Statistical mechanics of cell aggregates: explaining the phase transition and paradoxical piezoelectric behavior of soft biological tissues.

IF 2.9 3区 化学 Q3 CHEMISTRY, PHYSICAL
Soft Matter Pub Date : 2025-04-08 DOI:10.1039/d5sm00035a
Pratik Khandagale, Hao Lin, Liping Liu, Pradeep Sharma
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Abstract

Piezoelectricity in biological soft tissues is a controversial issue with differing opinions. While there is compelling experimental evidence to suggest a piezoelectric-like response in tissues such as the aortic wall (among others), there are equally compelling experiments that argue against this notion. In addition, the lack of a polar structure in the underlying components of most soft biological tissues supports the latter. In this paper, we address the collective behavior of cells within a two-dimensional cell aggregate from the viewpoint of statistical mechanics. Our starting point is the simplest form of energy for cell behavior that only includes known observable facts e.g., the electrical Maxwell stress or electrostriction, resting potential across cell membranes, elasticity, and we explicitly exclude any possibility of electromechanical coupling reminiscent of piezoelectricity at the cellular level. We coarse-grain our cellular aggregate to obtain its emergent mechanical, physical, and electromechanical properties. Our findings indicate that the fluctuation of cellular strain (E) plays a similar role as the absolute temperature in a conventional atomistic-level statistical model. The coarse-grained effective free energy reveals several intriguing features of the collective behavior of cell aggregates, such as solid-fluid phase transitions and a distinct piezoelectric-like coupling, even though it is completely absent at the microscale. Closed-form formulas are obtained for key electromechanical properties, including stiffness, effective resting potential, critical E2-temperature (or fluctuation) for solid-fluid phase transitions, and apparent piezoelectric coupling in terms of fluctuation and electric potential regulated by active cellular processes.

细胞聚集的统计力学:解释生物软组织的相变和矛盾的压电行为。
生物软组织的压电性是一个有争议的问题,众说纷纭。虽然有令人信服的实验证据表明,在主动脉壁等组织(以及其他组织)中存在类似压电的反应,但也有同样令人信服的实验反对这种观点。此外,在大多数软生物组织的潜在成分中缺乏极性结构支持后者。在这篇论文中,我们从统计力学的角度讨论了二维细胞群中细胞的集体行为。我们的出发点是细胞行为的最简单的能量形式,它只包括已知的可观察事实,例如,电麦克斯韦应力或电伸缩,细胞膜上的静息电位,弹性,我们明确排除了任何可能的机电耦合,让人想起细胞水平上的压电。我们粗粒化我们的细胞聚集体,以获得其新兴的机械,物理和机电性能。我们的研究结果表明,细胞应变(E)的波动在传统的原子水平统计模型中起着与绝对温度相似的作用。粗粒度的有效自由能揭示了细胞聚集体行为的几个有趣特征,如固-液相变和明显的压电耦合,尽管在微观尺度上完全不存在。得到了关键机电性能的封闭公式,包括刚度、有效静息电位、固-液相变的临界e2 -温度(或波动),以及活跃细胞过程调节的波动和电势方面的表观压电耦合。
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来源期刊
Soft Matter
Soft Matter 工程技术-材料科学:综合
CiteScore
6.00
自引率
5.90%
发文量
891
审稿时长
1.9 months
期刊介绍: Soft Matter is an international journal published by the Royal Society of Chemistry using Engineering-Materials Science: A Synthesis as its research focus. It publishes original research articles, review articles, and synthesis articles related to this field, reporting the latest discoveries in the relevant theoretical, practical, and applied disciplines in a timely manner, and aims to promote the rapid exchange of scientific information in this subject area. The journal is an open access journal. The journal is an open access journal and has not been placed on the alert list in the last three years.
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