Self-organized vortex phases and hydrodynamic interactions in Bos taurus sperm cells

被引:1
|
作者
Packard, Charles R. [1 ]
Unnikrishnan, Shobitha [2 ]
Phuyal, Shiva [2 ]
Cheong, Soon Hon [3 ]
Manning, M. Lisa [4 ,5 ]
Tung, Chih-Kuan [2 ]
Sussman, Daniel M. [1 ]
机构
[1] Emory Univ, Dept Phys, Atlanta, GA 30322 USA
[2] North Carolina A&T State Univ, Dept Phys, Greensboro, NC 27411 USA
[3] Cornell Univ, Dept Clin Sci, Ithaca, NY 14850 USA
[4] Syracuse Univ, Dept Phys, Syracuse, NY 13244 USA
[5] Syracuse Univ, BioInspired Inst, Syracuse, NY 13244 USA
关键词
SPERMATOZOON; FORMS;
D O I
10.1103/PhysRevE.110.014407
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
Flocking behavior is observed in biological systems from the cellular to superorganismal length scales, and the mechanisms and purposes of this behavior are objects of intense interest. In this paper, we study the collective dynamics of bovine sperm cells in a viscoelastic fluid. These cells appear not to spontaneously flock, but transition into a long-lived flocking phase after being exposed to a transient ordering pulse of fluid flow. Surprisingly, this induced flocking phase has many qualitative similarities with the spontaneous polar flocking phases predicted by Toner-Tu theory, such as anisotropic giant number fluctuations and nontrivial transverse density correlations, despite the induced nature of the phase and the clearly important role of momentum conservation between the swimmers and the surrounding fluid in these experiments. We also find a self-organized global vortex state of the sperm cells, and map out an experimental phase diagram of states of collective motion as a function of cell density and motility statistics. We compare our experiments with a parameter-matched computational model of persistently turning active particles and find that the experimental order-disorder phase boundary as a function of cell density and persistence time can be approximately predicted from measures of single-cell properties. Our results may have implications for the evaluation of sample fertility by studying the collective phase behavior of dense groups of swimming sperm.
引用
收藏
页数:10
相关论文
共 50 条
  • [41] Hydrodynamic coupling in microbially mediated fracture mineralization: Formation of self-organized groundwater flow channels
    El Mountassir, Grainne
    Lunn, Rebecca J.
    Moir, Heather
    MacLachlan, Erica
    WATER RESOURCES RESEARCH, 2014, 50 (01) : 1 - 16
  • [42] Self-organized network of phase oscillators coupled by activity-dependent interactions
    Aoki, Takaaki
    Aoyagi, Toshio
    PHYSICAL REVIEW E, 2011, 84 (06):
  • [43] Self-organized garbage collection algorithm of swarm robots based on density interactions
    Xiang, Ya-Lun
    Lei, Xiao-Kang
    Duan, Zhong-Xing
    Duan, Meng-Yuan
    Xu, Ming-Yu
    Kongzhi yu Juece/Control and Decision, 2024, 39 (10): : 3279 - 3288
  • [44] Self-organized nanowires:: evidence of dipolar interactions from ferromagnetic resonance measurements
    Ramos, CA
    Brigneti, EV
    Vázquez, M
    PHYSICA B-CONDENSED MATTER, 2004, 354 (1-4) : 195 - 197
  • [45] Flow interactions lead to self-organized flight formations disrupted by self-amplifying waves
    Newbolt, Joel W.
    Lewis, Nickolas
    Bleu, Mathilde
    Wu, Jiajie
    Mavroyiakoumou, Christiana
    Ramananarivo, Sophie
    Ristroph, Leif
    NATURE COMMUNICATIONS, 2024, 15 (01)
  • [46] From kinetic flocking model of Cucker-Smale type to self-organized hydrodynamic model
    Jiang, Ning
    Luo, Yi-Long
    Zhang, Teng-Fei
    MATHEMATICAL MODELS & METHODS IN APPLIED SCIENCES, 2024, 34 (13): : 2395 - 2467
  • [47] Diversity in self-organized forms and migration modes in isolated epithelial cells
    Shota Mise
    Shimon Shibagaki
    Seiya Nishikawa
    Hiroko Nakamura
    Hiroshi Kimura
    Atsuko Takamatsu
    Artificial Life and Robotics, 2020, 25 : 523 - 528
  • [48] Self-Organized Protein Localization and DNA Segregation Inside Bacterial Cells
    Modaber, Saeed Saberi
    Emberly, Eldon
    BIOPHYSICAL JOURNAL, 2012, 102 (03) : 48A - 48A
  • [49] Self-organized corrugated interface for barrier heterostructures to solar cells application
    Dmitruk, NL
    Borkovskaya, OY
    Mayeva, OI
    Mamontova, IB
    Malysh, TV
    SELF FORMATION THEORY AND APPLICATIONS, 2004, 97-98 : 97 - 102
  • [50] Diversity in self-organized forms and migration modes in isolated epithelial cells
    Mise, Shota
    Shibagaki, Shimon
    Nishikawa, Seiya
    Nakamura, Hiroko
    Kimura, Hiroshi
    Takamatsu, Atsuko
    ARTIFICIAL LIFE AND ROBOTICS, 2020, 25 (04) : 523 - 528