Thermodynamic limits of sperm swimming precision
C. Maggi, B. Nath, F. Saglimbeni, V. Carmona Sosa, R. Di Leonardo and, A. Puglisi

TL;DR
This study links sperm swimming precision to energy dissipation, showing that the maximum achievable precision is limited by thermodynamic principles and is comparable to molecular motor capabilities.
Contribution
It demonstrates experimentally that sperm tail beating fluctuations are constrained by thermodynamic limits and introduces a theoretical model of motor coordination affecting precision.
Findings
Maximum sperm beating precision is around 100 s^{-1}
Precision decreases with reduced energy consumption under oxygen deprivation
Motor-motor coupling influences the collective beating precision
Abstract
Sperm swimming is crucial to fertilise the egg, in nature and in assisted reproductive technologies. Modelling the sperm dynamics involves elasticity, hydrodynamics, internal active forces, and out-of-equilibrium noise. Here we demonstrate experimentally the relevance of energy dissipation for sperm beating fluctuations. For each motile cell, we reconstruct the time-evolution of the two main tail's spatial modes, which together trace a noisy limit cycle characterised by a maximum level of precision . Our results indicate , remarkably close to the estimated precision of a dynein molecular motor actuating the flagellum, which is bounded by its energy dissipation rate according to the Thermodynamic Uncertainty Relation. Further experiments under oxygen deprivation show that decays with energy consumption, as it occurs for a single molecular…
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Taxonomy
TopicsMicro and Nano Robotics · Advanced Thermodynamics and Statistical Mechanics · Cold Atom Physics and Bose-Einstein Condensates
