Human sperm accumulation near surfaces: a simulation study
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Jackson Kirkman-Brown | Eamonn A. Gaffney | David J. Smith | E. Gaffney | J. Blake | J. Kirkman-Brown | John Blake | David. J. Smith
[1] G. J. HANCOCKf,et al. THE PROPULSION OF SEA-URCHIN SPERMATOZOA , 2005 .
[2] A. Maude,et al. Non-random Distribution of Bull Spermatozoa in a Drop of Sperm Suspension , 1963, Nature.
[3] D F Katz,et al. Mechanics of sperm-egg interaction at the zona pellucida. , 1988, Biophysical journal.
[4] Thanh Tran-Cong,et al. A boundary-element analysis of flagellar propulsion , 1987, Journal of Fluid Mechanics.
[5] G. Taylor. Analysis of the swimming of microscopic organisms , 1951, Proceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences.
[6] Michael Wagner,et al. Reversible and Irreversible Adhesion of Motile Escherichia coli Cells Analyzed by Total Internal Reflection Aqueous Fluorescence Microscopy , 2002, Applied and Environmental Microbiology.
[7] T. Y. Wu,et al. Hydromechanics of low-Reynolds-number flow. Part 2. Singularity method for Stokes flows , 1975, Journal of Fluid Mechanics.
[8] E. Gaffney,et al. Fluid mechanics of nodal flow due to embryonic primary cilia , 2008, Journal of The Royal Society Interface.
[9] K. E. Machin. Wave Propagation along Flagella , 1958 .
[10] D. Woolley,et al. A study of helical and planar waves on sea urchin sperm flagella, with a theory of how they are generated. , 2001, The Journal of experimental biology.
[11] Rothschild,et al. Non-random Distribution of Bull Spermatozoa in a Drop of Sperm Suspension , 1963, Nature.
[12] O. Pironneau,et al. Optimal swimming of flagellated micro-organisms , 1974 .
[13] D. Woolley,et al. Three-dimensional motion of avian spermatozoa. , 1999, Cell motility and the cytoskeleton.
[14] Oliver E. Jensen,et al. Three-dimensional flow due to a microcantilever oscillating near a wall: an unsteady slender-body analysis , 2006, Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[15] J J Blum,et al. Bend propagation in flagella. I. Derivation of equations of motion and their simulation. , 1978, Biophysical journal.
[16] R. G. Cox. The motion of long slender bodies in a viscous fluid Part 1 . General theory , 1969 .
[17] J. Gray,et al. The Movement of Sea-Urchin Spermatozoa , 1955 .
[18] S. Gueron,et al. Simulations of three-dimensional ciliary beats and cilia interactions. , 1993, Biophysical journal.
[19] C. A. Paradelo. [Motility of spermatozoa]. , 1951, Obstetricia y ginecologia latino-americanas.
[20] J. L. Nayler. Mathematical Biofluiddynamics. Sir James Lighthill. Regional Conference Series in Applied Mathematics. Society for Industrial and Applied Mathematics, Philadelphia. 281 pp. Illustrated. , 1976, The Aeronautical Journal (1968).
[21] S. Otto,et al. Modelling the motion of particles around choanoflagellates , 2003, Journal of Fluid Mechanics.
[22] E. Hafez,et al. Motility of spermatozoa. , 1976 .
[23] D. Katz,et al. The propulsion by large amplitude waves of uniflagellar micro-organisms of finite length , 1980, Journal of Fluid Mechanics.
[24] John R. Blake,et al. Fundamental singularities of viscous flow , 1974 .
[25] George M Whitesides,et al. Swimming in circles: motion of bacteria near solid boundaries. , 2005, Biophysical journal.
[26] R. E. Johnson,et al. Flagellar hydrodynamics. A comparison between resistive-force theory and slender-body theory. , 1979, Biophysical Journal.
[27] D F Katz,et al. Relationships of mammalian sperm motility and morphology to hydrodynamic aspects of cell function. , 1981, Biology of reproduction.
[28] C. Brokaw,et al. Computer simulation of flagellar movement. I. Demonstration of stable bend propagation and bend initiation by the sliding filament model. , 1972, Biophysical journal.
[29] H. Winet,et al. Observations on the response of human spermatozoa to gravity, boundaries and fluid shear. , 1984, Journal of reproduction and fertility.
[30] J J Blum,et al. Three-dimensional mechanics of eukaryotic flagella. , 1983, Biophysical journal.
[31] L. Fauci,et al. Fluid Dynamic Models of Flagellar and Ciliary Beating , 2007, Annals of the New York Academy of Sciences.
[32] T. Lardner,et al. Large amplitude motion of self-propelling slender filaments at low Reynolds numbers. , 1975, Journal of biomechanics.
[33] R. E. Johnson. Slender-body theory for Stokes flow and flagellar hydrodynamics , 1977 .
[34] S. Ishijima,et al. Rotational movement of a spermatozoon around its long axis. , 1992, The Journal of experimental biology.
[35] E. L. Lewis,et al. Morphometric analysis of spermatozoa in the assessment of human male fertility. , 1986, Journal of andrology.
