Scientists Catch Jumping Genes Rewiring Genomes
quantamagazine.org
quantamagazine.org
To be clear, there is a long history of scientific theories and studies on how transposable elements are key to eukaryotic genome evolution, regulatory network formation and genome plasticity, predating the review linked in that sentence - in fact, dating all the way back to Barbara McClintock. I would call this an under-studied area of genomics - I think there are still quite a few Nobel prizes to be made in transposon-mediated evolution.
The new Feschotte article (https://science.sciencemag.org/content/371/6531/eabc6405) demonstrates a transcription factor in bats and uses a reporter assay to link it to signatures of transposon activity, and also uses comparative genomics to identify lineage-specific signatures of transposon activity in tetrapods. This is a big step forward, especially in using reporter assays to link TE activity to TF networks in mammals, but I think the next step would be to do both the in silico and the in vitro experiment together (use a reporter assay to prove that lineage-specific regulatory network patterns are linked to transposon activity).
Last time I checked humans only had ~1800 TFs. I don’t know about “thousands”. Maybe if we count all TFs in all organisms excluding homologs...
> While geneticists have made leaps in understanding how genes with relatively simple, direct functions could have evolved, explanations for transcription factors have largely eluded scientists.
Is it that much different though? TFs bind short DNA sequences throughout the genome. These sequences don’t have to be exact, some variation is allowed. Now, random mutations can change the DNA and enable TF binding, thus increasing the fitness(since TF increasing or decreasing expression of a gene can give some advantage).