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铝对神经末梢中乙酰辅酶A和乙酰胆碱代谢的影响。

Effect of aluminum on acetyl-CoA and acetylcholine metabolism in nerve terminals.

作者信息

Bielarczyk H, Tomaszewicz M, Szutowicz A

机构信息

Department of Clinical Biochemistry, Medical University of Gdańsk, Poland.

出版信息

J Neurochem. 1998 Mar;70(3):1175-81. doi: 10.1046/j.1471-4159.1998.70031175.x.

Abstract

The potential ability of Al to affect cholinergic transmission was studied on synaptosomal fractions of rat brain incubated with pyruvate in depolarizing medium containing 30 mM K+. Addition of 1 mM Ca caused a 266% increase in the acetylcholine (ACh) release despite decreased pyruvate oxidation. Under these conditions, 0.25 mM Al did not affect pyruvate oxidation but raised mitochondrial and decreased synaptoplasmic acetyl-CoA. Simultaneously, a 61% inhibition of Ca-evoked ACh release was observed. Verapamil (0.1 and 0.5 mM) decreased the acetyl-CoA concentration in synaptoplasm and inhibited ACh release. Al (0.012 mM) partially reversed these inhibitory effects. Omission of Pi from the medium abolished suppressive effects of Al on acetyl-CoA content and Ca-evoked transmitter release. We conclude that the Al(PO4)OH- complex may be the active form of Al, which, by interaction with the verapamil binding sites of Ca channels, is likely to restrict the Ca influx to the synaptoplasm. This may inhibit the provision of acetyl-CoA to the synaptoplasm as well as the Ca-evoked ACh release. One may suppose that excessive accumulation of Al in some encephalopathic brains may, by this mechanism, suppress still-surviving cholinergic neurons and exacerbate cognitive deficits caused by already-existing structural losses in the cholinergic system.

摘要

在含有30 mM钾的去极化培养基中,用丙酮酸孵育大鼠脑突触体组分,研究铝影响胆碱能传递的潜在能力。添加1 mM钙可使乙酰胆碱(ACh)释放增加266%,尽管丙酮酸氧化减少。在这些条件下,0.25 mM铝不影响丙酮酸氧化,但会升高线粒体乙酰辅酶A并降低突触质乙酰辅酶A。同时,观察到钙诱发的ACh释放受到61%的抑制。维拉帕米(0.1和0.5 mM)降低突触质中乙酰辅酶A浓度并抑制ACh释放。0.012 mM铝部分逆转了这些抑制作用。培养基中省略无机磷酸盐消除了铝对乙酰辅酶A含量和钙诱发递质释放的抑制作用。我们得出结论,Al(PO4)OH-复合物可能是铝的活性形式,它通过与钙通道的维拉帕米结合位点相互作用,可能会限制钙流入突触质。这可能会抑制向突触质提供乙酰辅酶A以及钙诱发的ACh释放。可以推测,在某些脑病大脑中铝的过度积累可能通过这种机制抑制仍存活的胆碱能神经元,并加剧由胆碱能系统中已存在的结构损伤引起的认知缺陷。

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