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Internal Water Molecules and Magnetic Relaxation in Agarose Gels

机译:琼脂糖凝胶中的内部水分子和磁弛豫

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摘要

Agarose gels have long been known to produce exceptionally large enhancements of the water ~1H and ~2H magnetic relaxation rates.The molecular basis for this effect has not been clearly established,despite its potential importance for a wide range of applications of agarose gels,including their use as biological tissue models in magnetic resonance imaging.To resolve this issue,we have measured the ~2H magnetic relaxation dispersion profile from agarose gels over more than 4 frequency decades.We find a very large dispersion,which,at neutral pH,is produced entirely by internal water molecules,exchanging with bulk water on the time scale 10~(-8)-10~(-6) s.The most long-lived of these dominate the dispersion and give rise to a temperature maximum in the low-frequency relaxation rate.At acidic pH,there is also a low-frequency contribution from hydroxyl deuterons exchanging on a time scale of 10~(-4) s.Our analysis of the dispersion profiles is based on a nonperturbative relaxation theory that remains valid outside the conventional motional-narrowing regime.The results of this analysis suggest that the internal water molecules responsible for the dispersion are located in the central cavity of the agarose double helix,as previously proposed on the basis of fiber diffraction data.The magnetic relaxation mechanism invoked here,where spin relaxation is induced directly by molecular exchange,also provides a molecular basis for understanding the water ~1H relaxation behavior that governs the intrinsic magnetic resonance image contrast in biological tissue.
机译:长期以来已知琼脂糖凝胶会产生极大的水〜1H和〜2H磁弛豫速率增强作用。尽管这种作用对琼脂糖凝胶的广泛应用具有潜在的重要性,但尚未明确建立这种作用的分子基础。为了解决这个问题,我们在超过4个频率的十年中测量了琼脂糖凝胶的〜2H磁弛豫色散分布图。我们发现在中性pH下存在很大的色散。完全由内部水分子产生,并在10〜(-8)-10〜(-6)s的时间尺度上与大量水交换。其中寿命最长的支配了分散体,并在低温下产生了最高温度频率弛豫率。在酸性pH值下,羟基氘核交换在10〜(-4)s的时间尺度上也有低频贡献。我们对分散曲线的分析基于非扰动弛豫理论分析的结果表明,负责分散的内部水分子位于琼脂糖双螺旋的中心腔中,如先前根据纤维衍射数据所建议的那样。此处所调用的磁弛豫机制是通过分子交换直接诱发自旋弛豫,这也为理解水〜1H弛豫行为提供了分子基础,而水弛豫行为控制着生物组织中固有的磁共振图像对比度。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2006年第14期|p.4902-4910|共9页
  • 作者单位

    Contribution from the Department of Biophysical Chemistry,Lund University,SE-22100 Lund,Sweden;

    Contribution from the Department of Biophysical Chemistry,Lund University,SE-22100 Lund,Sweden;

    Contribution from the Department of Biophysical Chemistry,Lund University,SE-22100 Lund,Sweden;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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