[36] S. Mochón,et al. The discrete-cilia approach to propulsion of ciliated micro-organisms , 1976, Journal of Fluid Mechanics.
[37] C. Brokaw. Computer simulation of flagellar movement VIII: coordination of dynein by local curvature control can generate helical bending waves. , 2002, Cell motility and the cytoskeleton.
[38] J. Blake,et al. A note on the image system for a stokeslet in a no-slip boundary , 1971, Mathematical Proceedings of the Cambridge Philosophical Society.
[39] M. E. O'Neill,et al. On the slow motion of a sphere parallel to a nearby plane wall , 1967, Journal of Fluid Mechanics.
[40] D. Woolley,et al. Motility of spermatozoa at surfaces. , 2003, Reproduction.
[41] Shigeru Oshio,et al. Flagellar movement of human spermatozoa , 1986 .
[42] C. Brokaw,et al. Computer simulation of flagellar movement. VI. Simple curvature-controlled models are incompletely specified. , 1985, Biophysical journal.
[43] R. Rikmenspoel. The tail movement of bull spermatozoa. Observations and model calculations. , 1965, Biophysical journal.
[44] R M Macnab,et al. Unidirectional, intermittent rotation of the flagellum of Rhodobacter sphaeroides , 1987, Journal of bacteriology.
[45] D. Wolf,et al. Human cervical mucus. I. Rheologic characteristics. , 1977, Fertility and sterility.
[46] J. Lighthill. Reinterpreting the basic theorem of flagellar hydrodynamics , 1996 .
[47] Ricardo Cortez,et al. The Method of Regularized Stokeslets , 2001, SIAM J. Sci. Comput..
[48] James Lighthill,et al. Helical distributions of stokeslets , 1996 .
[49] N. Phan-Thien,et al. The role of hydrodynamic interaction in the locomotion of microorganisms. , 1993, Biophysical journal.
[50] A. I. Yudin,et al. Hamster sperm penetration of the zona pellucida: kinematic analysis and mechanical implications. , 1988, Developmental biology.
[51] E A Gaffney,et al. Discrete Cilia Modelling with Singularity Distributions: Application to the Embryonic Node and the Airway Surface Liquid , 2007, Bulletin of mathematical biology.
[52] L. Fauci,et al. The method of regularized Stokeslets in three dimensions : Analysis, validation, and application to helical swimming , 2005 .
[53] C. Brokaw. Non-sinusoidal bending waves of sperm flagella. , 1965, The Journal of experimental biology.
[54] C Gagnon,et al. How spermatozoa come to be confined to surfaces. , 2003, Cell motility and the cytoskeleton.
[55] S. Gueron,et al. A three–dimensional model for ciliary motion based on the internal 9 + 2 structure , 2001, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[57] A T Chwang,et al. A note on the helical movement of micro-organisms , 1971, Proceedings of the Royal Society of London. Series B. Biological Sciences.
[58] D. Woolley. Evidence for "twisted plane" undulations in golden hamster sperm tails , 1977, The Journal of cell biology.
[59] S Gueron,et al. Ciliary motion modeling, and dynamic multicilia interactions. , 1992, Biophysical journal.
[60] Robert E. Johnson. An improved slender-body theory for Stokes flow , 1980, Journal of Fluid Mechanics.
[61] D. Katz,et al. Swimming of spermatozoa in a linear viscoelastic fluid. , 1998, Biorheology.
[62] Eric Lauga,et al. Propulsion in a viscoelastic fluid , 2007 .
[63] L. Fauci,et al. Sperm motility in the presence of boundaries. , 1995, Bulletin of mathematical biology.
[64] J. Higdon,et al. A hydrodynamic analysis of flagellar propulsion , 1979, Journal of Fluid Mechanics.
[65] A. M. Cazabat,et al. Human Cervical Mucus , 1982 .
[66] R. G. Cox. The motion of long slender bodies in a viscous fluid Part 1. General theory , 1970, Journal of Fluid Mechanics.
[67] J. Higdon,et al. The hydrodynamics of flagellar propulsion: helical waves , 1979, Journal of Fluid Mechanics.
[68] G. Hancock. The self-propulsion of microscopic organisms through liquids , 1953, Proceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences.
[69] L. G. Leal,et al. Rods falling near a vertical wall , 1977, Journal of Fluid Mechanics.
[70] Jeng-Tzong Chen,et al. A Practical Guide to Boundary Element Methods with the Software Library BEMLIB , 2002 .
[71] D. Katz,et al. On the movement of slender bodies near plane boundaries at low Reynolds number , 1975, Journal of Fluid Mechanics.
[72] Geoffrey Ingram Taylor,et al. The action of waving cylindrical tails in propelling microscopic organisms , 1952, Proceedings of the Royal Society of London. Series A. Mathematical and Physical Sciences.
[73] C. Brokaw,et al. Bending moments in free-swimming flagella. , 1970, The Journal of experimental biology.
[74] K. E. Machin. The control and synchronization of flagellar movement , 1963, Proceedings of the Royal Society of London. Series B. Biological Sciences.
[75] F. Aoki,et al. Analysis of Flagellar Bending in Hamster Spermatozoa: Characterization of an Effective Stroke , 2005, Biology of reproduction.