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对颗粒流和完整细胞外黏液纳米纤维的力学测试揭示了弹力在硅藻运动中的作用。

Mechanical testing of particle streaming and intact extracellular mucilage nanofibers reveal a role of elastic force in diatom motility.

作者信息

Gutiérrez-Medina Braulio, Peña Maldonado Ana Iris, García-Meza Jessica Viridiana

机构信息

Division of Advanced Materials, Instituto Potosino de Investigación Científica y Tecnológica, Camino a la Presa San José 2055, 78216, San Luis Potosí, Mexico.

Geomicrobiology Lab, Institute of Metallurgy, Universidad Autónoma de San Luis Potosí, San Luis Potosí, Mexico.

出版信息

Phys Biol. 2022 Jul 14;19(5). doi: 10.1088/1478-3975/ac7d30.

Abstract

Diatoms are unicellular microalgae with a rigid cell wall, able to glide on surfaces by releasing nanopolymeric fibers through central slits known as raphes. Here we consider the modelto perform quantitative studies on two complementary aspects involved in diatom gliding. Using video microscopy and automated image analysis, we measure the motion of test beads as they are pulled by extracellular polymeric substances (EPS) fibers at the diatom raphe (particle streaming). A multimodal distribution of particle speed is found, evidencing the appearance of short-time events of high speed and acceleration (known as jerky motion) and suggesting that different mechanisms contribute to set diatom velocity during gliding. Furthermore, we use optical tweezers to obtain force-extension records for extracellular diatom nanofibers; records are well described by the worm-like chain model of polymer elasticity. In contrast to previous studies based on application of denaturing force (in the nN regime), application of low force (up to 6 pN) and using enable us to obtain the persistence length of intact fibers. From these measurements, mechanical parameters of EPS fibers such as radius and elastic constant are estimated. Furthermore, by modeling particle streaming as a spring in parallel with a dashpot, we show that the time involved in the release of mechanical energy after fiber detachment from beads (elastic snapping) agrees with our observations of jerky motion. We conclude that the smooth and jerky motions displayed by gliding diatoms correspond to molecular motors and elastic snapping, respectively, thus providing quantitative elements that incorporate to current models of the mechanics behind diatom locomotion.

摘要

硅藻是具有刚性细胞壁的单细胞微藻,能够通过称为沟缝的中央狭缝释放纳米聚合纤维,从而在表面上滑动。在这里,我们考虑该模型,以对硅藻滑动所涉及的两个互补方面进行定量研究。使用视频显微镜和自动图像分析,我们测量测试珠在硅藻沟缝处被细胞外聚合物(EPS)纤维拉动时的运动(颗粒流)。发现颗粒速度呈多峰分布,这证明了高速和加速的短时间事件(称为急动运动)的出现,并表明在滑动过程中有不同的机制有助于设定硅藻的速度。此外,我们使用光镊来获取细胞外硅藻纳米纤维的力-伸长记录;这些记录可以用聚合物弹性的蠕虫状链模型很好地描述。与之前基于变性力(纳牛量级)应用的研究不同,低力(高达6皮牛)的应用使我们能够获得完整纤维的持久长度。通过这些测量,估计了EPS纤维的机械参数,如半径和弹性常数。此外,通过将颗粒流建模为与阻尼器并联的弹簧,我们表明纤维从珠子上脱离后机械能释放所涉及的时间(弹性断裂)与我们对急动运动的观察结果一致。我们得出结论,滑动硅藻所展示的平滑运动和急动运动分别对应于分子马达和弹性断裂,从而提供了纳入当前硅藻运动力学模型的定量要素。

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