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On the spherical prototype of a complex dissipative late-stage formation seen in terms of least action Vojta–Natanson principle

机译:用最小作用伏伊塔-纳坦森原理观察复杂耗散后期形成的球形原型

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摘要

The spherical prototype of a crystalline and/or disorderly formation may help in understanding the final stages of many complex biomolecular arrangements. These stages are important for both naturally organized simple biosystems, such as protein (or, other amphiphilic) aggregates in vivo, as well as certain their artificial counterparts, mimicking either in vitro or in silico their structure–property principal relationship. For our particular one-seed based realization of a protein crystal/aggregate late-stage nucleus grown from nearby fluctuating environment, it turns out that the (osmotic-type) pressure could be, due to local inhomogeneities, and their dynamics shown up in the double layer tightly surrounding the growing object, still an appreciably detectable quantity. This is due to the fact that a special-type generalized thermodynamic (Vojta–Natanson) momentum, subjected to the nucleus’ surface, is manifested interchangeably, whereas the total energy of the solution in the double layer could not be such within the stationary regime explored. It is plausible since the double layer width, related to the object’s surface, contributes ultimately, while based on the so-defined momentum’s changes, to the pressure within this narrow flickering zone, while leaving the total energy fairly unchanged. From the hydrodynamic point of view, the system behaves quite trivially, since the circumventing flow should rather be of laminar, thus not-with-matter supplying, character.
机译:晶体和/或无序形成的球形原型可能有助于理解许多复杂的生物分子排列的最终阶段。这些阶段对于体内自然组织的简单生物系统(例如蛋白质(或其他两亲的)聚集体)以及某些人工模拟的生物系统都很重要,它们在体外或计算机模拟它们的结构-性质主要关系。对于我们特定的基于单种子的从附近波动环境中生长的蛋白质晶体/聚集后期核的实现,事实证明,(渗透型)压力可能是由于局部不均匀性造成的,并且它们的动力学表现在紧紧围绕正在生长的物体的双层,仍然是可检测的数量。这是由于这样的事实:经受核表面的特殊类型的广义热力学动量(Vojta–Natanson)动量可互换显示,而在固定状态下双层溶液的总能量不可能如此。探索。这是有可能的,因为与物体表面有关的双层宽度最终会根据此定义的动量变化而作用于此狭窄闪烁区域内的压力,而总能量却基本保持不变。从流体力学的角度来看,该系统的行为相当琐碎,因为绕流应该是层流的,因此不是随便供应的。

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