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1.
Int J Biol Macromol ; 273(Pt 2): 133086, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38871105

ABSTRACT

Variants found in the respiratory complex I (CI) subunit genes encoded by mitochondrial DNA can cause severe genetic diseases. However, it is difficult to establish a priori whether a single or a combination of CI variants may impact oxidative phosphorylation. Here we propose a computational approach based on coarse-grained molecular dynamics simulations aimed at investigating new CI variants. One of the primary CI variants associated with the Leber hereditary optic neuropathy (m.14484T>C/MT-ND6) was used as a test case and was investigated alone or in combination with two additional rare CI variants whose role remains uncertain. We found that the primary variant positioned in the E-channel region, which is fundamental for CI function, stiffens the enzyme dynamics. Moreover, a new mechanism for the transition between π- and α-conformation in the helix carrying the primary variant is proposed. This may have implications for the E-channel opening/closing mechanism. Finally, our findings show that one of the rare variants, located next to the primary one, further worsens the stiffening, while the other rare variant does not affect CI function. This approach may be extended to other variants candidate to exert a pathogenic impact on CI dynamics, or to investigate the interaction of multiple variants.


Subject(s)
Electron Transport Complex I , Molecular Dynamics Simulation , Mutation, Missense , Electron Transport Complex I/genetics , Electron Transport Complex I/chemistry , Electron Transport Complex I/metabolism , Humans , Optic Atrophy, Hereditary, Leber/genetics , Computational Biology/methods , NADH Dehydrogenase
2.
Molecules ; 27(4)2022 Feb 16.
Article in English | MEDLINE | ID: mdl-35209128

ABSTRACT

The finding that the most common mitochondrial DNA mutation m.11778G>A/MT-ND4 (p.R340H) associated with Leber's hereditary optic neuropathy (LHON) induces rotenone resistance has produced a long-standing debate, because it contrasts structural evidence showing that the ND4 subunit is far away from the quinone-reaction site in complex I, where rotenone acts. However, recent cryo-electron microscopy data revealed that rotenone also binds to the ND4 subunit. We investigated the possible structural modifications induced by the LHON mutation and found that its amino acid replacement would disrupt a possible hydrogen bond between native R340 and Q139 in ND4, thereby destabilizing rotenone binding. Our analysis thus explains rotenone resistance in LHON patients as a biochemical signature of its pathogenic effect on complex I.


Subject(s)
Alleles , Amino Acid Substitution , Drug Resistance/genetics , Electron Transport Complex I/genetics , Mutation , Optic Atrophy, Hereditary, Leber/genetics , Rotenone/pharmacology , Amino Acid Sequence , Binding Sites , Conserved Sequence , Electron Transport Complex I/chemistry , Electron Transport Complex I/metabolism , Models, Molecular , Optic Atrophy, Hereditary, Leber/metabolism , Protein Binding , Protein Conformation , Rotenone/chemistry , Structure-Activity Relationship , Uncoupling Agents/pharmacology
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