References:
Back to Home

Adeoya-Osiguwa SA and Fraser LR. 1996. Evidence for Ca2+-dependent ATPase activity, stimulated by decapacitation factor and calmodulin, in mouse sperm. Mol Reprod Dev 44(1):111-20.


Asano A, Selvaraj V, Buttke DE, Nelson JL, Green KM, Evans JE, Travis AJ. 2009. Biochemical characterization of membrane fractions in murine sperm: Identification of three distinct sub-types of membrane rafts. J Cell Physiol 218(3):537-48.


Cross NL. 2004. Reorganization of lipid rafts during capacitation of human sperm. Biology of Reproduction 71(4):1367-73.


Cross NL. 1998. Role of cholesterol in sperm capacitation. Biology of Reproduction 59(1):7-11.


Davis BK. 1981. Timing of fertilization in mammals: Sperm cholesterol/phospholipid ratio as a determinant of the capacitation interval. Proceedings of the National Academy of Sciences 78(12):7560-4.


Demarco IA, Espinosa F, Edwards J, Sosnik J, de la Vega-Beltrán JL, Hockensmith JW, Kopf GS, Darszon A, Visconti PE. 2003. Involvement of a Na+/HCO cotransporter in mouse sperm capacitation. Journal of Biological Chemistry 278(9):7001-9.


Flesch FM, Brouwers JFHM, Nievelstein PFEM, Verkleij AJ, van Golde LMG, Colenbrander B, Gadella BM. 2001. Bicarbonate stimulated phospholipid scrambling induces cholesterol redistribution and enables cholesterol depletion in the sperm plasma membrane. Journal of Cell Science 114(19):3543-55.


Fraser LR. 2010. The switching on of mammalian spermatozoa: Molecular events involved in promotion and regulation of capacitation. Mol Reprod Dev 77(3):197-208.


Fraser LR, Adeoya‐Osiguwa SA, Baxendale RW. 2003. First messenger regulation of capacitation via G protein‐coupled mechanisms: A tale of serendipity and discovery. Molecular Human Reproduction 9(12):739-48.


Gadella BM and Harrison RAP. 2002. Capacitation induces cyclic adenosine 3′,5′-monophosphate-dependent, but apoptosis-unrelated, exposure of aminophospholipids at the apical head plasma membrane of boar sperm cells. Biology of Reproduction 67(1):340-50.


Hamdi SM, Vieitez G, Jaspard B, Barbaras R, Perret B, Mieusset R, Parinaud J, Collet X. 2010. Effects of human follicular fluid and high-density lipoproteins on early spermatozoa hyperactivation and cholesterol efflux. Journal of Lipid Research 51(6):1363-9.


Harrison RAP and Miller NGA. 2000. cAMP-dependent protein kinase control of plasma membrane lipid architecture in boar sperm. Mol Reprod Dev 55(2):220-8.


Hess KC, Jones BH, Marquez B, Chen Y, Ord TS, Kamenetsky M, Miyamoto C, Zippin JH. The soluble adenylyl cyclase in sperm mediates multiple signaling events required for fertilization. Developmental Cell (2):249.


Levine N and Marsh DJ. 1971. Micropuncture studies of the electrochemical aspects of fluid and electrolyte transport in individual seminiferous tubules, the epididymis and the vas deferens in rats. The Journal of Physiology 213(3):557-70.


Shadan S, James PS, Howes EA, Jones R. 2004. Cholesterol efflux alters lipid raft stability and distribution during capacitation of boar spermatozoa. Biology of Reproduction 71(1):253-65.


Suarez SS. 2008. Control of hyperactivation in sperm. Human Reproduction Update 14(6):647-57.


van Gestel RA, Brewis IA, Ashton PR, Helms JB, Brouwers JF, Gadella BM. August 2005. Capacitation-dependent concentration of lipid rafts in the apical ridge head area of porcine sperm cells. Molecular Human Reproduction 11(8):583-90.


Visconti PE, Bailey JL, Moore GD, Pan D, Olds-Clarke P, Kopf GS. 1995. Capacitation of mouse spermatozoa. I. correlation between the capacitation state and protein tyrosine phosphorylation. Development 121(4):1129-37.


Visconti PE, Moore GD, Bailey JL, Leclerc P, Connors SA, Pan D, Olds-Clarke P, Kopf GS. 1995. Capacitation of mouse spermatozoa. II. protein tyrosine phosphorylation and capacitation are regulated by a cAMP-dependent pathway. Development 121(4):1139-50.


Visconti PE. 2009. Understanding the molecular basis of sperm capacitation through kinase design. Proceedings of the National Academy of Sciences 106(3):667-8.


Wertheimer EV, Salicioni AM, Liu W, Trevino CL, Chavez J, Hernández-González EO, Darszon A, Visconti PE. 2008. Chloride is essential for capacitation and for the capacitation-associated increase in tyrosine phosphorylation. Journal of Biological Chemistry 283(51):35539-50.

 

 

Email me

This webpage was made as a part of student projects in Dr. Dorcas' Animal Physiology class at Davidson College.