生命能量的时空全息学:迈向频率和太赫兹药物医学

Li-Ping Wang, Feng Gao, Zhou-Xiang Zhao, Shi-hao Liu, Rui-Song Xu, Jun Guo, Feng Zhang
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引用次数: 0

摘要

生命如何有效利用能量和传递信息的量子机制尚不清楚。频率医学是量子力学和生物医学的新兴交叉学科,是生物材料和医学从物质层面向能量层面发展的一个充满希望的转折点。认识到分子振动频率在共振能量耦合和传输中的关键作用,凸显了频率医学在精确调节生物材料振动、影响生物体内相互作用和反应方面的潜力。目前,科学家们已经推出了先进的光疗技术,但要想取得进展,就必须精确绘制生命能量图。与在物质层面研究的基因组学、蛋白质组学和代谢组学不同,与医学相关的奥米克斯频率学应在能量层面进行研究。在此,我们从频率医学的历史出发,继而介绍振动强耦合在生命科学中的应用,强调研究医学频率时空全息的意义、必要性和紧迫性。通过解码生命能量图谱,我们可以从能量的角度深刻洞察支配生命过程的量子机制。我们预计,将生物材料与与医学研究相关的时空频率全息技术相结合,将极大地促进精准医学目标的实现,并有可能给太赫兹药物等制药业带来革命性的变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Spatiotemporal omics of life energy: Towards medicine of frequencies and terahertz drugs

Spatiotemporal omics of life energy: Towards medicine of frequencies and terahertz drugs

The quantum mechanisms how life efficiently utilizes energy and transmits information remain unclear yet. Frequency medicine, an emerging cross-discipline of both quantum mechanics and biomedicine, is a promising turning point for biomaterials and medicine developing from the matter level to the energy level. Recognizing the pivotal role of molecular vibrational frequencies in resonant energy coupling and transmission underscores the potential of frequency medicine to precisely regulate biomaterial vibrations, influencing interactions and reactions in living organisms. At present, scientists have unveiled sophisticated phototherapeutics; nevertheless, their advancement necessitates the precise mapping of the life energy. In contrast to genomics, proteomics, and metabolomics studied on the matter level, omics of frequencies related to medicine should be on the energy level. Herein, starting from the history of frequency medicine, and followed by the introduction of vibrational strong coupling applications in life sciences, we emphasize the significance, necessity, and urgency of studying spatiotemporal omics of medicine frequencies. By decoding the energy atlas of life, we can acquire profound insights into the quantum mechanisms that govern life processes from an energy standpoint. We anticipate that the integration of biomaterials with spatiotemporal frequency omics related to medical research will contribute significantly to advancing the goals of precision medicine, potentially revolutionizing pharmaceuticals, such as terahertz drugs.

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