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Agmatine 在全身给药后向脑和脊髓的分布。

Biodistribution of Agmatine to Brain and Spinal Cord after Systemic Delivery.

机构信息

Department of Pharmaceutics (B.M.C., C.D.P., C.A.F.), Department of Pharmacology (L.D.C., G.L.W., C.A.F.), Department of Neuroscience (K.F.K., G.L.W., C.A.F.), and Department of Dermatology (G.L.W.), University of Minnesota, Minneapolis, Minnesota.

Department of Pharmaceutics (B.M.C., C.D.P., C.A.F.), Department of Pharmacology (L.D.C., G.L.W., C.A.F.), Department of Neuroscience (K.F.K., G.L.W., C.A.F.), and Department of Dermatology (G.L.W.), University of Minnesota, Minneapolis, Minnesota

出版信息

J Pharmacol Exp Ther. 2023 Dec;387(3):328-336. doi: 10.1124/jpet.123.001828. Epub 2023 Sep 28.

Abstract

Agmatine, an endogenous polyamine, has been shown to reduce chronic pain behaviors in animal models and in patients. This reduction is due to inhibition of the GluN2B subunit of the N-methyl-D-aspartate receptor (NMDAR) in the central nervous system (CNS). The mechanism of action requires central activity, but the extent to which agmatine crosses biologic barriers such as the blood-brain barrier (BBB) and intestinal epithelium is incompletely understood. Determination of agmatine distribution is limited by analytical protocols with low sensitivity and/or inefficient preparation. This study validated a novel bioanalytical protocol using high-performance liquid chromatography tandem mass spectrometry (HPLC-MS/MS) for quantification of agmatine in rat biologic matrices. These protocols were then used to determine the plasma pharmacokinetics of agmatine and the extent of distribution to the CNS. Precision and accuracy of the protocol met US Food and Drug Administration (FDA) standards in surrogate matrix as well as in corrected concentrations in appropriate matrices. The protocol also adequately withstood stability and dilution conditions. Upon application of this protocol to pharmacokinetic study, intravenous agmatine showed a half-life in plasma ranging between 18.9 and 14.9 minutes. Oral administration led to a prolonged plasma half-life (74.4-117 minutes), suggesting flip-flop kinetics, with bioavailability determined to be 29%-35%. Intravenous administration led to a rapid increase in agmatine concentration in brain but a delayed distribution and lower concentrations in spinal cord. However, half-life of agmatine in both tissues is substantially longer than in plasma. These data suggest that agmatine adequately crosses biologic barriers in rat and that brain and spinal cord pharmacokinetics can be functionally distinct. SIGNIFICANCE STATEMENT: Agmatine has been shown to be an effective nonopioid therapy for chronic pain, a significantly unmet medical necessity. Here, using a novel bioanalytical protocol for quantification of agmatine, we present the plasma pharmacokinetics and the first report of agmatine oral bioavailability as well as variable pharmacokinetics across different central nervous system tissues. These data provide a distributional rationale for the pharmacological effects of agmatine as well as new evidence for kinetic differences between brain and spinal cord.

摘要

胍丁胺是一种内源性聚胺,已被证明可减少动物模型和患者的慢性疼痛行为。这种减少是由于抑制中枢神经系统(CNS)中 N-甲基-D-天冬氨酸受体(NMDAR)的 GluN2B 亚基。作用机制需要中枢活性,但胍丁胺穿过血脑屏障(BBB)和肠上皮等生物屏障的程度尚不完全清楚。胍丁胺分布的测定受到分析方案的限制,这些方案的灵敏度低且/或准备效率不高。本研究使用高效液相色谱串联质谱(HPLC-MS/MS)验证了一种新的生物分析方案,用于定量大鼠生物基质中的胍丁胺。然后,这些方案用于确定胍丁胺的血浆药代动力学和向中枢神经系统的分布程度。该方案在替代基质和适当基质中校正浓度的精确度和准确性均符合美国食品和药物管理局(FDA)的标准。该方案还能很好地耐受稳定性和稀释条件。在将该方案应用于药代动力学研究时,静脉内胍丁胺在血浆中的半衰期范围为 18.9 至 14.9 分钟。口服给药导致血浆半衰期延长(74.4-117 分钟),表明翻转动力学,生物利用度确定为 29%-35%。静脉内给药导致脑内胍丁胺浓度迅速增加,但分布延迟,脊髓内浓度较低。然而,组织中胍丁胺的半衰期明显长于血浆。这些数据表明,胍丁胺能够充分穿过大鼠的生物屏障,并且脑和脊髓的药代动力学可以具有不同的功能。意义声明:胍丁胺已被证明是治疗慢性疼痛的有效非阿片类疗法,这是一种明显未满足的医疗需求。在这里,我们使用一种新的生物分析方案来定量胍丁胺,首次报告了胍丁胺的口服生物利用度以及不同中枢神经系统组织中可变的药代动力学。这些数据为胍丁胺的药理作用提供了分布基础,并为大脑和脊髓之间的动力学差异提供了新的证据。

相似文献

1
Biodistribution of Agmatine to Brain and Spinal Cord after Systemic Delivery.Agmatine 在全身给药后向脑和脊髓的分布。
J Pharmacol Exp Ther. 2023 Dec;387(3):328-336. doi: 10.1124/jpet.123.001828. Epub 2023 Sep 28.

本文引用的文献

1
Sex and gender differences in pain.疼痛的性别差异。
Int Rev Neurobiol. 2022;164:277-307. doi: 10.1016/bs.irn.2022.06.013. Epub 2022 Jul 30.

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