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Bioenergetics: Experimental demonstration of excess protons and related features

机译:生物能学:多余质子和相关特征的实验证明

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摘要

Over the last 50 years, ever since the Nobel-prize work of Peter Mitchell's Chemiosmotic theory, the question whether bioenergetics energy transduction occurs through localized or delocalized protons has been a controversial issue among scientists. Recently, a proton-electrostatics localization hypothesis was formulated which may provide a new and clear understanding of localized and delocalized proton-coupling energy transduction in many biological systems. The aim of this dissertation was to test this new hypothesis.;To demonstrate the fundamental behavior of localized protons in a pure water-membrane-water system in relation to the newly derived pmf equation, excess protons and excess hydroxyl anions were generated and their distributions were tested using a proton-sensing aluminum membrane. The proton-sensing film placed at the membrane-water interface displayed dramatic localized proton activity while that placed into the bulk water phase showed no excess proton activity during the entire experiment. These observations clearly match with the prediction from the proton-electrostatics localization hypothesis that excess protons do not stay in water bulk phase; they localize at the water-membrane interface in a manner similar to the behavior of excess electrons in a conductor.;In addition, the effect of cations (Na+ and K+ ) on localized excess protons at the water-membrane interface was tested by measuring the exchange equilibrium constant of Na+ and K+ in exchanging with the electrostatically localized protons at a series of cations concentrations. The equilibrium constant for sodium (Na+) cations to exchange with the electrostatically localized protons was determined to be (5.07 +/- 0.46) x 10-8 while the equilibrium constant for potassium (K+) cations to exchange with localized protons was determined to be (6.93 +/- 0.91) x 10 -8. These results mean that the localized protons at the water-membrane interface are so stable that it requires a ten millions more sodium (or potassium) cations than protons in the bulk liquid phase to even partially delocalize them at the water-membrane interface. This provides a logical experimental support of the proton electrostatic localization hypothesis.;One of the basic assumptions of proton-electrostatics localization hypothesis is that it treats liquid water as a proton conductor and that the proton conduction along the water-membrane interface might be a favored pathway for the proton energy coupling bioenergetics across biological membranes. In this study, experimental evidences discussing water acting as a proton conductor were discussed and the conductivity of water with respect to excess protons was estimated. Overall, these findings have significance not only in the science of bioenergetics but also in the fundamental understanding for the importance of water to life in serving as a proton conductor for energy transduction in living organisms.
机译:自彼得·米切尔(Peter Mitchell)的化学渗透理论的诺贝尔奖获得者以来,在过去的50年中,生物能学能量转导是通过局部质子还是通过局部质子发生的问题一直是科学家之间一个有争议的问题。最近,提出了质子静电定位假说,该假说可以为许多生物系统中的局部和离域质子耦合能量传递提供新的和清晰的理解。本文的目的是检验这一新假设。为了证明纯水-膜-水系统中局部质子相对于新推导的pmf方程的基本行为,产生了过量的质子和过量的羟基阴离子及其分布用质子感应铝膜测试。放置在膜-水界面的质子感应膜显示出显着的局部质子活性,而放置在本体水相中的膜在整个实验过程中均未显示过剩的质子活性。这些观察结果与质子静电局部化假设的预测相符,即多余的质子不会停留在水体相中。它们以与导体中过量电子的行为相似的方式定位在水-膜界面上;此外,通过测量以下参数来测试阳离子(Na +和K +)对水-膜界面上局部过量质子的影响。 Na +和K +在一系列阳离子浓度下与静电定位质子交换时的交换平衡常数。钠(Na +)阳离子与静电局部质子交换的平衡常数确定为(5.07 +/- 0.46)x 10-8,而钾(K +)阳离子与局部质子交换的平衡常数确定为(5.07 +/- 0.46)x 10-8。 (6.93 +/- 0.91)x 10 -8。这些结果意味着,在水-膜界面处的局部质子是如此稳定,以至于它需要比本体液相中的质子多一千万的钠(或钾)阳离子才能使它们在水-膜界面处局部离域。这为质子静电局部化假设提供了逻辑上的实验支持。质子静电局部化假设的基本假设之一是,它将液态水视为质子导体,并且沿水-膜界面的质子传导可能会受到青睐。质子能量跨生物膜耦合生物能的途径。在这项研究中,讨论了讨论水作为质子导体的实验证据,并估计了水相对于过量质子的电导率。总体而言,这些发现不仅对生物能学具有重要意义,而且对于水对于生命作为质子导体在生物体内进行能量传导的重要性的基本理解也具有重要意义。

著录项

  • 作者

    Saeed, Haitham A.;

  • 作者单位

    Old Dominion University.;

  • 授予单位 Old Dominion University.;
  • 学科 Chemistry.;Biophysics.;Biochemistry.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 203 p.
  • 总页数 203
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 古生物学;
  • 关键词

  • 入库时间 2022-08-17 11:51:18

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