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Di Luca, Andrea
Publications (5 of 5) Show all publications
Röpke, M., Riepl, D., Saura, P., Di Luca, A., Mühlbauer, M. E., Jussupow, A., . . . Kaila, V. R. I. (2021). Deactivation blocks proton pathways in the mitochondrial complex I. Proceedings of the National Academy of Sciences of the United States of America, 118(29), Article ID e2019498118.
Open this publication in new window or tab >>Deactivation blocks proton pathways in the mitochondrial complex I
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2021 (English)In: Proceedings of the National Academy of Sciences of the United States of America, ISSN 0027-8424, E-ISSN 1091-6490, Vol. 118, no 29, article id e2019498118Article in journal (Refereed) Published
Abstract [en]

Cellular respiration is powered by membrane-bound redox enzymes that convert chemical energy into an electrochemical proton gradient and drive the energy metabolism. By combining large-scale classical and quantum mechanical simulations with cryo-electron microscopy data, we resolve here molecular details of conformational changes linked to proton pumping in the mammalian complex I. Our data suggest that complex I deactivation blocks water-mediated proton transfer between a membrane bound quinone site and proton-pumping modules, decoupling the energy-transduction machinery. We identify a putative gating region at the interface between membrane domain subunits ND1 and ND3/ND4L/ND6 that modulates the proton transfer by conformational changes in transmembrane helices and bulky residues. The region is perturbed by mutations linked to human mitochondrial disorders and is suggested to also undergo conformational changes during catalysis of simpler complex I variants that lack the "active"-to-"deactive" transition. Our findings suggest that conformational changes in transmembrane helices modulate the proton transfer dynamics by wetting/dewetting transitions and provide important functional insight into the mammalian respiratory complex I.

Keywords
cell respiration, bioenergetics, molecular simulations, QM, MM, cryoEM
National Category
Biological Sciences
Identifiers
urn:nbn:se:su:diva-197709 (URN)10.1073/pnas.2019498118 (DOI)000685038100023 ()34272275 (PubMedID)
Available from: 2021-10-13 Created: 2021-10-13 Last updated: 2024-08-21Bibliographically approved
Farinelli, G., Di Luca, A., Kaila, V. R., MacLachlan, M. J. & Tiraferri, A. (2021). Fe-chitosan complexes for oxidative degradation of emerging contaminants in water: Structure, activity, and reaction mechanism. Journal of Hazardous Materials, 408, Article ID 124662.
Open this publication in new window or tab >>Fe-chitosan complexes for oxidative degradation of emerging contaminants in water: Structure, activity, and reaction mechanism
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2021 (English)In: Journal of Hazardous Materials, ISSN 0304-3894, E-ISSN 1873-3336, Vol. 408, article id 124662Article in journal (Refereed) Published
Abstract [en]

Versatile and ecofriendly methods to perform oxidations at near-neutral pH are of crucial importance for processes aimed at purifying water. Chitosan, a deacetylated form of chitin, is a promising starting material owing to its biocompatibility and ability to form stable films and complexes with metals. Here, we report a novel chitosanbased organometallic complex that was tested both as homogeneous and heterogeneous catalyst in the degradation of contaminants of emerging concern in water. The stoichiometry of the complex was experimentally verified with different metals, namely, Cu(II), Fe(III), Fe(II), Co(II), Pd(II), and Mn(II), and we identified the chitosan-Fe(III) complex as the most efficient catalyst. This complex effectively degraded phenol, triclosan, and 3-chlorophenol in the presence of hydrogen peroxide. A putative ferryl-mediated reaction mechanism is proposed based on experimental data, density functional theory calculations, and kinetic modeling. Finally, a film of the chitosan-Fe(III) complex was synthesized and proven a promising supported heterogeneous catalyst for water purification.

Keywords
Chitosan, Contaminants of emerging concern, Water treatment, Ferryl, Catalysis
National Category
Chemical Sciences Environmental Biotechnology
Identifiers
urn:nbn:se:su:diva-192018 (URN)10.1016/j.jhazmat.2020.124662 (DOI)000620381800006 ()33257118 (PubMedID)
Available from: 2021-04-14 Created: 2021-04-14 Last updated: 2022-02-25Bibliographically approved
Di Luca, A. & Kaila, V. R. (2021). Molecular strain in the active/deactive-transition modulates domain coupling in respiratory complex I. Biochimica et Biophysica Acta - Bioenergetics, 1862(5), Article ID 148382.
Open this publication in new window or tab >>Molecular strain in the active/deactive-transition modulates domain coupling in respiratory complex I
2021 (English)In: Biochimica et Biophysica Acta - Bioenergetics, ISSN 0005-2728, E-ISSN 1879-2650, Vol. 1862, no 5, article id 148382Article in journal (Refereed) Published
Abstract [en]

Complex I functions as a primary redox-driven proton pump in aerobic respiratory chains, establishing a proton motive force that powers ATP synthesis and active transport. Recent cryo-electron microscopy (cryo-EM) experiments have resolved the mammalian complex I in the biomedically relevant active (A) and deactive (D) states (Zhu et al., 2016; Fiedorczuk et al., 2016; Agip et al., 2018 [1-3]) that could regulate enzyme turnover, but it still remains unclear how the conformational state and activity are linked. We show here how global motion along the A/D transition accumulates molecular strain at specific coupling regions important for both redox chemistry and proton pumping. Our data suggest that the A/D motion modulates force propagation pathways between the substrate-binding site and the proton pumping machinery that could alter electrostatic and conformational coupling across large distances. Our findings provide a molecular basis to understand how global protein dynamics can modulate the biological activity of large molecular complexes.

