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1.
Nature ; 584(7821): 403-409, 2020 08.
Article in English | MEDLINE | ID: mdl-32760000

ABSTRACT

The tuatara (Sphenodon punctatus)-the only living member of the reptilian order Rhynchocephalia (Sphenodontia), once widespread across Gondwana1,2-is an iconic species that is endemic to New Zealand2,3. A key link to the now-extinct stem reptiles (from which dinosaurs, modern reptiles, birds and mammals evolved), the tuatara provides key insights into the ancestral amniotes2,4. Here we analyse the genome of the tuatara, which-at approximately 5 Gb-is among the largest of the vertebrate genomes yet assembled. Our analyses of this genome, along with comparisons with other vertebrate genomes, reinforce the uniqueness of the tuatara. Phylogenetic analyses indicate that the tuatara lineage diverged from that of snakes and lizards around 250 million years ago. This lineage also shows moderate rates of molecular evolution, with instances of punctuated evolution. Our genome sequence analysis identifies expansions of proteins, non-protein-coding RNA families and repeat elements, the latter of which show an amalgam of reptilian and mammalian features. The sequencing of the tuatara genome provides a valuable resource for deep comparative analyses of tetrapods, as well as for tuatara biology and conservation. Our study also provides important insights into both the technical challenges and the cultural obligations that are associated with genome sequencing.


Subject(s)
Evolution, Molecular , Genome/genetics , Phylogeny , Reptiles/genetics , Animals , Conservation of Natural Resources/trends , Female , Genetics, Population , Lizards/genetics , Male , Molecular Sequence Annotation , New Zealand , Sex Characteristics , Snakes/genetics , Synteny
3.
PLoS Genet ; 2(10): e182, 2006 Oct.
Article in English | MEDLINE | ID: mdl-17069464

ABSTRACT

Genomic imprinting, representing parent-specific expression of alleles at a locus, raises many questions about how--and especially why--epigenetic silencing of mammalian genes evolved. We present the first in-depth study of how a human imprinted domain evolved, analyzing a domain containing several imprinted genes that are involved in human disease. Using comparisons of orthologous genes in humans, marsupials, and the platypus, we discovered that the Prader-Willi/Angelman syndrome region on human Chromosome 15q was assembled only recently (105-180 million years ago). This imprinted domain arose after a region bearing UBE3A (Angelman syndrome) fused with an unlinked region bearing SNRPN (Prader-Willi syndrome), which had duplicated from the non-imprinted SNRPB/B'. This region independently acquired several retroposed gene copies and arrays of small nucleolar RNAs from different parts of the genome. In their original configurations, SNRPN and UBE3A are expressed from both alleles, implying that acquisition of imprinting occurred after their rearrangement and required the evolution of a control locus. Thus, the evolution of imprinting in viviparous mammals is ongoing.


Subject(s)
Genomic Imprinting/genetics , Marsupialia/genetics , Platypus/genetics , Alleles , Animals , Autoantigens/genetics , Chromosome Mapping , Chromosomes, Mammalian/genetics , Genome, Human/genetics , Humans , In Situ Hybridization, Fluorescence , Mice , Ribonucleoproteins, Small Nuclear/genetics , Sequence Analysis, DNA , Sequence Homology , Ubiquitin-Protein Ligases/genetics , snRNP Core Proteins
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