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线粒体中通过H⁺同向转运和二羧酸载体进行的硫酸盐转运。

Sulphate transport by H+ symport and by the dicarboxylate carrier in mitochondria.

作者信息

Saris N E

出版信息

Biochem J. 1980 Dec 15;192(3):911-7. doi: 10.1042/bj1920911.

DOI:10.1042/bj1920911
PMID:7236245
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1162417/
Abstract
  1. Swelling of mitochondria was induced in non-respiring mitochondria by 30 mM or more Na2SO4 or by respiration in the presence of K2SO4. Respiration-drive swelling resulted in loss of respiratory control. Sulphate, when present at 10 mM concentration, promoted the release of accumulated Ca2+. 2. Swelling was prevented by N-ethylmaleimide and formaldehyde, known inhibitors of the phosphate carrier. Sulphate-induced swelling was more sensitive to the inhibitors than was phosphate-induced swelling. At lower concentration of sulphate, 5 mM, an alkalinisation of the medium was observed in addition of sulphate, indicating H+-sulphate symport. There was competition between sulphate and phosphate for transport by this mechanism. It is suggested that sulphate may be transported, though at a comparatively slow rate, by the phosphate carrier. 3. Uptake of sulphate was stimulated when preceded by energy-dependent accumulation of Ba2+, especially when acetate was also present, indicating precipitation of BaSO4 in the matrix. Using this system the influx of sulphate was studied at lower concentrations, 10 mM or less. the contributions of the H+ symporter (sensitive to N-ethylmaleimide) and the dicarboxylate carrier (sensitive to butylmalonate) could then be studied. The dicarboxylate carrier had a lower Km and was mainly responsible for sulphate transport at lower concentration range. At 10 mM-sulphate the transport rates by the two systems appeared to be similar; at still higher concentrations the H+ symporter may become more important.
摘要
  1. 在不进行呼吸的线粒体中,30 mM及以上的Na2SO4或在K2SO4存在下进行呼吸可诱导线粒体肿胀。呼吸驱动的肿胀导致呼吸控制丧失。当硫酸盐浓度为10 mM时,可促进积累的Ca2+释放。2. N-乙基马来酰亚胺和甲醛(已知的磷酸盐载体抑制剂)可防止肿胀。硫酸盐诱导的肿胀比磷酸盐诱导的肿胀对抑制剂更敏感。在较低浓度的硫酸盐(5 mM)下,添加硫酸盐后观察到培养基碱化,表明存在H+-硫酸盐同向转运。在这种转运机制中,硫酸盐和磷酸盐之间存在竞争。有人提出,硫酸盐可能通过磷酸盐载体进行转运,尽管速率相对较慢。3. 在Ba2+进行能量依赖性积累之后,尤其是当也存在乙酸盐时,硫酸盐的摄取会受到刺激,这表明BaSO4在基质中沉淀。利用该系统研究了较低浓度(10 mM或更低)下硫酸盐的流入。然后可以研究H+同向转运体(对N-乙基马来酰亚胺敏感)和二羧酸载体(对丁基丙二酸敏感)的作用。二羧酸载体的Km较低,在较低浓度范围内主要负责硫酸盐的转运。在10 mM硫酸盐时,两种系统的转运速率似乎相似;在更高浓度时,H+同向转运体可能变得更为重要。

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Sulphate transport by H+ symport and by the dicarboxylate carrier in mitochondria.线粒体中通过H⁺同向转运和二羧酸载体进行的硫酸盐转运。
Biochem J. 1980 Dec 15;192(3):911-7. doi: 10.1042/bj1920911.
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[Transport of H+ in mitochondria induced by the uptake of sulfite, sulfate and thiosulfate].[亚硫酸盐、硫酸盐和硫代硫酸盐摄取诱导的线粒体中H⁺转运]
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Sulfate influx across the rabbit ileal brush border membrane: sodium and proton dependence, and substrate specificities.硫酸根跨兔回肠刷状缘膜的内流:对钠和质子的依赖性以及底物特异性。
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本文引用的文献

1
PARATHYROID HORMONE AND ANION UPTAKE IN ISOLATED MITOCHONDRIA.甲状旁腺激素与分离线粒体中阴离子的摄取
Endocrinology. 1964 Mar;74:388-94. doi: 10.1210/endo-74-3-388.
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Accumulation of sulfate by mitochondria of rat kidney cortex.大鼠肾皮质线粒体对硫酸盐的积累。
J Gen Physiol. 1962 Mar;45(4):757-75. doi: 10.1085/jgp.45.4.757.
3
Effect of sulphydryl-blocking reagents on mitochondrial anion-exchange reactions involving phosphate.巯基阻断剂对涉及磷酸盐的线粒体阴离子交换反应的影响。
FEBS Lett. 1970 May 11;8(1):41-44. doi: 10.1016/0014-5793(70)80220-4.
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Translocation of some anions cations and acids in rat liver mitochondria.大鼠肝脏线粒体中一些阴离子、阳离子和酸的转运
Eur J Biochem. 1969 Jun;9(2):149-55. doi: 10.1111/j.1432-1033.1969.tb00588.x.
5
Evidence of a phosphate-transporter system in the inner membrane of isolated mitochondria.分离线粒体内膜中磷酸转运体系统的证据。
Biochem J. 1969 Mar;111(5):665-78. doi: 10.1042/bj1110665.
6
The transport of sulphate and sulphite in rat liver mitochondria.大鼠肝脏线粒体中硫酸盐和亚硫酸盐的转运
Biochem J. 1974 Jul;142(1):127-37. doi: 10.1042/bj1420127.
7
Effect of hydroxylamine on respiration and oxidative phosphorylation.羟胺对呼吸作用和氧化磷酸化的影响。
Eur J Biochem. 1969 Jun;9(2):160-6. doi: 10.1111/j.1432-1033.1969.tb00590.x.
8
A kinetic study of sulphate transport in rat liver mitochondria.大鼠肝线粒体中硫酸盐转运的动力学研究。
Biochem J. 1975 Mar;146(3):667-73. doi: 10.1042/bj1460667.