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    A novel mechanism of functional cooperativity regulation by thiol redox status in a dimeric inorganic pyrophosphatase

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    Authors
    Costa, E.P.
    Façanha, A.R.
    Cruz, C.S.
    Silva, J.N.
    Machado, J.A.
    Carvalho, G.M.
    Fernandes, M.R.
    Martins, R.
    Campos, E.
    Romeiro, N.C.
    Githaka, Naftaly W.
    Konnai, S.
    Ohashi, K.
    Vaz Jr., I.S.
    Logullo, C.
    Date Issued
    2017-01
    Language
    en
    Type
    Journal Article
    Accessibility
    Limited Access
    Usage rights
    Copyrighted; all rights reserved
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    Citation
    Costa, E.P., Façanha, A.R., Cruz, C.S., Silva, J.N., Machado, J.A., Carvalho, G.M., Fernandes, M.R., Martins, R., Campos, E., Romeiro, N.C., Githaka, N.W., Konnai, S., Ohashi, K., Vaz Jr., I.S. and Logullo, C. 2017. A novel mechanism of functional cooperativity regulation by thiol redox status in a dimeric inorganic pyrophosphatase. Biochimica et Biophysica Acta – General Subjects 1861(1): 2922–2933.
    Permanent link to cite or share this item: https://hdl.handle.net/10568/77359
    DOI: https://doi.org/10.1016/j.bbagen.2016.09.017
    Abstract/Description
    Inorganic PPases are essential metal-dependent enzymes that convert pyrophosphate into orthophosphate. This reaction is quite exergonic and provides a thermodynamic advantage for many ATP-driven biosynthetic reactions. We have previously demonstrated that cytosolic PPase from R. microplus embryos is an atypical Family I PPase. Here, we explored the functional role of the cysteine residues located at the homodimer interface, its redox sensitivity, as well as structural and kinetic parameters related to thiol redox status. Methods In this work, we used prokaryotic expression system for recombinant protein overexpression, biochemical approaches to assess kinetic parameters, ticks embryos and computational approaches to analyze and predict critical amino acids as well as physicochemical properties at the homodimer interface. Results Cysteine 339, located at the homodimer interface, was found to play an important role in stabilizing a functional cooperativity between the two catalytic sites, as indicated by kinetics and Hill coefficient analyses of the WT-rBmPPase. WT-rBmPPase activity was up-regulated by physiological antioxidant molecules such as reduced glutathione and ascorbic acid. On the other hand, hydrogen peroxide at physiological concentrations decreased the affinity of WT-rBmPPase for its substrate (PPi), probably by inducing disulfide bridge formation. Conclusions Our results provide a new angle in understanding redox control by disulfide bonds formation in enzymes from hematophagous arthropods. The reversibility of the down-regulation is dependent on hydrophobic interactions at the dimer interface. General significance This study is the first report on a soluble PPase where dimeric cooperativity is regulated by a redox mechanism, according to cysteine redox status.
    CGIAR Author ORCID iDs
    Naftaly Githakahttps://orcid.org/0000-0003-4530-7164
    AGROVOC Keywords
    animal diseases
    Subjects
    ANIMAL DISEASES;
    Organizations Affiliated to the Authors
    Universidade Estadual do Norte Fluminense Darcy Ribeiro; Universidade Federal do Rio de Janeiro; International Livestock Research Institute; Hokkaido University; Universidade Federal do Rio Grande do Sul
    Collections
    • ILRI animal and human health program outputs [1547]
    • ILRI articles in journals [6643]
    • ILRI Tick unit [62]

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