Heat-rechargeable computation in DNA logic circuits and neural networks

IF 48.5 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Nature Pub Date : 2025-10-01 DOI:10.1038/s41586-025-09570-2
Tianqi Song, Lulu Qian
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引用次数: 0

Abstract

Metabolism enables life to sustain dynamics and to repeatedly interact with the environment by storing and consuming chemical energy. A major challenge for artificial molecular machines is to find a universal energy source akin to ATP for biological organisms and electricity for electromechanical machines. More than 20 years ago, DNA was first used as fuel to drive nanomechanical devices1,2 and catalytic reactions3. However, each system requires distinct fuel sequences, preventing DNA alone from becoming a universal energy source. Despite extensive efforts4, we still lack an ATP-like or electricity-like power supply to sustain diverse molecular machines. Here we show that heat can restore enzyme-free DNA circuits from equilibrium to out-of-equilibrium states. During heating and cooling, nucleic acids with strong secondary structures reach kinetically trapped states5,6, providing energy for subsequent computation. We demonstrate that complex logic circuits and neural networks, involving more than 200 distinct molecular species, can respond to a temperature ramp and recharge within minutes, allowing at least 16 rounds of computation with varying sequential inputs. Our strategy enables diverse systems to be powered by the same energy source without problematic waste build-up, thereby ensuring consistent performance over time. This scalable approach supports the sustained operation of enzyme-free molecular circuits and opens opportunities for advanced autonomous behaviours, such as iterative computation and unsupervised learning in artificial chemical systems. Heat recharges enzyme-free DNA circuits, enabling complex logic operations and neural networks to perform multiple computations, offering a universal energy source for molecular machines and advancing autonomous behaviours in artificial chemical systems.

Abstract Image

DNA逻辑电路和神经网络中的热可充电计算。
新陈代谢使生命能够维持动态,并通过储存和消耗化学能与环境反复相互作用。人工分子机器面临的一个主要挑战是找到一种通用的能源,类似于生物有机体的ATP和机电机器的电力。20多年前,DNA首次被用作驱动纳米机械装置和催化反应的燃料。然而,每个系统都需要不同的燃料序列,这阻止了DNA单独成为通用的能量来源。尽管我们付出了巨大的努力,但我们仍然缺乏一种类似atp或类似电的电源来维持各种分子机器的运转。在这里,我们表明,热可以恢复无酶的DNA电路从平衡到非平衡状态。在加热和冷却过程中,具有强二级结构的核酸达到动力学捕获态5,6,为后续计算提供能量。我们证明了复杂的逻辑电路和神经网络,涉及200多种不同的分子物种,可以在几分钟内对温度斜坡做出反应并重新充电,允许至少16轮不同顺序输入的计算。我们的策略使不同的系统能够由相同的能源供电,而不会产生有问题的废物积累,从而确保长期稳定的性能。这种可扩展的方法支持无酶分子电路的持续运行,并为人工化学系统中的迭代计算和无监督学习等高级自主行为提供了机会。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Nature
Nature 综合性期刊-综合性期刊
CiteScore
90.00
自引率
1.20%
发文量
3652
审稿时长
3 months
期刊介绍: Nature is a prestigious international journal that publishes peer-reviewed research in various scientific and technological fields. The selection of articles is based on criteria such as originality, importance, interdisciplinary relevance, timeliness, accessibility, elegance, and surprising conclusions. In addition to showcasing significant scientific advances, Nature delivers rapid, authoritative, insightful news, and interpretation of current and upcoming trends impacting science, scientists, and the broader public. The journal serves a dual purpose: firstly, to promptly share noteworthy scientific advances and foster discussions among scientists, and secondly, to ensure the swift dissemination of scientific results globally, emphasizing their significance for knowledge, culture, and daily life.
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