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通过用各种阳离子替代镁来逆转肌浆网ATP酶循环。当Ca2+取代Mg2+时的磷酸化和ATP合成。

Reversal of the sarcoplasmic reticulum ATPase cycle by substituting various cations for magnesium. Phosphorylation and ATP synthesis when Ca2+ replaces Mg2+.

作者信息

Mintz E, Lacapère J J, Guillain F

机构信息

Service de Biophysique, Département de Biologie, Gif-sur-Yvette, France.

出版信息

J Biol Chem. 1990 Nov 5;265(31):18762-8.

PMID:2146262
Abstract

Reversal of the cycle of sarcoplasmic reticulum ATPase starts from ATPase phosphorylation by Pi, in the presence of Mg2+, and leads to ATP synthesis. We show here that ATP can also be synthesized when Ca2+ replaces Mg2+. In the absence of a calcium gradient and in the presence of dimethyl sulfoxide, ATPase phosphorylation from Pi and Ca2+ led to the formation of an unstable phosphoenzyme. This instability was due to a competition between the phosphorylation reaction induced by Pi and Ca2+ and the transition induced by Ca2+ binding to the transport sites, which led to a conformation that could not be phosphorylated from Pi. Dimethyl sulfoxide and low temperature stabilized the calcium phosphoenzyme, which under appropriate conditions, subsequently reacted with ADP to synthesize ATP. Substitution of Co2+, Mn2+, Cd2+, or Ni2+ for Mg2+ induced ATPase phosphorylation from Pi, giving phosphoenzymes of various stabilities. However, substitution of Ba2+, Sr2+, or Cr3+ produced no detectable phosphoenzymes, under the same experimental conditions. Our results show that ATPase phosphorylation from Pi, like its phosphorylation from ATP, does not have a strict specificity for magnesium.

摘要

肌浆网ATP酶循环的逆转始于在Mg2+存在的情况下Pi对ATP酶的磷酸化作用,并导致ATP合成。我们在此表明,当Ca2+取代Mg2+时也能合成ATP。在不存在钙梯度且存在二甲基亚砜的情况下,Pi和Ca2+对ATP酶的磷酸化作用导致形成一种不稳定的磷酸酶。这种不稳定性是由于Pi和Ca2+诱导的磷酸化反应与Ca2+结合到转运位点所诱导的转变之间的竞争,这导致了一种无法被Pi磷酸化的构象。二甲基亚砜和低温使钙磷酸酶稳定,在适当条件下,其随后与ADP反应合成ATP。用Co2+、Mn2+、Cd2+或Ni2+取代Mg2+会诱导Pi对ATP酶的磷酸化作用,产生具有不同稳定性的磷酸酶。然而,在相同实验条件下,用Ba2+、Sr2+或Cr3+取代则未检测到磷酸酶。我们的结果表明,Pi对ATP酶的磷酸化作用与其从ATP进行的磷酸化作用一样,对镁没有严格的特异性。

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