ArticleGenome biology and evolution2024
The Rapid Evolution of De Novo Proteins in Structure and Complex.
Article in Genome biology and evolution, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 10 papers.
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Who cites it
10 citing papers in PubMed.
- Emergence and evolution of protein-coding de novo genes.Nature reviews. Genetics · 2026Review
- Orthologs of an essential orphan gene vary in their capacities for function and subcellular localization in Drosophila melanogaster.Molecular biology and evolution · 2026Article
- The Bacteriophage VMY 22 Has Enhanced the Stability of Its Functional Proteins via Adaptive Evolution in a Temperature-Varying Environment.Bioengineering (Basel, Switzerland) · 2026Article
- Impact of GC content on de novo gene birth.Nature communications · 2026Article
- Phylostratigraphic Analysis Reveals the Evolutionary Origins and Potential Role of New Genes in the Adaptive Evolution ofInternational journal of molecular sciences · 2026Article
- Structure and Disorder Predictions of Microproteins: Usage, Applications, and Pitfalls.Methods in molecular biology (Clifton, N.J.) · 2026Article
- De Novo Genes: Current Status and Future Goals.Genome biology and evolution · 2025Article
- Functional innovation through new genes as a general evolutionary process.Nature genetics · 2025Review
- Sequence, Structure, and Functional Space of Drosophila De Novo Proteins.Genome biology and evolution · 2024Article
- High-throughput Selection of Human de novo-emerged sORFs with High Folding Potential.Genome biology and evolution · 2024Article
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7 authors.
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Abstract
Recent studies in the rice genome-wide have established that de novo genes, evolving from noncoding sequences, enhance protein diversity through a stepwise process. However, the pattern and rate of their evolution in protein structure over time remain unclear. Here, we addressed these issues within a surprisingly short evolutionary timescale (<1 million years for 97% of Oryza de novo genes) with comparative approaches to gene duplicates. We found that de novo genes evolve faster than gene duplicates in the intrinsically disordered regions (such as random coils), secondary structure elements (such as α helix and β strand), hydrophobicity, and molecular recognition features. In de novo proteins, specifically, we observed an 8% to 14% decay in random coils and intrinsically disordered region lengths and a 2.3% to 6.5% increase in structured elements, hydrophobicity, and molecular recognition features, per million years on average. These patterns of structural evolution align with changes in amino acid composition over time as well. We also revealed higher positive charges but smaller molecular weights for de novo proteins than duplicates. Tertiary structure predictions showed that most de novo proteins, though not typically well folded on their own, readily form low-energy and compact complexes with other proteins facilitated by extensive residue contacts and conformational flexibility, suggesting a faster-binding scenario in de novo proteins to promote interaction. These analyses illuminate a rapid evolution of protein structure in de novo genes in rice genomes, originating from noncoding sequences, highlighting their quick transformation into active, protein complex-forming components within a remarkably short evolutionary timeframe.
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