Systematic study of hybrid triplex topology and stability suggests a general triplex-mediated regulatory mechanism
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Abstract
By combining in silico, biophysical, and in vitro experiments, we decipher the topology, physical, and potential biological properties of hybrid-parallel nucleic acids triplexes, an elusive structure at the basis of life. We found that hybrid triplex topology follows a stability order: r(Py)-d(Pu)·r(Py) > r(Py)-d(Pu)·d(Py) > d(Py)-d(Pu)·d(Py) > d(Py)-d(Pu)·r(Py). The r(Py)-d(Pu)·d(Py) triplex is expected to be preferred in the cell as it avoids the need to open the duplex reducing the torsional stress required for triplex formation in the r(Py)-d(Pu)·r(Py) topology. Upon a massive collection of melting data, we have created the first predictor for hybrid triplex stability. Leveraging this predictor, we conducted a comprehensive scan to assess the likelihood of the human genome and transcriptome to engage in triplex formation. Our findings unveil a remarkable inclination—of both the human genome and transcriptome—to generate hybrid triplex formation, particularly within untranslated (UTRs) and regulatory regions, thereby corroborating the existence of a triplex-mediated regulatory mechanism. Furthermore, we found a correlation between nucleosome linkers and Triplex-forming sequence (TFS) which agree with a putative role of triplexes in arranging chromatin structure.
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Funder: European Research Council; doi: https://doi.org/10.13039/100010663
Funder: MINECO Severo Ochoa Award of Excellence
Funder: Biomolecular and Bioinformatics Resources Platform
Funder: H2020 BioExcel Center of Excellence
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1362-4962
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Juan De La Cierva Fellowship (IJC2019-040468-I/25A04100)
Spanish Ministry of Science (RTI2018-096704-B-100)

