Cargando…

Mutation of Aspartate 238 in FAD Synthase Isoform 6 Increases the Specific Activity by Weakening the FAD Binding

FAD synthase (FADS, or FMN:ATP adenylyl transferase) coded by the FLAD1 gene is the last enzyme in the pathway of FAD synthesis. The mitochondrial isoform 1 and the cytosolic isoform 2 are characterized by the following two domains: the C-terminal PAPS domain (FADSy) performing FAD synthesis and pyr...

Descripción completa

Detalles Bibliográficos
Autores principales: Leone, Piero, Galluccio, Michele, Quarta, Stefano, Anoz-Carbonell, Ernesto, Medina, Milagros, Indiveri, Cesare, Barile, Maria
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6941110/
https://www.ncbi.nlm.nih.gov/pubmed/31835305
http://dx.doi.org/10.3390/ijms20246203
_version_ 1783484487253884928
author Leone, Piero
Galluccio, Michele
Quarta, Stefano
Anoz-Carbonell, Ernesto
Medina, Milagros
Indiveri, Cesare
Barile, Maria
author_facet Leone, Piero
Galluccio, Michele
Quarta, Stefano
Anoz-Carbonell, Ernesto
Medina, Milagros
Indiveri, Cesare
Barile, Maria
author_sort Leone, Piero
collection PubMed
description FAD synthase (FADS, or FMN:ATP adenylyl transferase) coded by the FLAD1 gene is the last enzyme in the pathway of FAD synthesis. The mitochondrial isoform 1 and the cytosolic isoform 2 are characterized by the following two domains: the C-terminal PAPS domain (FADSy) performing FAD synthesis and pyrophosphorolysis; the N-terminal molybdopterin-binding domain (FADHy) performing a Co(++)/K(+)-dependent FAD hydrolysis. Mutations in FLAD1 gene are responsible for riboflavin responsive and non-responsive multiple acyl-CoA dehydrogenases and combined respiratory chain deficiency. In patients harboring frameshift mutations, a shorter isoform (hFADS6) containing the sole FADSy domain is produced representing an emergency protein. With the aim to ameliorate its function we planned to obtain an engineered more efficient hFADS6. Thus, the D238A mutant, resembling the D181A FMNAT “supermutant” of C. glabrata, was overproduced and purified. Kinetic analysis of this enzyme highlighted a general increase of K(m), while the k(cat) was two-fold higher than that of WT. The data suggest that the FAD synthesis rate can be increased. Additional modifications could be performed to further improve the synthesis of FAD. These results correlate with previous data produced in our laboratory, and point towards the following proposals (i) FAD release is the rate limiting step of the catalytic cycle and (ii) ATP and FMN binding sites are synergistically connected.
format Online
Article
Text
id pubmed-6941110
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-69411102020-01-09 Mutation of Aspartate 238 in FAD Synthase Isoform 6 Increases the Specific Activity by Weakening the FAD Binding Leone, Piero Galluccio, Michele Quarta, Stefano Anoz-Carbonell, Ernesto Medina, Milagros Indiveri, Cesare Barile, Maria Int J Mol Sci Article FAD synthase (FADS, or FMN:ATP adenylyl transferase) coded by the FLAD1 gene is the last enzyme in the pathway of FAD synthesis. The mitochondrial isoform 1 and the cytosolic isoform 2 are characterized by the following two domains: the C-terminal PAPS domain (FADSy) performing FAD synthesis and pyrophosphorolysis; the N-terminal molybdopterin-binding domain (FADHy) performing a Co(++)/K(+)-dependent FAD hydrolysis. Mutations in FLAD1 gene are responsible for riboflavin responsive and non-responsive multiple acyl-CoA dehydrogenases and combined respiratory chain deficiency. In patients harboring frameshift mutations, a shorter isoform (hFADS6) containing the sole FADSy domain is produced representing an emergency protein. With the aim to ameliorate its function we planned to obtain an engineered more efficient hFADS6. Thus, the D238A mutant, resembling the D181A FMNAT “supermutant” of C. glabrata, was overproduced and purified. Kinetic analysis of this enzyme highlighted a general increase of K(m), while the k(cat) was two-fold higher than that of WT. The data suggest that the FAD synthesis rate can be increased. Additional modifications could be performed to further improve the synthesis of FAD. These results correlate with previous data produced in our laboratory, and point towards the following proposals (i) FAD release is the rate limiting step of the catalytic cycle and (ii) ATP and FMN binding sites are synergistically connected. MDPI 2019-12-09 /pmc/articles/PMC6941110/ /pubmed/31835305 http://dx.doi.org/10.3390/ijms20246203 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Leone, Piero
Galluccio, Michele
Quarta, Stefano
Anoz-Carbonell, Ernesto
Medina, Milagros
Indiveri, Cesare
Barile, Maria
Mutation of Aspartate 238 in FAD Synthase Isoform 6 Increases the Specific Activity by Weakening the FAD Binding
title Mutation of Aspartate 238 in FAD Synthase Isoform 6 Increases the Specific Activity by Weakening the FAD Binding
title_full Mutation of Aspartate 238 in FAD Synthase Isoform 6 Increases the Specific Activity by Weakening the FAD Binding
title_fullStr Mutation of Aspartate 238 in FAD Synthase Isoform 6 Increases the Specific Activity by Weakening the FAD Binding
title_full_unstemmed Mutation of Aspartate 238 in FAD Synthase Isoform 6 Increases the Specific Activity by Weakening the FAD Binding
title_short Mutation of Aspartate 238 in FAD Synthase Isoform 6 Increases the Specific Activity by Weakening the FAD Binding
title_sort mutation of aspartate 238 in fad synthase isoform 6 increases the specific activity by weakening the fad binding
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6941110/
https://www.ncbi.nlm.nih.gov/pubmed/31835305
http://dx.doi.org/10.3390/ijms20246203
work_keys_str_mv AT leonepiero mutationofaspartate238infadsynthaseisoform6increasesthespecificactivitybyweakeningthefadbinding
AT gallucciomichele mutationofaspartate238infadsynthaseisoform6increasesthespecificactivitybyweakeningthefadbinding
AT quartastefano mutationofaspartate238infadsynthaseisoform6increasesthespecificactivitybyweakeningthefadbinding
AT anozcarbonellernesto mutationofaspartate238infadsynthaseisoform6increasesthespecificactivitybyweakeningthefadbinding
AT medinamilagros mutationofaspartate238infadsynthaseisoform6increasesthespecificactivitybyweakeningthefadbinding
AT indivericesare mutationofaspartate238infadsynthaseisoform6increasesthespecificactivitybyweakeningthefadbinding
AT barilemaria mutationofaspartate238infadsynthaseisoform6increasesthespecificactivitybyweakeningthefadbinding