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Capsaicin-Cyclodextrin Complex Enhances Mepivacaine Targeting and Improves Local Anesthesia in Inflamed Tissues

机译:Capsaicin-Cyclodextrin复合物增强Mepivacaine靶向并改善发炎组织中的局部麻醉

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摘要

Acidic environments, such as in inflamed tissues, favor the charged form of local anesthetics (LA). Hence, these drugs show less cell permeation and diminished potency. Since the analgesic capsaicin (CAP) triggers opening of the TRPV1 receptor pore, its combination with LAs could result in better uptake and improved anesthesia. We tested the above hypothesis and report here for the first time the analgesia effect of a two-drug combination (LA and CAP) on an inflamed tissue. First, CAP solubility increased up to 20 times with hydroxypropyl-beta-cyclodextrin (HP-β-CD), as shown by the phase solubility study. The resulting complex (HP-β-CD-CAP) showed 1:1 stoichiometry and high association constant, according to phase-solubility diagrams and isothermal titration calorimetry data. The inclusion complex formation was also confirmed and characterized by differential scanning calorimetry (DSC), X-ray diffraction, and H-NMR. The freeze-dried complex showed physicochemical stability for at least 12 months. To test in vivo performance, we used a pain model based on mouse paw edema. Results showed that 2% mepivacaine injection failed to anesthetize mice inflamed paw, but its combination with complexed CAP resulted in pain control up to 45 min. These promising results encourages deeper research of CAP as an adjuvant for anesthesia in inflamed tissues and cyclodextrin as a solubilizing agent for targeting molecules in drug delivery.
机译:酸性环境,例如在发炎的组织中,有利于局部麻醉剂(LA)的带电形式。因此,这些药物表现出较少的细胞渗透和效力降低。由于镇痛辣椒素(帽)触发TRPV1受体孔隙,其与LAS的组合可能导致更好的摄取和改善的麻醉。我们在此测试上述假设,并在此报告是第一次镇痛对发炎组织上的双药物组合(La和帽)的镇痛作用。首先,帽溶解度高达20次羟丙基 - β-环糊精(HP-β-CD),如相溶解度研究所示。根据相位溶解度图和等温滴定热法数据,所得复合物(HP-β-CD-Cap)显示1:1化学计量和高结合常数。还通过差示扫描量热法(DSC),X射线衍射和H-NMR确认包合物形成和特征。冷冻干燥的复合物显示出物理化学稳定性至少12个月。为了在体内性能测试中,我们使用基于鼠标爪子水肿的痛苦模型。结果表明,2%Mepivacaine注射未能麻醉的小鼠发炎爪子,但其与复合盖的组合导致疼痛控制可达45分钟。这些有前途的结果鼓励对发炎组织和环糊精的麻醉剂和环糊精作为溶解剂的辅助研究更深入地研究用于靶向药物递送中的分子。

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