Speciation of aluminum in biological systems.

W. R. Harris, G. Berthon, J. Day, Christopher Exley, T. Flaten, W. Forbes, Tamás Kiss, Chris Orvig, P. Zatta
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引用次数: 161

Abstract

As a "hard", trivalent metal ion, Al3- binds strongly to oxygen-donor ligands such as citrate and phosphate. The aqueous coordination chemistry of Al is complicated by the tendency of many Al complexes to hydrolyze and form polynuclear species, many of which are sparingly soluble. Thus there is considerable variation among the Al stability constants reported for several important ligands. The complexity in the aqueous chemistry of Al has also affected Al toxicity studies, which have often utilized poorly characterized Al stock solutions. Serum fractionation studies show that most Al is protein bound, primarily to the serum iron transport protein transferrin. Albumin appears to play little, if any, role in serum transport. There is little agreement as to the speciation of the remaining low-molecular mass fraction of serum Al. The lability of the Al3+ion precludes the simple separation and identification of individual Al complexes. Computational methods are available for detailed computer calculations of the Al speciation in serum, but efforts in this area have been severely hampered by the uncertainties regarding the stability constants of the low molecular mass Al complexes with citrate, phosphate, and hydroxide. Specific recommendations for further research on Al speciation include: (1) Determine more accurate Al stability constants with critical low molecular mass ligands such as citrate and phosphate; (2) supplement traditional potentiometric studies on Al complexes with data from other techniques such as 27Al-NMR and accelerator mass spectrometry with 26Al; (3) develop new methods for generating reliable linear free energy relationships for Al complexation; (4) determine equilibrium and rate constants for Al binding to transferrin at 37 degrees C; (5) confirm the possible formation of low-molecular-mass Al-protein complexes following desferrioxamine therapy; (6) continue research efforts to incorporate kinetic considerations into the present equilibrium speciation calculations; (7) improve methods for preparing chemically well-defined stock solutions for toxicological studies; (8) incorporate more detailed speciation data into studies on Al toxicity and pharmacokinetics; and (9) incorporate more detailed speciation data into future epidemiological studies on the relationship between Al toxicity and various water quality parameters.
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铝在生物系统中的形态。
作为一种“硬”的三价金属离子,Al3-与柠檬酸盐和磷酸盐等供氧配体结合强烈。许多Al配合物倾向于水解并形成多核物质,其中许多是少溶的,这使得Al的水配位化学变得复杂。因此,几个重要配体的Al稳定性常数之间存在相当大的变化。铝水化学的复杂性也影响了铝的毒性研究,这些研究通常使用表征不佳的铝原液。血清分离研究表明,大多数铝是蛋白结合的,主要与血清铁转运蛋白转铁蛋白结合。白蛋白似乎在血清转运中起的作用很小,如果有的话。关于血清Al的剩余低分子质量分数的形态,目前还没有达成一致意见。Al3+离子的不稳定性阻碍了单个Al复合物的简单分离和鉴定。计算方法可用于血清中Al形态的详细计算机计算,但由于低分子质量Al与柠檬酸盐、磷酸盐和氢氧化物配合物的稳定性常数的不确定性,这一领域的努力受到严重阻碍。对进一步研究Al形态的具体建议包括:(1)用临界低分子质量配体(如柠檬酸盐和磷酸盐)确定更准确的Al稳定常数;(2)利用27Al-NMR和26Al加速器质谱等其他技术的数据补充传统的Al配合物电位法研究;(3)开发生成可靠的Al络合线性自由能关系的新方法;(4)测定37℃下Al与转铁蛋白结合的平衡和速率常数;(5)证实去铁胺治疗后可能形成低分子质量al -蛋白复合物;(6)继续研究工作,将动力学因素纳入目前的平衡物种形成计算;(7)改进毒理学研究用化学定义明确的原液的制备方法;(8)将更详细的物种形成数据纳入Al毒性和药代动力学研究;(9)将更详细的物种形成数据纳入未来关于Al毒性与各种水质参数关系的流行病学研究中。
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