Literature DB >> 21669806

Turtle isochore structure is intermediate between amphibians and other amniotes.

Jena L Chojnowski1, Edward L Braun.   

Abstract

Vertebrate genomes are comprised of isochores that are relatively long (>100 kb) regions with a relatively homogenous (either GC-rich or AT-rich) base composition and with rather sharp boundaries with neighboring isochores. Mammals and living archosaurs (birds and crocodilians) have heterogeneous genomes that include very GC-rich isochores. In sharp contrast, the genomes of amphibians and fishes are more homogeneous and they have a lower overall GC content. Because DNA with higher GC content is more thermostable, the elevated GC content of mammalian and archosaurian DNA has been hypothesized to be an adaptation to higher body temperatures. This hypothesis can be tested by examining structure of isochores across the reptilian clade, which includes the archosaurs, testudines (turtles), and lepidosaurs (lizards and snakes), because reptiles exhibit diverse body sizes, metabolic rates, and patterns of thermoregulation. This study focuses on a comparative analysis of a new set of expressed genes of the red-eared slider turtle and orthologs of the turtle genes in mammalian (human, mouse, dog, and opossum), archosaurian (chicken and alligator), and amphibian (western clawed frog) genomes. EST (expressed sequence tag) data from a turtle cDNA library enriched for genes that have specialized functions (developmental genes) revealed using the GC content of the third-codon-position to examine isochore structure requires careful consideration of the types of genes examined. The more highly expressed genes (e.g., housekeeping genes) are more likely to be GC-rich than are genes with specialized functions. However, the set of highly expressed turtle genes demonstrated that the turtle genome has a GC content that is intermediate between the GC-poor amphibians and the GC-rich mammals and archosaurs. There was a strong correlation between the GC content of all turtle genes and the GC content of other vertebrate genes, with the slope of the line describing this relationship also indicating that the isochore structure of turtles is intermediate between that of amphibians and other amniotes. These data are consistent with some thermal hypotheses of isochore evolution, but we believe that the credible set of models for isochore evolution still includes a variety of models. These data expand the amount of genomic data available from reptiles upon which future studies of reptilian genomics can build.

Entities:  

Year:  2008        PMID: 21669806     DOI: 10.1093/icb/icn062

Source DB:  PubMed          Journal:  Integr Comp Biol        ISSN: 1540-7063            Impact factor:   3.326


  9 in total

1.  Sequencing three crocodilian genomes to illuminate the evolution of archosaurs and amniotes.

Authors:  John A St John; Edward L Braun; Sally R Isberg; Lee G Miles; Amanda Y Chong; Jaime Gongora; Pauline Dalzell; Christopher Moran; Bertrand Bed'hom; Arkhat Abzhanov; Shane C Burgess; Amanda M Cooksey; Todd A Castoe; Nicholas G Crawford; Llewellyn D Densmore; Jennifer C Drew; Scott V Edwards; Brant C Faircloth; Matthew K Fujita; Matthew J Greenwold; Federico G Hoffmann; Jonathan M Howard; Taisen Iguchi; Daniel E Janes; Shahid Yar Khan; Satomi Kohno; Ap Jason de Koning; Stacey L Lance; Fiona M McCarthy; John E McCormack; Mark E Merchant; Daniel G Peterson; David D Pollock; Nader Pourmand; Brian J Raney; Kyria A Roessler; Jeremy R Sanford; Roger H Sawyer; Carl J Schmidt; Eric W Triplett; Tracey D Tuberville; Miryam Venegas-Anaya; Jason T Howard; Erich D Jarvis; Louis J Guillette; Travis C Glenn; Richard E Green; David A Ray
Journal:  Genome Biol       Date:  2012-01-31       Impact factor: 13.583

2.  Assessing parameter identifiability in phylogenetic models using data cloning.

Authors:  José Miguel Ponciano; J Gordon Burleigh; Edward L Braun; Mark L Taper
Journal:  Syst Biol       Date:  2012-05-30       Impact factor: 15.683

3.  Intra-genomic GC heterogeneity in sauropsids: evolutionary insights from cDNA mapping and GC(3) profiling in snake.

Authors:  Kazumi Matsubara; Shigehiro Kuraku; Hiroshi Tarui; Osamu Nishimura; Chizuko Nishida; Kiyokazu Agata; Yoshinori Kumazawa; Yoichi Matsuda
Journal:  BMC Genomics       Date:  2012-11-09       Impact factor: 3.969

4.  Deciphering heterogeneity in pig genome assembly Sscrofa9 by isochore and isochore-like region analyses.

Authors:  Wenqian Zhang; Wenwu Wu; Wenchao Lin; Pengfang Zhou; Li Dai; Yang Zhang; Jingfei Huang; Deli Zhang
Journal:  PLoS One       Date:  2010-10-11       Impact factor: 3.240

5.  Reptilian-transcriptome v1.0, a glimpse in the brain transcriptome of five divergent Sauropsida lineages and the phylogenetic position of turtles.

Authors:  Athanasia C Tzika; Raphaël Helaers; Gerrit Schramm; Michel C Milinkovitch
Journal:  Evodevo       Date:  2011-09-26       Impact factor: 2.250

6.  The Anolis lizard genome: an amniote genome without isochores.

Authors:  Matthew K Fujita; Scott V Edwards; Chris P Ponting
Journal:  Genome Biol Evol       Date:  2011-07-27       Impact factor: 3.416

7.  Biased gene conversion and GC-content evolution in the coding sequences of reptiles and vertebrates.

Authors:  Emeric Figuet; Marion Ballenghien; Jonathan Romiguier; Nicolas Galtier
Journal:  Genome Biol Evol       Date:  2014-12-19       Impact factor: 3.416

Review 8.  The "Genomic Code": DNA Pervasively Moulds Chromatin Structures Leaving no Room for "Junk".

Authors:  Giorgio Bernardi
Journal:  Life (Basel)       Date:  2021-04-13

9.  An unbiased approach to identify genes involved in development in a turtle with temperature-dependent sex determination.

Authors:  Jena L Chojnowski; Edward L Braun
Journal:  BMC Genomics       Date:  2012-07-15       Impact factor: 3.969

  9 in total

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