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Cytochrome c1 exhibits two binding sites for cytochrome c in plants
Authors:Blas Moreno-Beltrán  Antonio Díaz-Quintana  Katiuska González-Arzola  Adrián Velázquez-Campoy  Miguel A De la Rosa  Irene Díaz-Moreno
Institution:1. Instituto de Bioquímica Vegetal y Fotosíntesis, cicCartuja, Universidad de Sevilla - CSIC, Avda. Américo Vespucio 49, Sevilla 41092, Spain;2. Institute of Biocomputation and Physics of Complex Systems (BIFI)-Joint Unit BIFI-IQFR (CSIC), Universidad de Zaragoza, Mariano Esquillor s/n, 50018, Zaragoza, Spain;3. Departamento de Bioquímica y Biología Molecular y Celular, Universidad de Zaragoza, Pedro Cerbuna 12, 50009, Zaragoza, Spain;4. Fundacion ARAID, Government of Aragon, Maria de Luna 11, 50018, Zaragoza, Spain
Abstract:In plants, channeling of cytochrome c molecules between complexes III and IV has been purported to shuttle electrons within the supercomplexes instead of carrying electrons by random diffusion across the intermembrane bulk phase. However, the mode plant cytochrome c behaves inside a supercomplex such as the respirasome, formed by complexes I, III and IV, remains obscure from a structural point of view. Here, we report ab-initio Brownian dynamics calculations and nuclear magnetic resonance-driven docking computations showing two binding sites for plant cytochrome c at the head soluble domain of plant cytochrome c1, namely a non-productive (or distal) site with a long heme-to-heme distance and a functional (or proximal) site with the two heme groups close enough as to allow electron transfer. As inferred from isothermal titration calorimetry experiments, the two binding sites exhibit different equilibrium dissociation constants, for both reduced and oxidized species, that are all within the micromolar range, thus revealing the transient nature of such a respiratory complex. Although the docking of cytochrome c at the distal site occurs at the interface between cytochrome c1 and the Rieske subunit, it is fully compatible with the complex III structure. In our model, the extra distal site in complex III could indeed facilitate the functional cytochrome c channeling towards complex IV by building a “floating boat bridge” of cytochrome c molecules (between complexes III and IV) in plant respirasome.
Keywords:AIRs  ambiguous interaction restraints  AU  analytical ultracentrifugation  BD  Brownian dynamics  Cc  cytochrome c  Cc1  cytochrome c1  Cc2  cytochrome c2  Cbc1  cytochrome bc1 complex  CcO  cytochrome c oxidase complex  Cf  cytochrome f  CD  circular dichroism  CSP  chemical-shift perturbations  ET  electron transfer  GALDH  l-galactono-1  4-lactone dehydrogenase  HADDOCK  High Ambiguity Driven Docking approach  HSQC  heteronuclear single-quantum correlation  ITC  isothermal titration calorimetry  MD  molecular dynamics  NMR  nuclear magnetic resonance  PCA  principal component analysis  pCc  plant cytochrome c  pCcred  reduced plant cytochrome c  pCcox  oxidized plant cytochrome c  pCc1  plant Cytochrome c1  pCc1ox  oxidized plant cytochrome c1  pCc1red  reduced plant cytochrome c1  pRieske  plant Rieske
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