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1
Kinetics of potassium transport across single distal tubules of rat kidney.钾离子跨大鼠肾脏单个远端小管转运的动力学
J Physiol. 1973 Jul;232(1):47-70. doi: 10.1113/jphysiol.1973.sp010256.
2
Potassium and sodium transport across single distal tubules of Amphiuma.钾和钠在鳗螈单个远端小管中的转运。
J Gen Physiol. 1971 May;57(5):495-525. doi: 10.1085/jgp.57.5.495.
3
Potassium transport in the early distal tubule of Amphiuma kidney. Effects of potassium adaptation.蚓螈肾脏早期远端小管中的钾转运。钾适应的影响。
Pflugers Arch. 1983 Mar 1;396(3):185-91. doi: 10.1007/BF00587854.
4
Transepithelial pH gradients in cortical distal tubules during metabolic alkalosis.代谢性碱中毒时皮质远端小管的跨上皮pH梯度
Braz J Med Biol Res. 1993 Jul;26(7):779-94.
5
Unidirectional potassium fluxes in renal distal tubule: effects of chloride and barium.肾远端小管中的单向钾离子通量:氯离子和钡的影响。
Am J Physiol. 1986 May;250(5 Pt 2):F885-94. doi: 10.1152/ajprenal.1986.250.5.F885.
6
Effects of flow rate and potassium intake on distal tubular potassium transfer.流速和钾摄入量对远端肾小管钾转运的影响。
Am J Physiol. 1975 Apr;228(4):1249-61. doi: 10.1152/ajplegacy.1975.228.4.1249.
7
Some reflections on the mechanism of renal tubular potassium transport.关于肾小管钾转运机制的一些思考。
Yale J Biol Med. 1975 Sep;48(4):315-36.
8
The distribution of potassium, sodium and chloride across the apical membrane of renal tubular cells: effect of acute metabolic alkalosis.
Pflugers Arch. 1988 Mar;411(3):259-67. doi: 10.1007/BF00585112.
9
Relationship between peritubular membrane potential and net fluid reabsorption in the distal renal tubule of Amphiuma.蚓螈远端肾小管周膜电位与净液体重吸收之间的关系。
J Physiol. 1984 Mar;348:115-34. doi: 10.1113/jphysiol.1984.sp015102.
10
Distal tubular tracer microinjection study of renal tubular potassium transport.肾小管钾转运的远端肾小管示踪剂微量注射研究
Am J Physiol. 1975 Nov;229(5):1227-33. doi: 10.1152/ajplegacy.1975.229.5.1227.

