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两栖动物皮肤的化学感觉功能:整合上皮细胞转运、毛细血管血流和行为。

Chemosensory function of amphibian skin: integrating epithelial transport, capillary blood flow and behaviour.

机构信息

School of Dental Medicine, University of Nevada, Las Vegas, NV 89106, USA.

出版信息

Acta Physiol (Oxf). 2011 Jul;202(3):533-48. doi: 10.1111/j.1748-1716.2010.02200.x. Epub 2010 Nov 9.

Abstract

Terrestrial anuran amphibians absorb water across specialized regions of skin on the posterioventral region of their bodies. Rapid water absorption is mediated by the insertion of aquaporins into the apical membrane of the outermost cell layer. Water moves out of the epithelium via aquaglyceroporins in the basolateral membrane and into the circulation in conjunction with increased capillary blood flow to the skin and aquaporins in the capillary endothelial cells. These physiological responses are activated by intrinsic stimuli relating to the animals' hydration status and extrinsic stimuli relating to the detection of osmotically available water. The integration of these processes has been studied using behavioural observations in conjunction with neurophysiological recordings and studies of epithelial transport. These studies have identified plasma volume and urinary bladder stores as intrinsic stimuli that activate the formation of angiotensin II (AII) to stimulate water absorption behaviour. The coordinated increase in water permeability and capillary blood flow appears to be mediated primarily by sympathetic stimulation of beta adrenergic receptors, although the neurohypopyseal hormone arginine vasotocin (AVT) may also play a role. Extrinsic stimuli relate primarily to the ionic and osmotic properties of hydration sources. Toads avoid NaCl solutions that have been shown to be harmful in acute exposure, approx. 200-250 mm. The avoidance is partially attenuated by amiloride raising the hypothesis that the mechanism for salt detection by toads resembles that for salt taste in mammals that take in water by mouth. In this model, depolarization of the basolateral membrane of taste cells is coupled to afferent neural stimulation. In toad skin we have identified innervation of skin epithelial cells by branches of spinal nerves and measured neural responses to NaCl solutions that elicit behavioural avoidance. These same concentrations produce depolarization of the basolateral membrane in isolated epithelial preparations. As with salt taste in mammals, the neural responses and depolarization of basolateral membrane potential are partially inhibited by amiloride. In addition, toads are more tolerant of sodium gluconate solution which is consistent with the phenomenon in mammalian taste physiology termed the anion paradox in which sodium salts with larger molecular weight anions produce a reduced intensity of salt taste. Finally, toads also avoid concentrated solutions of a non-electrolyte, mannitol, which differs from NaCl solutions in not affecting transepithelial conductance and requires a longer time to depolarize the basolateral membrane. Osmotic stimuli may mediate sensory processes for longer term detection of conditions with low water potential while ionic stimuli are more important for shorter term analysis of rehydration sources.

摘要

陆生蛙类通过身体后腹侧的特殊皮肤区域吸收水分。水的快速吸收是通过水通道蛋白插入最外层细胞层的顶膜来介导的。水通过基底外侧膜中的水甘油通道蛋白从上皮细胞中流出,并与皮肤中的毛细血管血流增加以及毛细血管内皮细胞中的水通道蛋白一起进入循环。这些生理反应是由与动物水合状态有关的内在刺激和与检测渗透可用水有关的外在刺激激活的。这些过程的整合已经通过行为观察与神经生理记录和上皮转运研究相结合进行了研究。这些研究已经确定了血浆体积和尿囊储存作为激活血管紧张素 II (AII) 形成以刺激水吸收行为的内在刺激。水通透性和毛细血管血流的协同增加似乎主要是通过交感神经刺激β肾上腺素能受体介导的,尽管神经垂体激素精氨酸加压素 (AVT) 也可能发挥作用。外在刺激主要与水合来源的离子和渗透压特性有关。蟾蜍避免已被证明在急性暴露时有害的 NaCl 溶液,约 200-250mm。阿米洛利部分减弱了这种回避,这提出了这样一种假设,即蟾蜍对盐的检测机制类似于哺乳动物通过口腔摄入水时的盐味觉机制。在这个模型中,味觉细胞基底外侧膜的去极化与传入神经刺激耦合。在蟾蜍皮肤中,我们已经确定了脊髓神经分支对皮肤上皮细胞的神经支配,并测量了引起行为回避的 NaCl 溶液的神经反应。在分离的上皮制剂中,相同的浓度也会导致基底外侧膜的去极化。与哺乳动物的盐味觉一样,神经反应和基底外侧膜电位的去极化部分被阿米洛利抑制。此外,蟾蜍对葡萄糖酸钠溶液的耐受性更高,这与哺乳动物味觉生理学中的阴离子悖论现象一致,其中分子量较大的阴离子的钠盐会产生降低的盐味觉强度。最后,蟾蜍也会避免非电解质甘露醇的浓缩溶液,这与不影响上皮跨导的 NaCl 溶液不同,并且需要更长的时间才能使基底外侧膜去极化。渗透刺激可能介导对低水势条件的长期检测的感觉过程,而离子刺激对于更短期的再水合源分析更为重要。

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