The germline genome of the binucleated ciliate Tetrahymena thermophila undergoes programmed chromosome breakage and massive DNA elimination to generate the somatic genome. Here, we present a complete sequence assembly of the germline genome and analyze multiple features of its structure and its relationship to the somatic genome, shedding light on the mechanisms of genome rearrangement as well as the evolutionary history of this remarkable germline/soma differentiation. Our results strengthen the notion that a complex, dynamic, and ongoing interplay between mobile DNA elements and the host genome have shaped Tetrahymena chromosome structure, locally and globally. Non-standard outcomes of rearrangement events, including the generation of sho...
Ciliates are single cell eukaryotic organisms with two nuclei and unusual genome biology. The purpos...
Developmentally programmed genome rearrangement accompanies differentiation of the silent germline m...
Developmentally programmed genome rearrangement accompanies differentiation of the silent germline m...
The germline genome of the binucleated ciliate Tetrahymena thermophila undergoes programmed chromoso...
AbstractThe single-celled ciliate Tetrahymena thermophila possesses two versions of its genome, one ...
The ciliate Tetrahymena thermophila is a model organism for molecular and cellular biology. Like oth...
The ciliate Tetrahymena thermophila is a model organism for molecular and cellular biology. Like oth...
<div><p>Ciliated protists rearrange their genomes dramatically during nuclear development via chromo...
The ciliate Tetrahymena thermophila is a model organism for molecular and cellular biology. Like oth...
Genetically programmed DNA rearrangements can regulate mRNA expression at an individual locus or, fo...
Genetically programmed DNA rearrangements can regulate mRNA expression at an individual locus or, fo...
AbstractThe single-celled ciliate Tetrahymena thermophila possesses two versions of its genome, one ...
Genetically programmed DNA rearrangements can regulate mRNA expression at an individual locus or, fo...
Abstract: Ciliated protists rearrange their genomes dramatically during nuclear development via chro...
Ciliates are single cell eukaryotic organisms with two nuclei and unusual genome biology. The purpos...
Ciliates are single cell eukaryotic organisms with two nuclei and unusual genome biology. The purpos...
Developmentally programmed genome rearrangement accompanies differentiation of the silent germline m...
Developmentally programmed genome rearrangement accompanies differentiation of the silent germline m...
The germline genome of the binucleated ciliate Tetrahymena thermophila undergoes programmed chromoso...
AbstractThe single-celled ciliate Tetrahymena thermophila possesses two versions of its genome, one ...
The ciliate Tetrahymena thermophila is a model organism for molecular and cellular biology. Like oth...
The ciliate Tetrahymena thermophila is a model organism for molecular and cellular biology. Like oth...
<div><p>Ciliated protists rearrange their genomes dramatically during nuclear development via chromo...
The ciliate Tetrahymena thermophila is a model organism for molecular and cellular biology. Like oth...
Genetically programmed DNA rearrangements can regulate mRNA expression at an individual locus or, fo...
Genetically programmed DNA rearrangements can regulate mRNA expression at an individual locus or, fo...
AbstractThe single-celled ciliate Tetrahymena thermophila possesses two versions of its genome, one ...
Genetically programmed DNA rearrangements can regulate mRNA expression at an individual locus or, fo...
Abstract: Ciliated protists rearrange their genomes dramatically during nuclear development via chro...
Ciliates are single cell eukaryotic organisms with two nuclei and unusual genome biology. The purpos...
Ciliates are single cell eukaryotic organisms with two nuclei and unusual genome biology. The purpos...
Developmentally programmed genome rearrangement accompanies differentiation of the silent germline m...
Developmentally programmed genome rearrangement accompanies differentiation of the silent germline m...