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Chiral Symmetry Breaking and Complete Chiral Purity by Thermodynamic-Kinetic Feedback Near Equilibrium: Implications for the Origin of Biochirality

机译:热力学运动反馈接近平衡时手性对称性的破坏和完全的手性纯度:对生物手性起源的影响。

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Chiral symmetry breaking occurs when a physical or chemical process spontaneously generates a large excess of one of the two enantiomers-left-handed (L) or right-handed (D)-with no preference as to which of the two enantiomers is produced. From the viewpoint of energy, these two enantiomers can exist with an equal probability, and inorganic processes that involve chiral products commonly yield a racemic mixture of both. The fact that biologically relevant molecules exist only as one of the two enantiomers is a fascinating example of complete symmetry breaking in chirality and has long intrigued the science community. The origin of this selective chirality has remained a fundamental enigma with regard to the origin of life since the time of Pasteur, some 140 years ago. Here, it is shown that two populations of chiral crystals of left and right hand cannot coexist in solution: one of the chiral populations disappears in an irreversible autocatalytic process that nurtures the other one. Final and complete chiral purity seems to be an inexorable fate in the course of the common process of growth-dissolution. This unexpected chiral symmetry breaking can be explained by the feedback between the thermodynamic control of dissolution and the kinetics of the growth process near equilibrium. This "thermodynamic-kinetic feedback near equilibrium" is established as a mechanism to achieve complete chiral purity in solid state from a previously solid racemic medium. The way in which this mechanism could operate in solutions of chiral biomolecules is described. Finally, based on this mechanism, experiments designed to search for chiral purity in a new way are proposed: chiral purity of amino acids or biopolymers is predicted in solid phase from a previously solid racemic medium. This process may have played a key role in the origin of biochirality.
机译:当物理或化学过程自发产生大量过量的两种对映体之一(左旋(L)或右旋(D))时,就会发生手性对称性断裂,而对于两种对映体中的哪一种不产生偏好。从能量的观点来看,这两种对映异构体可以等概率存在,并且涉及手性产物的无机过程通常会产生两者的外消旋混合物。生物学上相关的分子仅以两种对映体之一的形式存在,这是一个完全对称的手性完全破坏的有趣例子,并且长期以来引起了科学界的兴趣。自大约140年前巴斯德(Basteur)时代以来,这种选择性手性的起源一直是生命起源的基本谜团。在这里,表明左手和右手的两个手性晶体群不能共存于溶液中:一个手性群在不可逆的自催化过程中消失,而后者又催化了另一个。在共同的生长-溶解过程中,最终和完全的手性纯度似乎是必然的命运。这种意外的手性对称性断裂可以通过溶解的热力学控制和接近平衡的生长过程动力学之间的反馈来解释。建立这种“接近平衡的热力学动力学反馈”是从先前的固体外消旋介质中获得完全固态的手性纯度的机制。描述了该机制在手性生物分子溶液中的作用方式。最后,基于这种机理,提出了一种旨在寻找新手性纯度的实验:从先前的固态消旋介质中,以固相预测氨基酸或生物聚合物的手性纯度。这个过程可能在生物手性的起源中起了关键作用。

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