Keywords
Bioenergetics, NADH:ubiquinone oxidoreductase, Network models, Active/deactive transition, Molecular strain
National Category
Biological Sciences
Identifiers
urn:nbn:se:su:diva-193027 (URN)10.1016/j.bbabio.2021.148382 (DOI)000636042900003 ()33513365 (PubMedID)
Available from: 2021-05-11 Created: 2021-05-11 Last updated: 2022-02-25Bibliographically approved
Bridges, H. R., Fedor, J. G., Blaza, J. N., Di Luca, A., Jussupow, A., Jarman, O. D., . . . Hirst, J. (2020). Structure of inhibitor-bound mammalian complex I. Nature Communications, 11(1), Article ID 5261.
Open this publication in new window or tab >>Structure of inhibitor-bound mammalian complex I
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2020 (English)In: Nature Communications, E-ISSN 2041-1723, Vol. 11, no 1, article id 5261Article in journal (Refereed) Published
Abstract [en]

Respiratory complex I (NADH:ubiquinone oxidoreductase) captures the free energy from oxidising NADH and reducing ubiquinone to drive protons across the mitochondrial inner membrane and power oxidative phosphorylation. Recent cryo-EM analyses have produced near-complete models of the mammalian complex, but leave the molecular principles of its long-range energy coupling mechanism open to debate. Here, we describe the 3.0-Ao resolution cryo-EM structure of complex I from mouse heart mitochondria with a substrate-like inhibitor, piericidin A, bound in the ubiquinone-binding active site. We combine our structural analyses with both functional and computational studies to demonstrate competitive inhibitor binding poses and provide evidence that two inhibitor molecules bind end-to-end in the long substrate binding channel. Our findings reveal information about the mechanisms of inhibition and substrate reduction that are central for understanding the principles of energy transduction in mammalian complex I. The respiratory complex I (NADH:ubiquinone oxidoreductase) is a large redox-driven proton pump that initiates respiration in mitochondria. Here, the authors present the 3.0 angstrom cryo-EM structure of complex I from mouse heart mitochondria with the ubiquinone-analogue inhibitor piericidin A bound in the active site and with kinetic measurements and MD simulations they further show that this inhibitor acts competitively against the native ubiquinone-10 substrate.

National Category
Biological Sciences
Identifiers
urn:nbn:se:su:diva-187528 (URN)10.1038/s41467-020-18950-3 (DOI)000582056600024 ()33067417 (PubMedID)
Available from: 2020-12-11 Created: 2020-12-11 Last updated: 2023-03-28Bibliographically approved
Mühlbauer, M. E., Saura, P., Nuber, F., Di Luca, A., Friedrich, T. & Kaila, V. R. (2020). Water-Gated Proton Transfer Dynamics in Respiratory Complex I. Journal of the American Chemical Society, 142(32), 13718-13728
Open this publication in new window or tab >>Water-Gated Proton Transfer Dynamics in Respiratory Complex I
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2020 (English)In: Journal of the American Chemical Society, ISSN 0002-7863, E-ISSN 1520-5126, Vol. 142, no 32, p. 13718-13728Article in journal (Refereed) Published
Abstract [en]

The respiratory complex I transduces redox energy into an electrochemical proton gradient in aerobic respiratory chains, powering energy-requiring processes in the cell. However, despite recently resolved molecular structures, the mechanism of this gigantic enzyme remains poorly understood. By combining large-scale quantum and classical simulations with site-directed mutagenesis and biophysical experiments, we show here how the conformational state of buried ion-pairs and water molecules control the protonation dynamics in the membrane domain of complex I and establish evolutionary conserved long-range coupling elements. We suggest that an electrostatic wave propagates in forward and reverse directions across the 200 angstrom long membrane domain during enzyme turnover, without significant dissipation of energy. Our findings demonstrate molecular principles that enable efficient long-range proton-electron coupling (PCET) and how perturbation of this PCET machinery may lead to development of mitochondrial disease.

National Category
Chemical Sciences
Identifiers
urn:nbn:se:su:diva-185370 (URN)10.1021/jacs.0c02789 (DOI)000562942200014 ()32643371 (PubMedID)
Available from: 2020-10-14 Created: 2020-10-14 Last updated: 2022-02-25Bibliographically approved
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