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(Referência obtida automaticamente do Web of Science, por meio da informação sobre o financiamento pela FAPESP e o número do processo correspondente, incluída na publicação pelos autores.)

Structural, biochemical and biophysical characterization of recombinant human fumarate hydratase

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Autor(es):
Ajalla Aleixo, Mariana A. [1] ; Rangel, Victor L. [1] ; Rustiguel, Joane K. [2, 1] ; de Padua, Ricardo A. P. [1, 3] ; Nonato, Maria Cristina [1]
Número total de Autores: 5
Afiliação do(s) autor(es):
[1] Univ Sao Paulo, Fac Ciencias Farmaceut Ribeirao Preto, Lab Cristalog Proteinas, Ribeirao Preto - Brazil
[2] Brazilian Ctr Res Energy & Mat CNPEM, Brazilian Biosci Natl Lab LNBio, Sao Paulo - Brazil
[3] Brandeis Univ, Howard Hughes Med Inst, Dept Biochem, Waltham, MA 02254 - USA
Número total de Afiliações: 3
Tipo de documento: Artigo Científico
Fonte: FEBS Journal; v. 286, n. 10, p. 1925-1940, MAY 2019.
Citações Web of Science: 1
Resumo

Fumarate hydratases (FHs, fumarases) catalyze the reversible conversion of fumarate into l-malate. FHs are distributed over all organisms and play important roles in energy production, DNA repair and as tumor suppressors. They are very important targets both in the study of human metabolic disorders and as potential therapeutic targets in neglected tropical diseases and tuberculosis. In this study, human FH (HsFH) was characterized by using enzyme kinetics, differential scanning fluorimetry and X-ray crystallography. For the first time, the contribution of both substrates was analyzed simultaneously in a single kinetics assay allowing to quantify the contribution of the reversible reaction for kinetics. The protein was crystallized in the spacegroup C222(1), with unit-cell parameters a=125.43, b=148.01, c=129.76. The structure was solved by molecular replacement and refined at 1.8 angstrom resolution. In our study, a HEPES molecule was found to interact with HsFH at the C-terminal domain (Domain 3), previously described as involved in allosteric regulation, through a set of interactions that includes Lys 467. HsFH catalytic efficiency is higher when in the presence of HEPES. Mutations at residue 467 have already been implicated in genetic disorders caused by FH deficiency, suggesting that the HEPES-binding site may be important for enzyme kinetics. This study contributes to the understanding of the HsFH structure and how it correlates with mutation, enzymatic deficiency and pathology. (AU)

Processo FAPESP: 12/25075-0 - Desenvolvimento de moléculas com ação leishmanicida baseado na inibição seletiva da enzima diidroorotato desidrogenase
Beneficiário:Maria Cristina Nonato
Modalidade de apoio: Auxílio à Pesquisa - Regular