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Chronic pain conditions are a major reason for the utilization of the health care system. Inflammatory pain states can persist facilitated by peripheral sensitization of nociceptors. The voltage-gated sodium channel 1.9 (NaV1.9) is an important regulator of neuronal excitability and is involved in inflammation-induced pain hypersensitivity. Recently, oxidized 1-palmitoyl-2-arachidonoyl-sn-glycerol-3-phosphatidylcholine (OxPAPC) was identified as a mediator of acute inflammatory pain and persistent hyperalgesia, suggesting an involvement in proalgesic cascades and peripheral sensitization. Peripheral sensitization implies an increase in neuronal excitability. This thesis aims to characterize spontaneous calcium activity in neuronal compartments as a proxy to investigate neuronal excitability, making use of the computational tool Neural Activity Cubic (NA3). NA3 allows automated calcium activity event detection of signal-close-to-noise calcium activity and evaluation of neuronal activity states. Additionally, the influence of OxPAPC and NaV1.9 on the excitability of murine dorsal root ganglion (DRG) neurons and the effect of OxPAPC on the response of DRG neurons towards other inflammatory mediators (prostaglandin E2, histamine, and bradykinin) is investigated. Using calcium imaging, the presence of spontaneous calcium activity in murine DRG neurons was established. NA3 was used to quantify this spontaneous calcium activity, which revealed decreased activity counts in axons and somata of NaV1.9 knockout (KO) neurons compared to wildtype (WT). Incubation of WT DRG neurons with OxPAPC before calcium imaging did not show altered activity counts compared to controls. OxPAPC incubation also did not modify the response of DRG neurons treated with inflammatory mediators. However, the variance ratio computed by NA3 conclusively allowed to determine neuronal activity states. In conclusion, my findings indicate an important function of NaV1.9 in determining the neuronal excitability of DRG neurons in resting states. OxPAPC exposition does not influence neuronal excitability nor sensitizes neurons for other inflammatory mediators. This evidence reduces the primary mechanism of OxPAPC-induced hyperalgesia to acute effects. Importantly, it was possible to establish an approach for unbiased excitability quantification of DRG neurons by calcium activity event detection and calcium trace variance analysis by NA3. It was possible to show that signal-close-to-noise calcium activity reflects neuronal excitability states.
Für nozizeptive Wundschmerzen ist der Transient Receptor Potential Channel (TRP) vermittelte Kalziumeinstrom unerlässlich. Reaktive Sauerstoffspezies (ROS) und deren Oxidationsprodukte wie 4-Hydroxynonenal (4-HNE) aktivieren das Ankyrin-1-Homolog TRPA1 in vivo und in vitro.
Die in dieser Studie durchgeführten Kalzium-Imaging Experimente wurden an stabil mit TRPA1 und TRPV1 transfizierten HEK-293-Zellen und spinalen Hinterwurzelganglien durchgeführt, um die mechanistischen Zusammenhänge der nozizeptiven Schmerzentstehung bei entzündlichen Wundschmerzen besser zu verstehen.
E06, ein monoklonaler Autoantikörper (mAb) gegen oxidiertes Phosphatidylcholin (OxPC) und D-4F, ein mimetisches Peptid des Strukturproteins Apolipoprotein A-I aus dem high density lipoprotein (HDL), wurden bisher als diagnostischer Marker bei Atherosklerose eingesetzt.
In den durchgeführten Experimenten reduzierten E06 mAb und D-4F den durch Lipidperoxidationsprodukte (OxPL) wie 4-HNE und reaktive Sauerstoffspezies wie H2O2 verursachten TRPA1-vermittelten Kalziumeinfluss in vitro.
Darüber hinaus zeigte sich, dass weder E06 mAb noch D-4F eine Kalziumeinstromrelevante Interaktion mit dem Transient Receptor Potential Channel Vanillin 1 (TRPV1)-Aktivator Capsaicin oder dem TRPV1-Kanal aufweisen.
E06 mAb und ApoA-I mimetisches Peptid D-4F erscheinen deshalb als zwei vielversprechende Substanzen, um den inflammatorischen Wundschmerz zu verringern. Deshalb sind sie auch als potentielles Analgetikum für eine nebenwirkungsärmere, lokale Schmerzbekämpfung vielversprechend.
Non-steroidal antiinflammatory drugs are most commonly used for inflammatory and postoperative pain. But they lack effectiveness and specificity, leading to severe side effects, like gastric ulcers, asthma and severe bleeding. Oxidized 1-palmitoyl-2-arachinidonoyl-sn-glycero-3-phosphocholine (OxPAPC) plays an important role in inflammatory pain. PAPC is a common phosphatidylcholine of membranes, which can be oxidized by reactive oxygen species. In preliminary experiments, our group found that local injection of OxPAPC in rat paws induces hyperalgesia.
In this study we examined the effect of OxPAPC on transient receptor potential A1 (TRPA1), an ion channel expressed in C-fiber neurons. Furthermore, we investigated if intracellular cysteine residues of TRPA1 were necessary for agonist-channel-interactions and if a subsequent TRPA1 activation could be prevented by OxPAPC scavengers.
To answer these questions, we performed calcium imaging using HEK-293 cells stably expressing hTRPA1, or transiently expressing the triple mutant channel hTRPA1-3C and naïve DRG neurons. Cells were incubated with the ratiometric, fluorescent dye Fura-2/AM and stimulated with OxPAPC. The change of light emission after excitation with 340 and 380 nm wavelengths allowed conclusions regarding changes of intracellular calcium concentrations after TRPA1 activation.
In our investigation we proved evidence that OxPAPC activates TRPA1, which caused a flow of calcium ions into the cytoplasm. The TRPA1-specific channel blocker HC-030031 eliminated this agonist-induced response. TRPA1-3C was not completely sensitive to OxPAPC. The peptide D-4F and the monoclonal antibody E06 neutralized OxPAPC-induced TRPA1 activation.
In this work, the importance of OxPAPC as a key mediator of inflammatory pain and as a promising target for drug design is highlighted. Our results indicate that TRPA1 activation by OxPAPC involves cysteine-dependent mechanisms, but there are other, cysteine-independent activation mechanisms as well. Potential pharmaceuticals for the treatment of inflammatory pain are D-4F and E06, whose efficiency has recently been confirmed in the animal model by our research group.