Quantitative automated microscopy (QuAM) elucidates growth factor specific signalling in pain sensitization

<p>Abstract</p> <p>Background</p> <p>Dorsal root ganglia (DRG)-neurons are commonly characterized immunocytochemically. Cells are mostly grouped by the experimenter's eye as "marker-positive" and "marker-negative" according to their immunofluore...

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Main Authors: Levine Jon D, Dina Olayinka A, Meyer Sonja, Andres Christine, Hucho Tim
Format: Article
Language:English
Published: SAGE Publishing 2010-12-01
Series:Molecular Pain
Online Access:http://www.molecularpain.com/content/6/1/98
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spelling doaj-9fe4f5745fc14493a94d28a021cdc4132020-11-25T03:11:21ZengSAGE PublishingMolecular Pain1744-80692010-12-01619810.1186/1744-8069-6-98Quantitative automated microscopy (QuAM) elucidates growth factor specific signalling in pain sensitizationLevine Jon DDina Olayinka AMeyer SonjaAndres ChristineHucho Tim<p>Abstract</p> <p>Background</p> <p>Dorsal root ganglia (DRG)-neurons are commonly characterized immunocytochemically. Cells are mostly grouped by the experimenter's eye as "marker-positive" and "marker-negative" according to their immunofluorescence intensity. Classification criteria remain largely undefined. Overcoming this shortfall, we established a quantitative automated microscopy (QuAM) for a defined and multiparametric analysis of adherent heterogeneous primary neurons on a single cell base.</p> <p>The growth factors NGF, GDNF and EGF activate the MAP-kinase Erk1/2 via receptor tyrosine kinase signalling. NGF and GDNF are established factors in regeneration and sensitization of nociceptive neurons. If also the tissue regenerating growth factor, EGF, influences nociceptors is so far unknown. We asked, if EGF can act on nociceptors, and if QuAM can elucidate differences between NGF, GDNF and EGF induced Erk1/2 activation kinetics. Finally, we evaluated, if the investigation of one signalling component allows prediction of the behavioral response to a reagent not tested on nociceptors such as EGF.</p> <p>Results</p> <p>We established a software-based neuron identification, described quantitatively DRG-neuron heterogeneity and correlated measured sample sizes and corresponding assay sensitivity. Analysing more than 70,000 individual neurons we defined neuronal subgroups based on differential Erk1/2 activation status in sensory neurons. Baseline activity levels varied strongly already in untreated neurons. NGF and GDNF subgroup responsiveness correlated with their subgroup specificity on IB4(+)- and IB4(-)-neurons, respectively. We confirmed expression of EGF-receptors in all sensory neurons. EGF treatment induced STAT3 translocation into the nucleus. Nevertheless, we could not detect any EGF induced Erk1/2 phosphorylation. Accordingly, intradermal injection of EGF resulted in a fundamentally different outcome than NGF/GDNF. EGF did not induce mechanical hyperalgesia, but blocked PGE<sub>2</sub>-induced sensitization.</p> <p>Conclusions</p> <p>QuAM is a suitable if not necessary tool to analyze activation of endogenous signalling in heterogeneous cultures. NGF, GDNF and EGF stimulation of DRG-neurons shows differential Erk1/2 activation responses and a corresponding differential behavioral phenotype. Thus, in addition to expression-markers also signalling-activity can be taken for functional subgroup differentiation and as predictor of behavioral outcome. The anti-nociceptive function of EGF is an intriguing result in the context of tissue damage but also for understanding pain resulting from EGF-receptor block during cancer therapy.</p> http://www.molecularpain.com/content/6/1/98
collection DOAJ
language English
format Article
sources DOAJ
author Levine Jon D
Dina Olayinka A
Meyer Sonja
Andres Christine
Hucho Tim
spellingShingle Levine Jon D
Dina Olayinka A
Meyer Sonja
Andres Christine
Hucho Tim
Quantitative automated microscopy (QuAM) elucidates growth factor specific signalling in pain sensitization
Molecular Pain
author_facet Levine Jon D
Dina Olayinka A
Meyer Sonja
Andres Christine
Hucho Tim
author_sort Levine Jon D
title Quantitative automated microscopy (QuAM) elucidates growth factor specific signalling in pain sensitization
title_short Quantitative automated microscopy (QuAM) elucidates growth factor specific signalling in pain sensitization
title_full Quantitative automated microscopy (QuAM) elucidates growth factor specific signalling in pain sensitization
title_fullStr Quantitative automated microscopy (QuAM) elucidates growth factor specific signalling in pain sensitization
title_full_unstemmed Quantitative automated microscopy (QuAM) elucidates growth factor specific signalling in pain sensitization
title_sort quantitative automated microscopy (quam) elucidates growth factor specific signalling in pain sensitization
publisher SAGE Publishing
series Molecular Pain
issn 1744-8069
publishDate 2010-12-01
description <p>Abstract</p> <p>Background</p> <p>Dorsal root ganglia (DRG)-neurons are commonly characterized immunocytochemically. Cells are mostly grouped by the experimenter's eye as "marker-positive" and "marker-negative" according to their immunofluorescence intensity. Classification criteria remain largely undefined. Overcoming this shortfall, we established a quantitative automated microscopy (QuAM) for a defined and multiparametric analysis of adherent heterogeneous primary neurons on a single cell base.</p> <p>The growth factors NGF, GDNF and EGF activate the MAP-kinase Erk1/2 via receptor tyrosine kinase signalling. NGF and GDNF are established factors in regeneration and sensitization of nociceptive neurons. If also the tissue regenerating growth factor, EGF, influences nociceptors is so far unknown. We asked, if EGF can act on nociceptors, and if QuAM can elucidate differences between NGF, GDNF and EGF induced Erk1/2 activation kinetics. Finally, we evaluated, if the investigation of one signalling component allows prediction of the behavioral response to a reagent not tested on nociceptors such as EGF.</p> <p>Results</p> <p>We established a software-based neuron identification, described quantitatively DRG-neuron heterogeneity and correlated measured sample sizes and corresponding assay sensitivity. Analysing more than 70,000 individual neurons we defined neuronal subgroups based on differential Erk1/2 activation status in sensory neurons. Baseline activity levels varied strongly already in untreated neurons. NGF and GDNF subgroup responsiveness correlated with their subgroup specificity on IB4(+)- and IB4(-)-neurons, respectively. We confirmed expression of EGF-receptors in all sensory neurons. EGF treatment induced STAT3 translocation into the nucleus. Nevertheless, we could not detect any EGF induced Erk1/2 phosphorylation. Accordingly, intradermal injection of EGF resulted in a fundamentally different outcome than NGF/GDNF. EGF did not induce mechanical hyperalgesia, but blocked PGE<sub>2</sub>-induced sensitization.</p> <p>Conclusions</p> <p>QuAM is a suitable if not necessary tool to analyze activation of endogenous signalling in heterogeneous cultures. NGF, GDNF and EGF stimulation of DRG-neurons shows differential Erk1/2 activation responses and a corresponding differential behavioral phenotype. Thus, in addition to expression-markers also signalling-activity can be taken for functional subgroup differentiation and as predictor of behavioral outcome. The anti-nociceptive function of EGF is an intriguing result in the context of tissue damage but also for understanding pain resulting from EGF-receptor block during cancer therapy.</p>
url http://www.molecularpain.com/content/6/1/98
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