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氯仿对类蛋白电活性的影响

On Effect of Chloroform on Electrical Activity of Proteinoids.

作者信息

Mougkogiannis Panagiotis, Adamatzky Andrew

机构信息

Unconventional Computing Laboratory, UWE, Bristol BS16 1QY, UK.

出版信息

Biomimetics (Basel). 2024 Jun 23;9(7):380. doi: 10.3390/biomimetics9070380.

Abstract

Proteinoids, or thermal proteins, produce hollow microspheres in aqueous solutions. Ensembles of the microspheres produce endogenous spikes of electrical activity, similar to that of neurons. To make the first step toward the evaluation of the mechanisms of such electrical behaviour, we decided to expose proteinoids to chloroform. We found that while chloroform does not inhibit the electrical oscillations of proteinoids, it causes substantial changes in the patterns of electrical activity. Namely, incremental chloroform exposure strongly affects proteinoid microsphere electrical activity across multiple metrics. As chloroform levels rise, the spike potential drops from 0.9 mV under control conditions to 0.1 mV at 25 mg/mL. This progressive spike potential decrease suggests chloroform suppresses proteinoid electrical activity. The time between spikes, the interspike period, follows a similar pattern. Minimal chloroform exposure does not change the average interspike period, while higher exposures do. It drops from 23.2 min under control experiments to 3.8 min at 25 mg/mL chloroform, indicating increased frequency of the electrical activity. These findings might lead to a deeper understanding of the electrical activity of proteinoids and their potential application in the domain of bioelectronics.

摘要

类蛋白质,即热蛋白质,在水溶液中会产生中空微球体。这些微球体集合会产生内源性电活动尖峰,类似于神经元的电活动尖峰。为了朝着评估这种电行为的机制迈出第一步,我们决定将类蛋白质暴露于氯仿中。我们发现,虽然氯仿不会抑制类蛋白质的电振荡,但它会导致电活动模式发生实质性变化。具体而言,逐渐增加氯仿暴露量会在多个指标上强烈影响类蛋白质微球体的电活动。随着氯仿浓度的升高,尖峰电位从对照条件下的0.9毫伏降至25毫克/毫升时的0.1毫伏。这种尖峰电位的逐渐降低表明氯仿会抑制类蛋白质的电活动。尖峰之间的时间,即峰间期,也呈现出类似的模式。最低剂量的氯仿暴露不会改变平均峰间期,而更高剂量的暴露则会改变。它从对照实验中的23.2分钟降至25毫克/毫升氯仿时的3.8分钟,表明电活动频率增加。这些发现可能会使人们对类蛋白质的电活动及其在生物电子学领域的潜在应用有更深入的了解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cb46/11275190/3b871e257543/biomimetics-09-00380-g0A1.jpg

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