Phenotypic divergence of Homo sapiens is driven by the evolution of human-specific genomic regulatory networks via two mechanistically distinct pathways of creation of divergent regulatory DNA sequences
arXiv:1509.02507 · doi:10.1093/gbe/evw185
Abstract
Thousands of candidate human-specific regulatory sequences (HSRS) have been identified, supporting the hypothesis that unique to human phenotypes result from human-specific alterations of genomic regulatory networks. Here, conservation patterns analysis of 18,364 candidate HSRS was carried out based on definition of the sequence conservation threshold as the minimum ratio of bases that must remap of 1.00. A total of 5,535 candidate HSRS were identified that are: i) highly conserved in Great Apes; ii) evolved by the exaptation of highly conserved ancestral DNA; iii) defined by either the acceleration of mutation rates on the human lineage or the functional divergence from nonhuman primates. The exaptation of highly conserved ancestral DNA pathway seems mechanistically distinct from the evolution of regulatory DNA segments driven by the species-specific expansion of transposable elements. Present analysis supports the idea that phenotypic divergence of Homo sapiens is driven by the evolution of human-specific genomic regulatory networks via two mechanistically distinct pathways of creation of divergent sequences of regulatory DNA: i) exaptation of the highly conserved ancestral regulatory DNA segments; ii) human-specific insertions of transposable elements.
13 pages; 15 references; 12 tables; 1 figure
References in corpus (1)
Cited by in corpus (6)
- Role of distal enhancers in shaping 3D-folding patterns and defining human-specific features of interphase chromatin architecture in embryonic stem cells
- Analysis of evolutionary origins of genomic loci harboring 59,732 candidate human-specific regulatory sequences identifies genetic divergence patterns during evolution of Great Apes
- A genomic dominion with regulatory dependencies on human-specific single-nucleotide changes in Modern Humans
- Genomics-guided drawing of malignant regulatory signatures revealed a pivotal role of human stem cell-associated retroviral sequences (SCARS) and functionally-active hESC enhancers
- Genomics-guided molecular maps of coronavirus targets in human cells: a path toward the repurposing of existing drugs to mitigate the pandemic
- Genomic regulatory architecture of human embryo retroviral LTR elements affecting evolution, development, and pathophysiology of Modern Humans