Aicardi-Goutières syndrome, a rare genetic disorder characterized by calcification of basal ganglia, results in psychomotor delays and epilepsy states from the early months of children life. This disease is caused by mutations in seven different genes encoding proteins implicated in the metabolism of nucleic acids, including SAMHD1. Twenty SAMHD1 gene variants have been discovered and in this work, a structural characterization of the SAMHD1 Aicardi-Goutières Arg145Gln mutant is reported by classical molecular dynamics simulation. Four simulations have been carried out and compared. Two concerning the wild-type SAMHD1 form in presence and absence of cofactors, in order to explain the role of cofactors in the SAMHD1 assembly/disassembly process and, two concerning the Arg145Gln mutant, also in presence and absence of cofactors, in order to have an accurate comparison with the corresponding native forms. Results show the importance of native residue Arg145 in maintaining the tetramer, interacting with GTP cofactor inside allosteric sites. Replacement of arginine in glutamine gives rise to a loosening of GTP-protein interactions, when cofactors are present in allosteric sites, whilst in absence of cofactors, the occurrence of intra and inter-chain interactions is observed in the mutant, not seen in the native enzyme, making energetically unfavourable the tetramerization process.

Cardamone, F., Falconi, M., Desideri, A. (2018). Molecular dynamics characterization of the SAMHD1 Aicardi–Goutières Arg145Gln mutant: structural determinants for the impaired tetramerization. JOURNAL OF COMPUTER-AIDED MOLECULAR DESIGN, 32(5), 623-632 [10.1007/s10822-018-0115-0].

Molecular dynamics characterization of the SAMHD1 Aicardi–Goutières Arg145Gln mutant: structural determinants for the impaired tetramerization

CARDAMONE, FRANCESCA;Falconi M.;Desideri A.
2018-01-01

Abstract

Aicardi-Goutières syndrome, a rare genetic disorder characterized by calcification of basal ganglia, results in psychomotor delays and epilepsy states from the early months of children life. This disease is caused by mutations in seven different genes encoding proteins implicated in the metabolism of nucleic acids, including SAMHD1. Twenty SAMHD1 gene variants have been discovered and in this work, a structural characterization of the SAMHD1 Aicardi-Goutières Arg145Gln mutant is reported by classical molecular dynamics simulation. Four simulations have been carried out and compared. Two concerning the wild-type SAMHD1 form in presence and absence of cofactors, in order to explain the role of cofactors in the SAMHD1 assembly/disassembly process and, two concerning the Arg145Gln mutant, also in presence and absence of cofactors, in order to have an accurate comparison with the corresponding native forms. Results show the importance of native residue Arg145 in maintaining the tetramer, interacting with GTP cofactor inside allosteric sites. Replacement of arginine in glutamine gives rise to a loosening of GTP-protein interactions, when cofactors are present in allosteric sites, whilst in absence of cofactors, the occurrence of intra and inter-chain interactions is observed in the mutant, not seen in the native enzyme, making energetically unfavourable the tetramerization process.
2018
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore BIO/11 - BIOLOGIA MOLECOLARE
English
Allosteric site; Classical all-atomistic molecular dynamics simulation; Genetic disease; Hydrogen bond; Oligomerization; Salt bridge
Cardamone, F., Falconi, M., Desideri, A. (2018). Molecular dynamics characterization of the SAMHD1 Aicardi–Goutières Arg145Gln mutant: structural determinants for the impaired tetramerization. JOURNAL OF COMPUTER-AIDED MOLECULAR DESIGN, 32(5), 623-632 [10.1007/s10822-018-0115-0].
Cardamone, F; Falconi, M; Desideri, A
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/201314
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