A bacterial genetic screen identifies functional coding sequences of the insect mariner transposable element Famar1 amplified from the genome of the earwig, Forficula auricularia

被引:44
作者
Barry, EG
Witherspoon, DJ
Lampe, DJ
机构
[1] Duquesne Univ, Dept Biol Sci, Pittsburgh, PA 15282 USA
[2] Univ Utah, Eccles Inst Human Genet, Salt Lake City, UT 84112 USA
关键词
D O I
10.1534/genetics.166.2.823
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Transposons of the mariner family are widespread in animal genomes and have apparently infected them by horizontal transfer. Most species carry only old defective copies of particular mariner transposons that have diverged greatly from their active horizontally transferred ancestor, while a few contain young, very similar, and active copies. We report here the use of a whole-genome screen in bacteria to isolate somewhat diverged Famar1 copies from the European earwig, Forficula auricularia, that encode functional transposases. Functional and nonfunctional coding sequences of Famar1 and nonfunctional copies of Ammar1 from the European honey bee, Apis mellifera, were sequenced to examine their molecular evolution. No selection for sequence conservation was detected in any clade of a tree derived from these sequences, not even on branches leading to functional copies. This agrees with the current model for mariner transposon evolution that expects neutral evolution within particular hosts, with selection for function occurring only upon horizontal transfer to a new host. Our results further suggest that mariners are not finely tuned genetic entities and that a greater amount of sequence diversification than had previously been appreciated can occur in functional copies in a single host lineage. Finally, this method of isolating active copies can be used to isolate other novel active transposons without resorting to reconstruction of ancestral sequences.
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页码:823 / 833
页数:11
相关论文
共 52 条
[1]   The genome sequence of Drosophila melanogaster [J].
Adams, MD ;
Celniker, SE ;
Holt, RA ;
Evans, CA ;
Gocayne, JD ;
Amanatides, PG ;
Scherer, SE ;
Li, PW ;
Hoskins, RA ;
Galle, RF ;
George, RA ;
Lewis, SE ;
Richards, S ;
Ashburner, M ;
Henderson, SN ;
Sutton, GG ;
Wortman, JR ;
Yandell, MD ;
Zhang, Q ;
Chen, LX ;
Brandon, RC ;
Rogers, YHC ;
Blazej, RG ;
Champe, M ;
Pfeiffer, BD ;
Wan, KH ;
Doyle, C ;
Baxter, EG ;
Helt, G ;
Nelson, CR ;
Miklos, GLG ;
Abril, JF ;
Agbayani, A ;
An, HJ ;
Andrews-Pfannkoch, C ;
Baldwin, D ;
Ballew, RM ;
Basu, A ;
Baxendale, J ;
Bayraktaroglu, L ;
Beasley, EM ;
Beeson, KY ;
Benos, PV ;
Berman, BP ;
Bhandari, D ;
Bolshakov, S ;
Borkova, D ;
Botchan, MR ;
Bouck, J ;
Brokstein, P .
SCIENCE, 2000, 287 (5461) :2185-2195
[2]  
ALI SA, 1995, BIOTECHNIQUES, V18, P746
[3]  
[Anonymous], 1992, LIKELIHOOD, DOI DOI 10.56021/9780801844454
[4]   EVOLUTION OF THE TRANSPOSABLE ELEMENT MARINER IN THE DROSOPHILA-MELANOGASTER SPECIES GROUP [J].
CAPY, P ;
DAVID, JR ;
HARTL, DL .
GENETICA, 1992, 86 (1-3) :37-46
[5]   CONSTRUCTION AND CHARACTERIZATION OF AMPLIFIABLE MULTICOPY DNA CLONING VEHICLES DERIVED FROM P15A CRYPTIC MINIPLASMID [J].
CHANG, ACY ;
COHEN, SN .
JOURNAL OF BACTERIOLOGY, 1978, 134 (03) :1141-1156
[6]   Purified mariner (Mos1) transposase catalyzes the integration of marked elements into the germ-line of the yellow fever mosquito, Aedes aegypti [J].
Coates, CJ ;
Jasinskiene, N ;
Morgan, D ;
Tosi, LRO ;
Beverley, SM ;
James, AA .
INSECT BIOCHEMISTRY AND MOLECULAR BIOLOGY, 2000, 30 (11) :1003-1008
[7]   Mariner transposition and transformation of the yellow fever mosquito, Aedes aegypti [J].
Coates, CJ ;
Jasinskiene, N ;
Miyashiro, L ;
James, AA .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1998, 95 (07) :3748-3751
[8]  
EICKBUSH TH, 2002, ORIGIN EVOLUTION RET
[9]  
GARCIAFERNANDEZ J, 1995, MOL BIOL EVOL, V12, P421
[10]   Ccmar1, a full-length mariner element from the Mediterranean fruit fly, Ceratitis capitata [J].
Gomulski, LM ;
Torti, C ;
Malacrida, AR ;
Gasperi, G .
INSECT MOLECULAR BIOLOGY, 1997, 6 (03) :241-253