Pablo Toribio Pérez
University of Seville
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Featured researches published by Pablo Toribio Pérez.
Scientific Reports | 2018
Pablo Toribio Pérez; Gloria Huertas; Andrés Maldonado-Jacobi; María Martín; Juan A. Serrano; Alberto Olmo; Paula Daza; Alberto Yúfera
An alternative approach for cell-culture end-point protocols is proposed herein. This new technique is suitable for real-time remote sensing. It is based on Electrical Cell-substrate Impedance Spectroscopy (ECIS) and employs the Oscillation-Based Test (OBT) method. Simple and straightforward circuit blocks form the basis of the proposed measurement system. Oscillation parameters – frequency and amplitude – constitute the outcome, directly correlated with the culture status. A user can remotely track the evolution of cell cultures in real time over the complete experiment through a web tool continuously displaying the acquired data. Experiments carried out with commercial electrodes and a well-established cell line (AA8) are described, obtaining the cell number in real time from growth assays. The electrodes have been electrically characterized along the design flow in order to predict the system performance and the sensitivity curves. Curves for 1-week cell growth are reported. The obtained experimental results validate the proposed OBT for cell-culture characterization. Furthermore, the proposed electrode model provides a good approximation for the cell number and the time evolution of the studied cultures.
Sensors | 2018
Juan A. Serrano; Gloria Huertas; Andrés Maldonado-Jacobi; Alberto Olmo; Pablo Toribio Pérez; María E. Martín; Paula Daza; Alberto Yúfera
This paper proposes a new yet efficient method allowing a significant improvement in the on-line analysis of biological cell growing and evolution. The procedure is based on an empirical-mathematical approach for calibration and fitting of any cell-electrode electrical model. It is valid and can be extrapolated for any type of cellular line used in electrical cell-substrate impedance spectroscopy (ECIS) tests. Parameters of the bioimpedance model, acquired from ECIS experiments, vary for each cell line, which makes obtaining results difficult and—to some extent-renders them inaccurate. We propose a fitting method based on the cell line initial characterization, and carry out subsequent experiments with the same line to approach the percentage of well filling and the cell density (or cell number in the well). To perform our calibration technique, the so-called oscillation-based test (OBT) approach is employed for each cell density. Calibration results are validated by performing other experiments with different concentrations on the same cell line with the same measurement technique. Accordingly, a bioimpedance electrical model of each cell line is determined, which is valid for any further experiment and leading to a more precise electrical model of the electrode-cell system. Furthermore, the model parameters calculated can be also used by any other measurement techniques. Promising experimental outcomes for three different cell-lines have been achieved, supporting the usefulness of this technique.
Sensors | 2018
Pablo Toribio Pérez; Gloria Huertas; Alberto Olmo; Andrés Maldonado-Jacobi; Juan A. Serrano; María E. Martín; Paula Daza; Alberto Yúfera
A smart sensor system for cell culture real-time supervision is proposed, allowing for a significant reduction in human effort applied to this type of assay. The approach converts the cell culture under test into a suitable “biological” oscillator. The system enables the remote acquisition and management of the “biological” oscillation signals through a secure web interface. The indirectly observed biological properties are cell growth and cell number, which are straightforwardly related to the measured bio-oscillation signal parameters, i.e., frequency and amplitude. The sensor extracts the information without complex circuitry for acquisition and measurement, taking advantage of the microcontroller features. A discrete prototype for sensing and remote monitoring is presented along with the experimental results obtained from the performed measurements, achieving the expected performance and outcomes.
international conference on biomedical electronics and devices | 2017
Cristina Martínez-Gómez; Alberto Olmo; Gloria Huertas; Pablo Toribio Pérez; Andrés Maldonado-Jacobi; Alberto Yúfera
This work proposes a method for studying and monitoring in real-time a single cell on a 2D electrode matrix, of great interest in cell motility assays and in the characterization of cancer cell metastasis. A CMOS system proposal for cell location based on occupation maps data generated from Electrical Cell-substrate Impedance Spectroscopy (ECIS) has been developed. From this cell model, obtained from experimental assays data, an algorithm based on analysis of the 8 nearest neighbors has been implemented, allowing the evaluation of the cell center of mass. The path followed by a cell, proposing a Brownian route, has been simulated with the proposed algorithm. The presented results show the success of the approach, with accuracy over 95% in the determination of any coordinate (x, y) from the expected center of mass.
Archive | 2017
Pablo Toribio Pérez; Andrés Maldonado-Jacobi; Antonio J. López; CristinaMartínez; Alberto Olmo; Gloria Huertas; Alberto Yúfera
Manipulus studiorum en recuerdo de la profesora Ana María Aldama Roy, 2014, ISBN 978-84-16020-24-9, págs. 901-910 | 2014
Pablo Toribio Pérez
Pro tantis redditur: homenaje a Juan Gil en Sevilla, 2011, ISBN 978-84-7956-086-7, págs. 437-447 | 2011
Pablo Toribio Pérez
BIODEVICES | 2018
Yaiza Yuste; Juan A. Serrano; Alberto Olmo; Andrés Maldonado-Jacobi; Pablo Toribio Pérez; Gloria Huertas; Sheila Pereira; Fernando de la Portilla; Alberto Yúfera
BIODEVICES | 2018
Juan A. Serrano; Pablo Toribio Pérez; Andrés Maldonado; María Martín; Alberto Olmo; Paula Daza; Gloria Huertas; Alberto Yúfera
Journal of Computational Chemistry | 2016
Juan A. Castro; Alberto Olmo; Pablo Toribio Pérez; Alberto Yúfera