 isoforms HP1Hsα and HP1Hsβ interfere with hTERT-telomere interactions and correlate with changes in cell growth and response to ionizing radiation [J].
Sharma, GG ;
Hwang, KK ;
Pandita, RK ;
Gupta, A ;
Dhar, S ;
Parenteau, J ;
Agarwal, M ;
Worman, HJ ;
Wellinger, RJ ;
Pandita, TK .
MOLECULAR AND CELLULAR BIOLOGY, 2003, 23 (22) :8363-8376
[80]  
Suzuki K, 1994, DNA Res, V1, P129, DOI 10.1093/dnares/1.3.129