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Bannai, J., Yoshimura, M., Takahashi, K. and Shingyoji, C (2000). Calcium regulation of microtubule sliding in reactivated sea urchin sperm flagella. J. Cell Sci 113, 831-.[Abstract]

Bozkurt, H. H. and Woolley, D. M (1993). Morphology of nexin links in relation to interdoublet sliding in the sperm flagellum. Cell Motil. Cytoskel 24, 109-.[Medline]

Bradfield, J. R. G (1955). Fibre patterns in animal flagella and cilia. Symp. Soc. Exp. Biol 9, 306-.

Brokaw, C. J (1965). Non-sinusoidal bending waves of sperm flagella. J. Exp. Biol 43, 155-.[Abstract/Free Full Text]

Brokaw, C. J (1966). Effects of increased viscosity on the movements of some invertebrate spermatozoa. J. Exp. Biol 45, 113-.[Abstract/Free Full Text]

Brokaw, C. J (1975). Effects of viscosity and ATP concentration on the movement of reactivated sea-urchin sperm flagella. J. Exp. Biol 62, 701-.[Abstract/Free Full Text]

Brokaw, C. J (1988). Bending-wave propagation by microtubules and flagella. Math. Biosci 90, 247-.

Brokaw, C. J (1996). Microtubule sliding, bend initiation and bend propagation parameters of Ciona sperm flagella altered by viscous load. Cell Motil. Cytoskel 33, 6-.[Medline]

Buller, A. H. R (1902). Is chemotaxis a factor in the fertilization of the eggs of animals? Q. J. Microsc. Sci 46, 145-.

Chwang, A. T. and Wu, T. Y (1971). A note on the helical movement of micro-organisms. Proc. R. Soc. Lond. B 178, 327-.

Gibbons, I. R (1963). Studies on the protein components of cilia from Tetrahymena pyriformis. Proc. Natl. Acad. Sci. USA 50, 1002-.[Free Full Text]

Gibbons, I. R (1982). Sliding and bending in sea urchin sperm flagella. Symp. Soc. Exp. Biol 35, 225-.[Medline]

Gibbons, I. R., Shingyoji, C., Murakami, A. and Takahashi, K (1987). Spontaneous recovery after experimental manipulation of the plane of beat in sperm flagella. Nature 325, 351-.[Medline]

Gray, J (1955). The movement of sea-urchin spermatozoa. J. Exp. Biol 32, 775-.[Abstract]

Hiramoto, Y. and Baba, S. A (1978). A quantitative analysis of flagellar movement in echinoderm spermatozoa. J. Exp. Biol 76, 85-.[Abstract/Free Full Text]

Holwill, M. E. J., Cohen, H. J. and Satir, P (1979). A sliding microtubule model incorporating axonemal twist and compatible with three-dimensional ciliary bending. J. Exp. Biol 78, 265-.[Abstract/Free Full Text]

Ishijima, S. and Hamaguchi, Y (1993). Calcium ion regulation of chirality of beating flagellum of reactivated sea urchin spermatozoa. Biophys. J 65, 1445-.[Abstract/Free Full Text]

Ishijima, S. and Hiramoto, Y (1994). Flexural rigidity of echinoderm sperm flagella. Cell Struct. Funct 19, 349-.[Medline]

Ishijima, S., Ishijima, S. I. and Afzelius, B. A (1994). Movement of Myzostomum spermatozoa: calcium ion regulation of swimming direction. Cell Motil. Cytoskel 28, 135-.[Medline]

Ishijima, S., Sekiguchi, K. and Hiramoto, Y (1988). Comparative study of the beat patterns of American and Asian horseshoe crabsperm: evidence for a role of the central pair complex in forming planar waveforms in flagella. Cell Motil. Cytoskel._Fb_9 , 264\320270.D. M. WOOLLEYANDG. G. VERNON1345 Waveforms on sea urchin flagella_Fb_Jarosch, R. (1986). The mechanical behaviour of doublet microtubules simulated by helical models. Cell Motil. Cytoskel 6, 209-.

Kamiya, R. and Okagaki, T (1986). Cyclical bending of two outer-doublet microtubules in frayed axonemes of Chlamydomonas. Cell Motil. Cytoskel 6, 580-.