引用本文的文献

1
Aldosterone: Renal Action and Physiological Effects.醛固酮:肾脏作用和生理效应。
Compr Physiol. 2023 Mar 30;13(2):4409-4491. doi: 10.1002/cphy.c190043.
2
Tissue kallikrein permits early renal adaptation to potassium load.组织激肽释放酶可使肾脏早期适应钾负荷。
Proc Natl Acad Sci U S A. 2010 Jul 27;107(30):13526-31. doi: 10.1073/pnas.0913070107. Epub 2010 Jul 12.
3
Studies on the renal action of ouabain in the rat. Effects in the non-diuretic state.关于哇巴因对大鼠肾脏作用的研究。非利尿状态下的作用。
Pflugers Arch. 1974 Jun 11;349(2):91-107. doi: 10.1007/BF00586621.
4
Characteristics of the relationship between the flow rate of tubular fluid and potassium transport in the distal tubule of the rat.大鼠远曲小管中肾小管液流速与钾转运之间关系的特征
J Clin Invest. 1974 Dec;54(6):1488-95. doi: 10.1172/JCI107897.
5
Independent effects of aldosterone and potassium on induction of potassium adaptation in rat kidney.醛固酮和钾对大鼠肾脏钾适应诱导的独立作用。
J Clin Invest. 1987 Jan;79(1):198-206. doi: 10.1172/JCI112783.
6
Effect of potassium adaptation on the distribution of potassium, sodium and chloride across the apical membrane of renal tubular cells.钾适应对钾、钠和氯跨肾小管细胞顶端膜分布的影响。
Pflugers Arch. 1987 Aug;409(4-5):477-85. doi: 10.1007/BF00583804.
7
The distribution of potassium, sodium and chloride across the apical membrane of renal tubular cells: effect of acute metabolic alkalosis.
Pflugers Arch. 1988 Mar;411(3):259-67. doi: 10.1007/BF00585112.
8
The effects of various anions and cations on the regulation of pyruvate dehydrogenase complex activity from pig kidney cortex.各种阴离子和阳离子对猪肾皮质丙酮酸脱氢酶复合体活性调节的影响。
Biochem J. 1988 Aug 1;253(3):819-25. doi: 10.1042/bj2530819.
9
Effect of acute metabolic acidosis on transmembrane electrolyte gradients in individual renal tubule cells.急性代谢性酸中毒对单个肾小管细胞跨膜电解质梯度的影响。
Pflugers Arch. 1988 Sep;412(4):427-33. doi: 10.1007/BF01907563.
10
The electrical basis for enhanced potassium secretion in rat distal colon during dietary potassium loading.饮食钾负荷期间大鼠远端结肠钾分泌增强的电生理学基础。
Pflugers Arch. 1985 Apr;403(4):433-9. doi: 10.1007/BF00589258.

本文引用的文献

1
The effect of salt deficiency in man on the volume of the extracellular fluids, and on the composition of sweat, saliva, gastric juice and cerebrospinal fluid.人体缺盐对细胞外液容量以及汗液、唾液、胃液和脑脊液成分的影响。
J Physiol. 1938 Mar 14;92(2):208-18. doi: 10.1113/jphysiol.1938.sp003595.
2
SODIUM EXTRUSION AND POTASSIUM UPTAKE IN GUINEA PIG KIDNEY CORTEX SLICES.豚鼠肾皮质切片中的钠排出与钾摄取
J Gen Physiol. 1965 Mar;48(4):699-717. doi: 10.1085/jgp.48.4.699.
3
SOME FURTHER OBSERVATIONS ON THE SODIUM EFFLUX IN FROG MUSCLE.关于蛙肌中钠流出的一些进一步观察
J Physiol. 1965 May;178(2):305-25. doi: 10.1113/jphysiol.1965.sp007629.
4
THE ACTION OF CARDIAC GLYCOSIDES ON ION MOVEMENTS.强心苷对离子运动的作用。
Pharmacol Rev. 1964 Dec;16:381-407.
5
NATURE OF SHUNT PATH AND ACTIVE SODIUM TRANSPORT PATH THROUGH FROG SKIN EPITHELIUM.通过蛙皮上皮的分流途径和活性钠转运途径的性质。
Acta Physiol Scand. 1964 Aug;61:484-504.
6
MICROPUNCTURE STUDY OF RENAL POTASSIUM EXCRETION IN THE RAT.大鼠肾脏钾排泄的微穿刺研究
Am J Physiol. 1964 Apr;206:674-86. doi: 10.1152/ajplegacy.1964.206.4.674.
7
Intrcellular hydrogen ion changes and potassium movement.细胞内氢离子变化与钾离子移动。 (注:原文中“Intrcellular”拼写错误,正确应为“Intracellular”)
Am J Physiol. 1963 May;204:765-70. doi: 10.1152/ajplegacy.1963.204.5.765.
8
Effects of blood pH changes on potassium excretion in the dog.
Am J Physiol. 1962 Apr;202:768-72. doi: 10.1152/ajplegacy.1962.202.4.768.
9
The significance of the secretion of aldosterone during dietary sodium deprivation in normal subjects.正常受试者在饮食缺钠期间醛固酮分泌的意义。
J Clin Endocrinol Metab. 1958 Nov;18(11):1159-77. doi: 10.1210/jcem-18-11-1159.
10
Nature and significance of concentration relations of potassium and sodium ions in skeletal muscle.骨骼肌中钾离子和钠离子浓度关系的性质及意义
Physiol Rev. 1957 Jan;37(1):84-132. doi: 10.1152/physrev.1957.37.1.84.

