Prediction of Mycobacterium tuberculosis pyrazinamidase function based on structural stability, physicochemical and geometrical descriptors.

<h4>Background</h4>Pyrazinamide is an important drug against the latent stage of tuberculosis and is used in both first- and second-line treatment regimens. Pyrazinamide-susceptibility test usually takes a week to have a diagnosis to guide initial therapy, implying a delay in receiving a...

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Main Authors: Rydberg Roman Supo-Escalante, Aldhair Médico, Eduardo Gushiken, Gustavo E Olivos-Ramírez, Yaneth Quispe, Fiorella Torres, Melissa Zamudio, Ricardo Antiparra, L Mario Amzel, Robert H Gilman, Patricia Sheen, Mirko Zimic
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2020-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0235643
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spelling doaj-761d588830c7427ebc73afcaf6cea3fe2021-03-04T11:15:30ZengPublic Library of Science (PLoS)PLoS ONE1932-62032020-01-01157e023564310.1371/journal.pone.0235643Prediction of Mycobacterium tuberculosis pyrazinamidase function based on structural stability, physicochemical and geometrical descriptors.Rydberg Roman Supo-EscalanteAldhair MédicoEduardo GushikenGustavo E Olivos-RamírezYaneth QuispeFiorella TorresMelissa ZamudioRicardo AntiparraL Mario AmzelRobert H GilmanPatricia SheenMirko Zimic<h4>Background</h4>Pyrazinamide is an important drug against the latent stage of tuberculosis and is used in both first- and second-line treatment regimens. Pyrazinamide-susceptibility test usually takes a week to have a diagnosis to guide initial therapy, implying a delay in receiving appropriate therapy. The continued increase in multi-drug resistant tuberculosis and the prevalence of pyrazinamide resistance in several countries makes the development of assays for prompt identification of resistance necessary. The main cause of pyrazinamide resistance is the impairment of pyrazinamidase function attributed to mutations in the promoter and/or pncA coding gene. However, not all pncA mutations necessarily affect the pyrazinamidase function.<h4>Objective</h4>To develop a methodology to predict pyrazinamidase function from detected mutations in the pncA gene.<h4>Methods</h4>We measured the catalytic constant (kcat), KM, enzymatic efficiency, and enzymatic activity of 35 recombinant mutated pyrazinamidase and the wild type (Protein Data Bank ID = 3pl1). From all the 3D modeled structures, we extracted several predictors based on three categories: structural stability (estimated by normal mode analysis and molecular dynamics), physicochemical, and geometrical characteristics. We used a stepwise Akaike's information criterion forward multiple log-linear regression to model each kinetic parameter with each category of predictors. We also developed weighted models combining the three categories of predictive models for each kinetic parameter. We tested the robustness of the predictive ability of each model by 6-fold cross-validation against random models.<h4>Results</h4>The stability, physicochemical, and geometrical descriptors explained most of the variability (R2) of the kinetic parameters. Our models are best suited to predict kcat, efficiency, and activity based on the root-mean-square error of prediction of the 6-fold cross-validation.<h4>Conclusions</h4>This study shows a quick approach to predict the pyrazinamidase function only from the pncA sequence when point mutations are present. This can be an important tool to detect pyrazinamide resistance.https://doi.org/10.1371/journal.pone.0235643
collection DOAJ
language English
format Article
sources DOAJ
author Rydberg Roman Supo-Escalante
Aldhair Médico
Eduardo Gushiken
Gustavo E Olivos-Ramírez
Yaneth Quispe
Fiorella Torres
Melissa Zamudio
Ricardo Antiparra
L Mario Amzel
Robert H Gilman
Patricia Sheen
Mirko Zimic
spellingShingle Rydberg Roman Supo-Escalante
Aldhair Médico
Eduardo Gushiken
Gustavo E Olivos-Ramírez
Yaneth Quispe
Fiorella Torres
Melissa Zamudio
Ricardo Antiparra
L Mario Amzel
Robert H Gilman
Patricia Sheen
Mirko Zimic
Prediction of Mycobacterium tuberculosis pyrazinamidase function based on structural stability, physicochemical and geometrical descriptors.
PLoS ONE
author_facet Rydberg Roman Supo-Escalante
Aldhair Médico
Eduardo Gushiken
Gustavo E Olivos-Ramírez
Yaneth Quispe
Fiorella Torres
Melissa Zamudio
Ricardo Antiparra
L Mario Amzel
Robert H Gilman
Patricia Sheen
Mirko Zimic
author_sort Rydberg Roman Supo-Escalante
title Prediction of Mycobacterium tuberculosis pyrazinamidase function based on structural stability, physicochemical and geometrical descriptors.
title_short Prediction of Mycobacterium tuberculosis pyrazinamidase function based on structural stability, physicochemical and geometrical descriptors.
title_full Prediction of Mycobacterium tuberculosis pyrazinamidase function based on structural stability, physicochemical and geometrical descriptors.
title_fullStr Prediction of Mycobacterium tuberculosis pyrazinamidase function based on structural stability, physicochemical and geometrical descriptors.
title_full_unstemmed Prediction of Mycobacterium tuberculosis pyrazinamidase function based on structural stability, physicochemical and geometrical descriptors.
title_sort prediction of mycobacterium tuberculosis pyrazinamidase function based on structural stability, physicochemical and geometrical descriptors.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2020-01-01
description <h4>Background</h4>Pyrazinamide is an important drug against the latent stage of tuberculosis and is used in both first- and second-line treatment regimens. Pyrazinamide-susceptibility test usually takes a week to have a diagnosis to guide initial therapy, implying a delay in receiving appropriate therapy. The continued increase in multi-drug resistant tuberculosis and the prevalence of pyrazinamide resistance in several countries makes the development of assays for prompt identification of resistance necessary. The main cause of pyrazinamide resistance is the impairment of pyrazinamidase function attributed to mutations in the promoter and/or pncA coding gene. However, not all pncA mutations necessarily affect the pyrazinamidase function.<h4>Objective</h4>To develop a methodology to predict pyrazinamidase function from detected mutations in the pncA gene.<h4>Methods</h4>We measured the catalytic constant (kcat), KM, enzymatic efficiency, and enzymatic activity of 35 recombinant mutated pyrazinamidase and the wild type (Protein Data Bank ID = 3pl1). From all the 3D modeled structures, we extracted several predictors based on three categories: structural stability (estimated by normal mode analysis and molecular dynamics), physicochemical, and geometrical characteristics. We used a stepwise Akaike's information criterion forward multiple log-linear regression to model each kinetic parameter with each category of predictors. We also developed weighted models combining the three categories of predictive models for each kinetic parameter. We tested the robustness of the predictive ability of each model by 6-fold cross-validation against random models.<h4>Results</h4>The stability, physicochemical, and geometrical descriptors explained most of the variability (R2) of the kinetic parameters. Our models are best suited to predict kcat, efficiency, and activity based on the root-mean-square error of prediction of the 6-fold cross-validation.<h4>Conclusions</h4>This study shows a quick approach to predict the pyrazinamidase function only from the pncA sequence when point mutations are present. This can be an important tool to detect pyrazinamide resistance.
url https://doi.org/10.1371/journal.pone.0235643
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