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Microelectrochemical Smart Needle for Real Time Minimally Invasive Oximetry

A variety of brain disorders such as neural injury, brain dysfunction, vascular malformation, and neurodegenerative diseases are associated with abnormal levels of oxygen. Current methods to directly monitor tissue oxygenation in the brain are expensive and invasive, suffering from a lack of accurac...

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Autores principales: Vieira, Daniela, McEachern, Francis, Filippelli, Romina, Dimentberg, Evan, Harvey, Edward J, Merle, Geraldine
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7693384/
https://www.ncbi.nlm.nih.gov/pubmed/33138031
http://dx.doi.org/10.3390/bios10110157
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author Vieira, Daniela
McEachern, Francis
Filippelli, Romina
Dimentberg, Evan
Harvey, Edward J
Merle, Geraldine
author_facet Vieira, Daniela
McEachern, Francis
Filippelli, Romina
Dimentberg, Evan
Harvey, Edward J
Merle, Geraldine
author_sort Vieira, Daniela
collection PubMed
description A variety of brain disorders such as neural injury, brain dysfunction, vascular malformation, and neurodegenerative diseases are associated with abnormal levels of oxygen. Current methods to directly monitor tissue oxygenation in the brain are expensive and invasive, suffering from a lack of accuracy. Electrochemical detection has been used as an invasiveness and cost-effectiveness method, minimizing pain, discomfort, and injury to the patient. In this work, we developed a minimally invasive needle-sensor with a high surface area to monitor O(2) levels in the brain using acupuncture needles. The approach was to directly etch the iron from stainless steel acupuncture needles via a controlled pitting corrosion process, obtaining a high microporous surface area. In order to increase the conductivity and selectivity, we designed and applied for the first time a low-cost coating process using non-toxic chemicals to deposit high surface area carbon nanoparticle, catalytically active laccase, and biocompatible polypyrrole. The physicochemical properties of the materials were characterized as well as their efficacy and viability as probes for the electrochemical detection of PO(2). Our modified needles exhibited efficient electrocatalysis and high selectivity toward O(2), with excellent repeatability. We well engineered a small diagnostic tool to monitor PO(2), minimally invasive, able to monitor real-time O(2) in vivo complex environments.
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spelling pubmed-76933842020-11-28 Microelectrochemical Smart Needle for Real Time Minimally Invasive Oximetry Vieira, Daniela McEachern, Francis Filippelli, Romina Dimentberg, Evan Harvey, Edward J Merle, Geraldine Biosensors (Basel) Article A variety of brain disorders such as neural injury, brain dysfunction, vascular malformation, and neurodegenerative diseases are associated with abnormal levels of oxygen. Current methods to directly monitor tissue oxygenation in the brain are expensive and invasive, suffering from a lack of accuracy. Electrochemical detection has been used as an invasiveness and cost-effectiveness method, minimizing pain, discomfort, and injury to the patient. In this work, we developed a minimally invasive needle-sensor with a high surface area to monitor O(2) levels in the brain using acupuncture needles. The approach was to directly etch the iron from stainless steel acupuncture needles via a controlled pitting corrosion process, obtaining a high microporous surface area. In order to increase the conductivity and selectivity, we designed and applied for the first time a low-cost coating process using non-toxic chemicals to deposit high surface area carbon nanoparticle, catalytically active laccase, and biocompatible polypyrrole. The physicochemical properties of the materials were characterized as well as their efficacy and viability as probes for the electrochemical detection of PO(2). Our modified needles exhibited efficient electrocatalysis and high selectivity toward O(2), with excellent repeatability. We well engineered a small diagnostic tool to monitor PO(2), minimally invasive, able to monitor real-time O(2) in vivo complex environments. MDPI 2020-10-29 /pmc/articles/PMC7693384/ /pubmed/33138031 http://dx.doi.org/10.3390/bios10110157 Text en © 2020 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
Vieira, Daniela
McEachern, Francis
Filippelli, Romina
Dimentberg, Evan
Harvey, Edward J
Merle, Geraldine
Microelectrochemical Smart Needle for Real Time Minimally Invasive Oximetry
title Microelectrochemical Smart Needle for Real Time Minimally Invasive Oximetry
title_full Microelectrochemical Smart Needle for Real Time Minimally Invasive Oximetry
title_fullStr Microelectrochemical Smart Needle for Real Time Minimally Invasive Oximetry
title_full_unstemmed Microelectrochemical Smart Needle for Real Time Minimally Invasive Oximetry
title_short Microelectrochemical Smart Needle for Real Time Minimally Invasive Oximetry
title_sort microelectrochemical smart needle for real time minimally invasive oximetry
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7693384/
https://www.ncbi.nlm.nih.gov/pubmed/33138031
http://dx.doi.org/10.3390/bios10110157
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