Minoura, I., Yagi, T. and Kamiya, R (1999). Direct measurement of inter-doublet elasticity in flagellar axonemes. Cell Struct. Funct 24, 27-.[Medline]

Murase, M. and Shimizu, H (1986). A model of flagellar movement based on co-operative dynamics of dynein\320tubulin cross-bridges. J. Theor. Biol 119, 409-.[Medline]

Rikmenspoel, R (1978). Movement of sea urchin sperm flagella. J. Cell Biol 76, 311-.

Rothschild, Lord and Swann, M. M (1949). The fertilization reaction in the sea urchin egg. J. Exp. Biol 26, 164-.[Abstract/Free Full Text]

Shingyoji, C., Gibbons, I. R., Murakami, A. and Takahashi, K (1991). Effect of imposed head vibration on the stability and waveform of flagellar beating in sea urchin spermatozoa. J. Exp. Biol 156, 63-.[Abstract/Free Full Text]

Shingyoji, C., Katada, J., Takahashi, K. and Gibbons, I. R (1991). Rotating the plane of imposed vibration can rotate the plane flagellar beating in sea-urchin sperm without twisting the axoneme. J. Cell Sci 98, 175-.[Abstract/Free Full Text]

Shingyoji, C., Murakami, A. and Takahashi, K (1977). Local reactivation of Triton-extracted flagella by iontophoretic application of ATP. Nature 265, 269-.[Medline]

Silvester, N. R. and Holwill, M. E. J (1972). An analysis of hypothetical flagellar waveforms. J. Theor. Biol 35, 505-.[Medline]

Suarez, S. S (1996). Hyperactivated motility in sperm. J. Androl 17, 331-.[Abstract/Free Full Text]

Takahashi, K., Shingyoji, C. and Kamimura, S (1982). Microtubule sliding in reactivated flagella. Symp. Soc. Exp. Biol 35, 159-.[Medline]

Vernon, G. G. and Woolley, D. M (1995). The propagation of a zone of activation along groups of flagellar doublet microtubules. Exp. Cell Res 220, 482-.[Medline]

Vernon, G. G. and Woolley, D. M (1999). Three-dimensional motion of avian spermatozoa. Cell Motil. Cytoskel 42, 149-.[Medline]

Wais-Steider, J. and Satir, P (1979). Effect of vanadate on gill cilia: switching mechanism in ciliary beat. J. Supramol. Struct 11, 339-.[Medline]

Warner, F. D (1983). Organization of interdoublet links in Tetrahymena cilia. Cell Motil 3, 321-.

Warner, F. D. and Satir, P (1974). The structural basis of ciliary bend function. Radial spoke positional changes accompanying microtubule sliding. J. Cell Biol 63, 35-.[Abstract/Free Full Text]

Woolley, D. M (1977). Evidence for \324twisted plane' undulations in golden hamster sperm tails. J. Cell Biol 75, 851-.[Abstract/Free Full Text]

Woolley, D. M (1995). The extrusion of membranous threads by avian and mammalian spermatozoa, in vitro. J. Submicrosc. Cytol. Pathol 27, 281-.[Medline]

Woolley, D. M (1998). Studies on the eel sperm flagellum. 3. Vibratile motility and rotatory bending. Cell Motil. Cytoskel 39, 246-.[Medline]

Woolley, D. M (2000). The molecular motors of cilia and eukaryotic flagella. Essays Biochem 35, 103-.[Medline]

Woolley, D. M. and Bozkurt, H. H (1995). The distal sperm flagellum: its potential for motility after separation from the basal structures. J. Exp. Biol 198, 1469-.[Abstract]

Woolley, D. M. and Osborn, I. W (1984). Three-dimensional geometry of motile hamster spermatozoa. J. Cell Sci 67, 159-.[Abstract]

Woolley, D. M. and Vernon, G. G (1999). Alternating torsions in a living \3249+2' flagellum. Proc. R. Soc. Lond. B 266, 1271-.

Yeung, C. H. and Woolley, D. M (1983). A study of bend formation in locally reactivated hamster sperm flagella. J. Muscle Res. Cell Motil 4, 625-.[Medline]




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