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山羊和绵羊不同妊娠阶段母羊与胎儿之间离子分布及电位差

Distribution of ions and electrical potential differences between mother and foetus at different gestational ages in goats and sheep.

作者信息

Mellor D J

出版信息

J Physiol. 1970 Mar;207(1):133-50. doi: 10.1113/jphysiol.1970.sp009053.

Abstract
  1. Potential differences associated with the compartments of goat and sheep conceptuses have been measured in vivo and in vitro during the last half of gestation and the osmolarity, and the [Na(+)], [K(+)], and [Cl(-)] of maternal and foetal plasma and amniotic and allantoic fluid taken from these animals were determined.2. The potential difference (p.d.) patterns of both goats and sheep were the same.(a) The transplacental p.d. was about 71 mV (foetus negative) in the goat, and about 51 mV (foetus negative) in the sheep.(b) The amniotic fluid p.d. (i.e. the p.d. measured between the maternal extracellular fluid and the amniotic fluid) decreased as gestation advanced (from 110 to 70 mV in the goat, and 90 to 50 mV in the sheep) and was equal to the sum of the transplacental p.d. and a p.d. between the foetal blood and the amniotic fluid. The amniotic fluid was negative relative to both maternal and foetal blood.(c) An allantoic fluid p.d. (measured between the maternal extracellular fluid and the allantoic fluid) of about 107 mV in the goat, and about 96 mV in the sheep, was equal to the sum of the transplacental p.d. and a p.d. between the foetal blood and the allantoic fluid. The allantoic fluid was negative relative to both maternal and foetal blood.(d) The results suggest that p.d.s of the fluid sacs arise from activity between the foetal fluids and the blood perfusing the foetal membranes, and not from activity across the full thickness of the foetal membranes.3. The ionic concentrations were considered in relation to the electrochemical gradients found between the maternal and foetal fluid compartments to determine whether the ions were distributed according to electrochemical equilibrium.(a) It seems that ions in the amniotic fluid tend to equilibrate with foetal plasma, and not with maternal plasma or allantoic fluid, that changes in the [Na(+)] and [K(+)] of amniotic fluid can be accounted for largely in terms of passive factors, and that variations in the [Cl(-)] are associated with activity of an electrogenic Cl(-) pump directed from the foetal blood into the amniotic fluid.(b) It appears that ions in the allantoic fluid can exchange with those of both maternal and foetal plasma, that an electrogenic pump effects absorption of Na(+) from the allantoic fluid into the foetal blood, and that the [K(+)] and [Cl(-)] of allantoic fluid are maintained largely by passive exchange under the action of electrochemical gradients between maternal plasma and allantoic fluid, and between foetal plasma and allantoic fluid.4. The results considered in the context of Na(+) passage between mother and foetus call in question the general assumption that all Na(+) reaches the foetus by passing across the placenta.
摘要
  1. 在妊娠后期,已在体内和体外测量了山羊和绵羊孕体各腔室的电位差,并测定了取自这些动物的母血和胎儿血浆以及羊水和尿囊液的渗透压、[Na⁺]、[K⁺]和[Cl⁻]。

  2. 山羊和绵羊的电位差(p.d.)模式相同。

(a)山羊的经胎盘电位差约为71 mV(胎儿为负),绵羊约为51 mV(胎儿为负)。

(b)羊水电位差(即母体细胞外液与羊水之间测得的电位差)随着妊娠进展而降低(山羊从110 mV降至70 mV,绵羊从90 mV降至50 mV),且等于经胎盘电位差与胎儿血液和羊水之间电位差之和。羊水相对于母体和胎儿血液均为负。

(c)山羊的尿囊液电位差(母体细胞外液与尿囊液之间测得的)约为107 mV,绵羊约为96 mV,等于经胎盘电位差与胎儿血液和尿囊液之间电位差之和。尿囊液相对于母体和胎儿血液均为负。

(d)结果表明,液囊的电位差源自胎儿液体与灌注胎膜的血液之间的活动,而非跨完整胎膜厚度的活动。

  1. 考虑离子浓度与母体和胎儿液体腔室之间发现的电化学梯度的关系,以确定离子是否根据电化学平衡分布。

(a)似乎羊水中的离子倾向于与胎儿血浆而非母体血浆或尿囊液达到平衡,羊水中[Na⁺]和[K⁺]的变化在很大程度上可由被动因素解释,且[Cl⁻]的变化与从胎儿血液导向羊水的电致Cl⁻泵的活动有关。

(b)似乎尿囊液中的离子可与母体和胎儿血浆中的离子交换,一个电致泵促使尿囊液中的Na⁺被吸收到胎儿血液中,且尿囊液的[K⁺]和[Cl⁻]在很大程度上通过母体血浆与尿囊液之间以及胎儿血浆与尿囊液之间电化学梯度作用下的被动交换得以维持。

  1. 在母亲与胎儿之间Na⁺通道的背景下考虑这些结果,对所有Na⁺都通过胎盘进入胎儿这一普遍假设提出了质疑。

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DIFFERENCE IN ELECTRIC POTENTIAL ACROSS THE PLACENTA OF GOATS.山羊胎盘两侧的电位差
Proc Natl Acad Sci U S A. 1958 May;44(5):483-5. doi: 10.1073/pnas.44.5.483.
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Sodium transport by the chorioallantoic membrane of the pig.猪绒毛尿囊膜的钠转运
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Transport mechanisms in the foetus.胎儿的转运机制。
Br Med Bull. 1961 May;17:107-11. doi: 10.1093/oxfordjournals.bmb.a069882.
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Renal function in the sheep foetus.绵羊胎儿的肾功能。
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