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The stereochemistry of amide side chains containing carboxyl groups influences water exchange rates in EuDOTA-tetraamide complexes

机译:含羧基酰胺侧链的立体化学影响EuDORA-四酰胺配合物中的水交换速率

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摘要

Many Eu(III) complexes formed with DOTA-tetraamide ligands (where DOTA is 1,4,7,10-tetraazacyclododecane-1,4,7,10-tetraacetic acid) have sufficiently slow water exchange kinetics to meet the slow-to-intermediate condition required to serve as chemical exchange saturation transfer (CEST) contrast agents for MRI. This class of MRI contrast agents offers an attractive platform for creating biological sensors because water exchange is exquisitely sensitive to subtle ligand stereochemistry and electronic effects. Introduction of carboxyl groups or carboxyl ethyl ester groups on the amide substituents has been shown to slow water exchange in these complexes, but less is known about the orientation or position of these side-chain groups relative to the inner-sphere Eu(III)-bound water molecule. In this study, a series of Eu(III) complexes having one or more carboxyl groups or carboxyl esters at the δ-position of the pendant amide side chains were prepared. Initial attempts to prepare optically pure EuDOTA-[(S)-Asp]4 resulted in a chemically pure ligand consisting of a mixture of stereochemical isomers. This was traced to racemization of (S)-aspartate diethyl ester during the synthetic procedure. Nevertheless, NMR studies of the Eu(III) complexes of this mixture revealed that each isomer had a different water exchange rate, differing by a factor of 2 or more. A second controlled synthesis and CEST study of EuDOTA-[(S)-Asp]4 and cis-EuDOTA-[(S)-Asp]2[(R)-Asp]2 confirmed that the water exchange rates in these diastereomeric complexes are controlled by the axial versus equatorial orientation of the carboxyl groups on the amide side chains. These observations provide new insights toward the development of even more slowly water exchanging systems which will be necessary for practical in vivo applications.
机译:与DOTA-四酰胺配体(其中DOTA为1,4,7,10-四氮杂环十二烷-1,4,7,10-四乙酸)形成的许多Eu(III)配合物具有足够慢的水交换动力学特性,可满足慢至用作MRI的化学交换饱和转移(CEST)造影剂所需的中间条件。这类MRI造影剂为创建生物传感器提供了一个有吸引力的平台,因为水交换对微妙的配体立体化学和电子效应非常敏感。已显示在酰胺取代基上引入羧基或羧基乙基酯基团会减缓这些配合物中的水交换,但对于这些侧链基团相对于内球Eu(III)-的取向或位置知之甚少结合水分子。在这项研究中,制备了一系列在一个侧基酰胺侧链的δ位具有一个或多个羧基或羧基酯的Eu(III)配合物。制备光学纯的EuDOTA-[(S)-Asp] 4的初步尝试产生了由立体化学异构体混合物组成的化学纯的配体。追溯到合成过程中(S)-天冬氨酸二乙酯的外消旋化。然而,该混合物的Eu(III)配合物的NMR研究表明,每种异构体的水交换速率都不同,相差2倍或更多。 EuDOTA-[(S)-Asp] 4和顺式-EuDOTA-[(S-Asp] 2 [(R)-Asp] 2)的第二次受控合成和CEST研究证实,这些非对映异构体复合物中的水交换速率为由酰胺侧链上的羧基的轴向相对于赤道取向控制。这些观察结果为开发更加缓慢的水交换系统提供了新的见识,这对于实际的体内应用必不可少。

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