钾离子跨大鼠肾脏单个远端小管转运的动力学

Kinetics of potassium transport across single distal tubules of rat kidney.

作者信息

de Mello-Aires M, Giebisch G, Malnic G

出版信息

J Physiol. 1973 Jul;232(1):47-70. doi: 10.1113/jphysiol.1973.sp010256.

DOI:10.1113/jphysiol.1973.sp010256
PMID:4733501
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1350491/
Abstract
  1. The transport of potassium across the distal tubular epithelium was studied in vivo in rats on a normal potassium intake and in rats in which distal tubular potassium secretion was either stimulated by potassium loading or the I.V. administration of a 5% sodium bicarbonate solution or in which potassium secretion was suppressed by dietary deprivation of potassium or sodium.2. (42)K was used to measure unidirectional fluxes across the luminal and peritubular cell membranes and to assess the magnitude of cellular potassium partaking in the transport process. This was accomplished by the simultaneous perfusion of the peritubular capillary network with (42)K-Ringer and of the distal tubular lumen with initially tracer-free solution. From the steady-state flux and the time course of tracer washout into the lumen after discontinuing the peritubular perfusion, unidirectional fluxes, rate coefficients of ion transfer and cellular transport pools could be measured.3. Transepithelial movement of potassium involves mixing with a variable cellular potassium transport pool. The latter is significantly elevated in conditions of enhanced distal tubular potassium secretion; cellular potassium labelling is reduced in conditions in which potassium secretion has been suppressed by potassium deprivation.4. Evidence is presented that changes in the peritubular transport pattern are primarily responsible for modifications of potassium translocation. Thus, stimulation of potassium secretion is associated with increased peritubular potassium uptake; a reduced potassium uptake across the peritubular cell membrane accounts for the fall in potassium secretion in potassium-depleted animals. Whereas passive entry of potassium across the peritubular membrane is augmented in potassium-loaded animals, the induction of metabolic alkalosis by the administration of 5% sodium bicarbonate stimulates active potassium uptake across the peritubular cell membrane. Sodium deprivation stimulates active reabsorptive transfer of potassium from the tubular lumen.
摘要
  1. 研究了正常钾摄入的大鼠以及通过钾负荷、静脉注射5%碳酸氢钠溶液刺激远端肾小管钾分泌,或通过低钾或低钠饮食抑制钾分泌的大鼠体内钾在远端肾小管上皮的转运情况。

  2. 用(42)K测量钾在管腔和肾小管周围细胞膜的单向通量,并评估参与转运过程的细胞内钾的量。这是通过同时用含(42)K的林格液灌注肾小管周围毛细血管网和用初始无示踪剂的溶液灌注远端肾小管腔来实现的。根据稳态通量和停止肾小管周围灌注后示踪剂洗脱到管腔的时间进程,可以测量单向通量、离子转运速率系数和细胞转运池。

  3. 钾的跨上皮运动涉及与可变的细胞内钾转运池混合。在远端肾小管钾分泌增强的情况下,后者显著升高;在低钾饮食抑制钾分泌的情况下,细胞内钾标记减少。

  4. 有证据表明,肾小管周围转运模式的变化主要是钾转运改变的原因。因此,钾分泌的刺激与肾小管周围钾摄取增加有关;低钾动物中,肾小管周围细胞膜钾摄取减少导致钾分泌下降。在钾负荷动物中,钾通过肾小管周围膜的被动进入增加,而静脉注射5%碳酸氢钠诱导代谢性碱中毒刺激钾通过肾小管周围细胞膜的主动摄取。钠缺乏刺激钾从肾小管腔的主动重吸收转运。