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Quantum physics guides proton motion in biological systems
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近期研究表明,生命体内的质子转移过程可能与电子自旋密切相关,这暗示了基本生命过程的量子特性。以色列科学家通过实验证实,在溶菌酶晶体中,质子的移动速度受到电子自旋方向的影响。这一发现揭示了量子物理学在生物过程中的关键作用,特别是手性环境对电子自旋的影响。这项研究不仅有助于理解细胞内信息和能量的传递方式,还强调了量子物理学与生物化学之间的内在联系,为未来控制细胞内物质转移提供了可能性。

⚛️研究的核心在于,科学家们发现质子转移与电子自旋之间存在联系。通过在磁性基底上放置溶菌酶晶体,他们观察到质子的移动速度受到电子自旋方向的影响。

🔬实验使用了溶菌酶,这是一种在生物体中常见的酶。研究团队将溶菌酶晶体置于磁性基底上,并观察了电子从基底中发射出来后进入溶菌酶的情况。电子与晶格的振动(声子)耦合,而声子的手性决定了它们将与哪个电子自旋耦合。

🔄实验结果显示,质子在不同磁化方向下的移动速度存在显著差异。这种现象表明,质子转移与自旋选择性电子转移之间存在关联,揭示了量子物理在生物过程中的重要作用。

💡该研究强调了手性在生物过程中的作用,并揭示了量子物理学和生物化学之间的内在联系。研究人员认为,这些发现有助于理解细胞内信息和能量的转移,甚至可能在未来实现对这种转移的控制。

If you dig deep enough, you’ll find that most biochemical and physiological processes rely on shuttling hydrogen atoms – protons – around living systems. Until recently, this proton transfer process was thought to occur when protons jump from water molecule to water molecule and between chains of amino acids. In 2023, however, researchers suggested that protons might, in fact, transfer at the same time as electrons. Scientists in Israel have now confirmed this is indeed the case, while also showing that proton movement is linked to the electrons’ spin, or magnetic moment. Since the properties of electron spin are defined by quantum mechanics, the new findings imply that essential life processes are intrinsically quantum in nature.

The scientists obtained this result by placing crystals of lysozyme – an enzyme commonly found in living organisms – on a magnetic substrate. Depending on the direction of the substrate’s magnetization, the spin of the electrons ejected from this substrate may be up or down. Once the electrons are ejected from the substrate, they enter the lysozymes. There, they become coupled to phonons, or vibrations of the crystal lattice.

Crucially, this coupling is not random. Instead, the chirality, or “handedness”, of the phonons determines which electron spin they will couple with – a  property known as chiral induced spin selectivity.

Excited chiral phonons mediate electron coupling spin

When the scientists turned their attention to proton transfer through the lysozymes, they discovered that the protons moved much more slowly with one magnetization direction than they did with the opposite. This connection between proton transfer and spin-selective electron transfer did not surprise Yossi Paltiel, who co-led the study with his Hebrew University of Jerusalem (HUJI) colleagues Naama Goren, Nir Keren and Oded Livnah in collaboration with Nurit Ashkenazy of Ben Gurion University and Ron Naaman of the Weizmann Institute.

“Proton transfer in living organisms occurs in a chiral environment and is an essential process,” Paltiel says. “Since protons also have spin, it was logical for us to try to relate proton transfer to electron spin in this work.”

The finding could shed light on proton hopping in biological environments, Paltiel tells Physics World. “It may ultimately help us understand how information and energy are transferred inside living cells, and perhaps even allow us to control this transfer in the future.

“The results also emphasize the role of chirality in biological processes,” he adds, “and show how quantum physics and biochemistry are fundamentally related.”

The HUJI team now plans to study how the coupling between the proton transfer process and the transfer of spin polarized electrons depends on specific biological environments. “We also want to find out to what extent the coupling affects the activity of cells,” Paltiel says.

Their present study is detailed in PNAS.

The post Quantum physics guides proton motion in biological systems appeared first on Physics World.

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量子物理 质子转移 电子自旋 生物过程 手性
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