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The use of cystometry in small rodents: a study of bladder chemosensation

机译:膀胱测压仪在小型啮齿动物中的应用:膀胱化学传感研究

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摘要

The lower urinary tract (LUT) functions as a dynamic reservoir that is able to store urine and to efficiently expel it at a convenient time. While storing urine, however, the bladder is exposed for prolonged periods to waste products. By acting as a tight barrier, the epithelial lining of the LUT, the urothelium, avoids re-absorption of harmful substances. Moreover, noxious chemicals stimulate the bladder's nociceptive innervation and initiate voiding contractions that expel the bladder's contents. Interestingly, the bladder's sensitivity to noxious chemicals has been used successfully in clinical practice, by intravesically infusing the TRPV1 agonist capsaicin to treat neurogenic bladder overactivity(1). This underscores the advantage of viewing the bladder as a chemosensory organ and prompts for further clinical research. However, ethical issues severely limit the possibilities to perform, in human subjects, the invasive measurements that are necessary to unravel the molecular bases of LUT clinical pharmacology. A way to overcome this limitation is the use of several animal models(2). Here we describe the implementation of cystometry in mice and rats, a technique that allows measuring the intravesical pressure in conditions of controlled bladder perfusion. After laparotomy, a catheter is implanted in the bladder dome and tunneled subcutaneously to the interscapular region. Then the bladder can be filled at a controlled rate, while the urethra is left free for micturition. During the repetitive cycles of filling and voiding, intravesical pressure can be measured via the implanted catheter. As such, the pressure changes can be quantified and analyzed. Moreover, simultaneous measurement of the voided volume allows distinguishing voiding contractions from non-voiding contractions(3). Importantly, due to the differences in micturition control between rodents and humans, cystometric measurements in these animals have only limited translational value(4). Nevertheless, they are quite instrumental in the study of bladder pathophysiology and pharmacology in experimental pre-clinical settings. Recent research using this technique has revealed the key role of novel molecular players in the mechano- and chemo-sensory properties of the bladder.
机译:下尿路(LUT)用作动态储存器,能够储存尿液并在方便的时间有效排出尿液。然而,在储存尿液的同时,膀胱长时间暴露于废物中。通过充当紧密的屏障,LUT的上皮衬里(尿路上皮)避免了有害物质的重新吸收。此外,有毒化学物质会刺激膀胱的伤害性神经支配并引发排空性收缩,从而排出膀胱中的内容物。有趣的是,通过对膀胱内注入TRPV1激动剂辣椒素来治疗神经源性膀胱过度活动症,膀胱对有害化学物质的敏感性已在临床实践中成功使用(1)。这突出了将膀胱视为化学感觉器官的优势,并提示了进一步的临床研究。然而,道德问题严重限制了在人类受试者中进行揭露LUT临床药理学分子基础所必需的侵入性测量的可能性。克服这一局限性的一种方法是使用几种动物模型(2)。在这里,我们描述了在小鼠和大鼠中进行膀胱测压的方法,该技术可以在受控的膀胱灌注条件下测量膀胱内压力。开腹手术后,将导管植入膀胱穹do并皮下隧穿至肩cap间区域。然后,可以以可控的速率填充膀胱,而将尿道留空以排尿。在重复的填充和排空周期中,可以通过植入的导管测量膀胱内压力。这样,可以对压力变化进行量化和分析。此外,同时测量空隙体积可以将空隙收缩与非空隙收缩区分开(3)。重要的是,由于啮齿动物和人类之间排尿控制的差异,这些动物的膀胱测压法测量值仅有有限的翻译价值(4)。然而,它们在临床前实验环境中对膀胱病理生理学和药理学的研究非常有帮助。最近使用这种技术的研究揭示了新型分子球员在膀胱的机械和化学感官特性中的关键作用。

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