Electrical Stimulation of C6 Glia-Precursor Cells In Vitro Differentially Modulates Gene Expression Related to Chronic Pain Pathways
Glial cells comprise the majority of cells in the central nervous system and exhibit diverse functions including the development of persistent neuropathic pain. While earlier theories have proposed that the applied electric field specifically affects neurons, it has been demonstrated that electrical...
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doaj-a14234ce35464e51821e7f948181b31a2020-11-25T01:35:04ZengMDPI AGBrain Sciences2076-34252019-10-0191130310.3390/brainsci9110303brainsci9110303Electrical Stimulation of C6 Glia-Precursor Cells In Vitro Differentially Modulates Gene Expression Related to Chronic Pain PathwaysRicardo Vallejo0David C. Platt1Jonathan A. Rink2Marjorie A. Jones3Courtney A. Kelley4Ashim Gupta5Cynthia L. Cass6Kirk Eichenberg7Alejandro Vallejo8William J. Smith9Ramsin Benyamin10David L. Cedeño11Millennium Pain Center, Bloomington, IL 61704, USADepartment of Chemistry, Illinois State University, Normal, IL 61790, USADepartment of Biology, Illinois Wesleyan University, Bloomington, IL 61701, USADepartment of Chemistry, Illinois State University, Normal, IL 61790, USAMillennium Pain Center, Bloomington, IL 61704, USAMillennium Pain Center, Bloomington, IL 61704, USAMillennium Pain Center, Bloomington, IL 61704, USADepartment of Chemistry, Illinois State University, Normal, IL 61790, USAMillennium Pain Center, Bloomington, IL 61704, USAMillennium Pain Center, Bloomington, IL 61704, USAMillennium Pain Center, Bloomington, IL 61704, USAMillennium Pain Center, Bloomington, IL 61704, USAGlial cells comprise the majority of cells in the central nervous system and exhibit diverse functions including the development of persistent neuropathic pain. While earlier theories have proposed that the applied electric field specifically affects neurons, it has been demonstrated that electrical stimulation (ES) of neural tissue modulates gene expression of the glial cells. This study examines the effect of ES on the expression of eight genes related to oxidative stress and neuroprotection in cultured rodent glioma cells. Concentric bipolar electrodes under seven different ES types were used to stimulate cells for 30 min in the presence and absence of extracellular glutamate. ES consisted of rectangular pulses at 50 Hz in varying proportions of anodic and cathodic phases. Real-time reverse-transcribed quantitative polymerase chain reaction was used to determine gene expression using the ∆∆C<sub>q</sub> method. The results demonstrate that glutamate has a significant effect on gene expression in both stimulated and non-stimulated groups. Furthermore, stimulation parameters have differential effects on gene expression, both in the presence and absence of glutamate. ES has an effect on glial cell gene expression that is dependent on waveform composition. Optimization of ES therapy for chronic pain applications can be enhanced by this understanding.https://www.mdpi.com/2076-3425/9/11/303electrical stimulationoxidative stressglial cellsgene expressioncell culture |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Ricardo Vallejo David C. Platt Jonathan A. Rink Marjorie A. Jones Courtney A. Kelley Ashim Gupta Cynthia L. Cass Kirk Eichenberg Alejandro Vallejo William J. Smith Ramsin Benyamin David L. Cedeño |
spellingShingle |
Ricardo Vallejo David C. Platt Jonathan A. Rink Marjorie A. Jones Courtney A. Kelley Ashim Gupta Cynthia L. Cass Kirk Eichenberg Alejandro Vallejo William J. Smith Ramsin Benyamin David L. Cedeño Electrical Stimulation of C6 Glia-Precursor Cells In Vitro Differentially Modulates Gene Expression Related to Chronic Pain Pathways Brain Sciences electrical stimulation oxidative stress glial cells gene expression cell culture |
author_facet |
Ricardo Vallejo David C. Platt Jonathan A. Rink Marjorie A. Jones Courtney A. Kelley Ashim Gupta Cynthia L. Cass Kirk Eichenberg Alejandro Vallejo William J. Smith Ramsin Benyamin David L. Cedeño |
author_sort |
Ricardo Vallejo |
title |
Electrical Stimulation of C6 Glia-Precursor Cells In Vitro Differentially Modulates Gene Expression Related to Chronic Pain Pathways |
title_short |
Electrical Stimulation of C6 Glia-Precursor Cells In Vitro Differentially Modulates Gene Expression Related to Chronic Pain Pathways |
title_full |
Electrical Stimulation of C6 Glia-Precursor Cells In Vitro Differentially Modulates Gene Expression Related to Chronic Pain Pathways |
title_fullStr |
Electrical Stimulation of C6 Glia-Precursor Cells In Vitro Differentially Modulates Gene Expression Related to Chronic Pain Pathways |
title_full_unstemmed |
Electrical Stimulation of C6 Glia-Precursor Cells In Vitro Differentially Modulates Gene Expression Related to Chronic Pain Pathways |
title_sort |
electrical stimulation of c6 glia-precursor cells in vitro differentially modulates gene expression related to chronic pain pathways |
publisher |
MDPI AG |
series |
Brain Sciences |
issn |
2076-3425 |
publishDate |
2019-10-01 |
description |
Glial cells comprise the majority of cells in the central nervous system and exhibit diverse functions including the development of persistent neuropathic pain. While earlier theories have proposed that the applied electric field specifically affects neurons, it has been demonstrated that electrical stimulation (ES) of neural tissue modulates gene expression of the glial cells. This study examines the effect of ES on the expression of eight genes related to oxidative stress and neuroprotection in cultured rodent glioma cells. Concentric bipolar electrodes under seven different ES types were used to stimulate cells for 30 min in the presence and absence of extracellular glutamate. ES consisted of rectangular pulses at 50 Hz in varying proportions of anodic and cathodic phases. Real-time reverse-transcribed quantitative polymerase chain reaction was used to determine gene expression using the ∆∆C<sub>q</sub> method. The results demonstrate that glutamate has a significant effect on gene expression in both stimulated and non-stimulated groups. Furthermore, stimulation parameters have differential effects on gene expression, both in the presence and absence of glutamate. ES has an effect on glial cell gene expression that is dependent on waveform composition. Optimization of ES therapy for chronic pain applications can be enhanced by this understanding. |
topic |
electrical stimulation oxidative stress glial cells gene expression cell culture |
url |
https://www.mdpi.com/2076-3425/9/11/303 |
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