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氯离子、钠离子、钾离子和氢离子在离体犬胃黏膜中的转运

Chloride, sodium, potassium and hydrogen ion transport in isolated canine gastric mucosa.

作者信息

Kuo Y J, Shanbour L L

出版信息

J Physiol. 1979 Jun;291:367-80. doi: 10.1113/jphysiol.1979.sp012819.

Abstract
  1. The fluxes of isotopically labelled Na+, Cl- and K+ in each direction and H+ secretion across isolated dog gastric mucosa were measured under short-circuit conditions. 2. In the non-stimulated state, the net flux of Na+ was 6.61 micronequiv/cm2.hr from mucosal (luminal, secretory) to serosal (nutrient, blood) side, whereas the net flux of Cl- was only 0.79 micronequiv/cm2.hr, and the direction was from serosal to mucosal side. 3. There was a positive correlation between the net flux of Cl- and acid secretion, however, net flux of Na+ was not correlated with acid secretion initiated by secretagogue treatment. 4. With ion substitution studies, only replacement of mucosal Na+ with choline produced a highly significant decrease in potential difference (p.d.). This indicates that active transport of Na+ from the mucosal to the serosal side is the most important source for the generation of the gastric p.d. in dog gastric mucosa. 5. From ion substitution studies, it was also observed that Cl- in either mucosal or serosal solution is necessary for maintaining acid secretion; whereas only serosal Na+ and K+ are essential for acid secretion. Removal of either Na+ or K+ from the mucosal solution had no effect on acid secretion. 6. Substitution of SO2-(4) for Cl- had no effect on active transport of Na+, but choline substitution for Na+ diminished active transport of Cl-.
摘要
  1. 在短路条件下,测量了经同位素标记的Na⁺、Cl⁻和K⁺在各个方向的通量以及跨离体犬胃黏膜的H⁺分泌量。2. 在非刺激状态下,Na⁺从黏膜(腔面、分泌面)到浆膜(营养面、血液面)侧的净通量为6.61微当量/平方厘米·小时,而Cl⁻的净通量仅为0.79微当量/平方厘米·小时,且方向是从浆膜侧到黏膜侧。3. Cl⁻的净通量与酸分泌之间存在正相关,然而,Na⁺的净通量与促分泌剂处理引发的酸分泌无关。4. 通过离子替代研究,仅用胆碱替代黏膜Na⁺会使电位差(p.d.)显著降低。这表明从黏膜侧到浆膜侧的Na⁺主动转运是犬胃黏膜中胃电位差产生的最重要来源。5. 从离子替代研究中还观察到,黏膜或浆膜溶液中的Cl⁻对于维持酸分泌是必需的;而只有浆膜中的Na⁺和K⁺对于酸分泌是必不可少的。从黏膜溶液中去除Na⁺或K⁺对酸分泌没有影响。6. 用SO₂⁻(4)替代Cl⁻对Na⁺的主动转运没有影响,但用胆碱替代Na⁺会减少Cl⁻的主动转运。

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Biochim Biophys Acta. 1959 Jan;31(1):246-7. doi: 10.1016/0006-3002(59)90461-5.
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