Chris M Wood, Anne Crémazy, Carolyn Morris, Ora E Johannsson, Gudrun De Boeck, Adalberto Luis Val
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Using normoxic, normocapnic, ion-poor, low-dissolved organic carbon (DOC) well water (27°C, pH 7.0) as the acclimation and reference condition, we first confirmed that the strongly negative TEP (-22.3 mV inside relative to the external water) is a simple diffusion potential. We then evaluated the effects on TEP of more complex waters from the Rio Negro (strong hyperpolarization) and Rio Solimões (no significant change). Additionally, we have quantified significant effects of acute, realistic changes in environmental conditions-low pH (depolarization), hypercapnia (depolarization), hypoxia (depolarization), hyperoxia (hyperpolarization), elevated NaCl concentrations (depolarization), and elevated NH<sub>4</sub>Cl concentrations (depolarization). The TEP responses help explain many of the changes in net Na<sup>+</sup> flux rates reported in the literature. We have also shown marked effects of temperature on TEP and unidirectional Na<sup>+</sup> flux rates (hyperpolarization and decreased fluxes at 21°C, depolarization and increased fluxes at 33°C) with no changes in net Na<sup>+</sup> flux rates. Calculations based on the Nernst equation demonstrate the importance of the TEP changes in maintaining net Na<sup>+</sup> balance.</p>","PeriodicalId":15794,"journal":{"name":"Journal of fish biology","volume":" ","pages":""},"PeriodicalIF":1.7000,"publicationDate":"2025-01-09","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"The effect of environmental factors on transepithelial potential in a model Amazonian teleost, the tambaqui (Colossoma macropomum): Implications for sodium balance in harsh environments.\",\"authors\":\"Chris M Wood, Anne Crémazy, Carolyn Morris, Ora E Johannsson, Gudrun De Boeck, Adalberto Luis Val\",\"doi\":\"10.1111/jfb.16050\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>The tambaqui (Colossoma macropomum, G. Cuvier 1818) thrives both in the ion-poor waters of the Amazon and in commercial aquaculture. In both, environmental conditions can be harsh due to low ion levels, occasional high salt challenges (in aquaculture), low pH, extreme PO<sub>2</sub> levels (hypoxia and hyperoxia), high PCO<sub>2</sub> levels (hypercapnia), high ammonia levels (in aquaculture), and high and low temperatures. Ion transport across the gill is affected by active transport processes, passive diffusive permeability, ion concentrations (the chemical gradient), and transepithelial potential (TEP, the electrical gradient). The latter is a very important indicator of ionoregulatory status but is rarely measured. Using normoxic, normocapnic, ion-poor, low-dissolved organic carbon (DOC) well water (27°C, pH 7.0) as the acclimation and reference condition, we first confirmed that the strongly negative TEP (-22.3 mV inside relative to the external water) is a simple diffusion potential. 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引用次数: 0
摘要
tambaqui (Colossoma macropomum, G. Cuvier 1818)在亚马逊河离子贫乏的水域和商业水产养殖中都能茁壮成长。在这两种情况下,由于低离子水平、偶尔的高盐挑战(水产养殖)、低pH值、极端PO2水平(缺氧和高氧)、高二氧化碳分压水平(高碳酸血症)、高氨水平(水产养殖)以及高温和低温,环境条件可能会很恶劣。离子通过鳃的传输受主动传输过程、被动扩散渗透性、离子浓度(化学梯度)和上皮传导电位(TEP,电梯度)的影响。后者是监管状态的一个非常重要的指标,但很少被测量。采用正氧、正氧、贫离子、低溶解有机碳(DOC)井水(27°C, pH 7.0)作为驯化和参考条件,我们首次证实了强负TEP(内部相对于外部水-22.3 mV)是一个简单的扩散电位。然后,我们评估了里约热内卢Negro(强超极化)和里约热内卢Solimões(无显著变化)对更复杂的水TEP的影响。此外,我们还量化了环境条件急性、现实变化的显著影响——低pH(去极化)、高碳酸血症(去极化)、低氧(去极化)、高氧(超极化)、NaCl浓度升高(去极化)和NH4Cl浓度升高(去极化)。TEP的反应有助于解释文献中报道的净Na+通量率的许多变化。我们还发现温度对TEP和单向Na+通量率(21°C时超极化和减少通量,33°C时去极化和增加通量)的显著影响,而净Na+通量率没有变化。基于能斯特方程的计算证明了TEP变化对维持净Na+平衡的重要性。
The effect of environmental factors on transepithelial potential in a model Amazonian teleost, the tambaqui (Colossoma macropomum): Implications for sodium balance in harsh environments.
The tambaqui (Colossoma macropomum, G. Cuvier 1818) thrives both in the ion-poor waters of the Amazon and in commercial aquaculture. In both, environmental conditions can be harsh due to low ion levels, occasional high salt challenges (in aquaculture), low pH, extreme PO2 levels (hypoxia and hyperoxia), high PCO2 levels (hypercapnia), high ammonia levels (in aquaculture), and high and low temperatures. Ion transport across the gill is affected by active transport processes, passive diffusive permeability, ion concentrations (the chemical gradient), and transepithelial potential (TEP, the electrical gradient). The latter is a very important indicator of ionoregulatory status but is rarely measured. Using normoxic, normocapnic, ion-poor, low-dissolved organic carbon (DOC) well water (27°C, pH 7.0) as the acclimation and reference condition, we first confirmed that the strongly negative TEP (-22.3 mV inside relative to the external water) is a simple diffusion potential. We then evaluated the effects on TEP of more complex waters from the Rio Negro (strong hyperpolarization) and Rio Solimões (no significant change). Additionally, we have quantified significant effects of acute, realistic changes in environmental conditions-low pH (depolarization), hypercapnia (depolarization), hypoxia (depolarization), hyperoxia (hyperpolarization), elevated NaCl concentrations (depolarization), and elevated NH4Cl concentrations (depolarization). The TEP responses help explain many of the changes in net Na+ flux rates reported in the literature. We have also shown marked effects of temperature on TEP and unidirectional Na+ flux rates (hyperpolarization and decreased fluxes at 21°C, depolarization and increased fluxes at 33°C) with no changes in net Na+ flux rates. Calculations based on the Nernst equation demonstrate the importance of the TEP changes in maintaining net Na+ balance.
期刊介绍:
The Journal of Fish Biology is a leading international journal for scientists engaged in all aspects of fishes and fisheries research, both fresh water and marine. The journal publishes high-quality papers relevant to the central theme of fish biology and aims to bring together under one cover an overall picture of the research in progress and to provide international communication among researchers in many disciplines with a common interest in the biology of fish.