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#sperm chemotaxis

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Sperm chemotaxis in mammals involves sensing:

Mammalian chemotaxis occurs over short distances near cumulus-oocyte complex mediated by gradients of soluble attractants. Cumulus cells and follicular fluid release progesterone at micromolar concentrations, detected by sperm membrane receptors including ABHD2 which relieves inhibition of CatSper channels. Localized calcium spikes modulate flagellar curvature, biasing trajectory up gradient toward egg. This steering supplements rheotaxis and thermotaxis with fine-scale targeting. Progesterone is primary validated chemoattractant linking ovulation signals to directional sperm guidance, enhancing fertilization efficiency and providing precise navigation toward oocyte microenvironment and cumulus mass.

Ref: Alberts et al., Molecular Biology of the Cell, 6th ed., Chapter 21: Progesterone-mediated chemotaxis and sperm guidance cues.

Hormone crucial for sperm chemotaxis:

Sperm guidance in mammalian female tract involves chemotaxis and thermotaxis toward cumulus-oocyte complex. Cumulus cells surrounding ovulated egg secrete progesterone creating micromolar gradient increasing toward egg. Progesterone binds sperm ABHD2 hydrolase receptor removing 2-arachidonoylglycerol inhibition of CatSper channel, causing calcium influx, asymmetric flagellar beating and directional turn toward source. Estrogen and testosterone not chemotactic, oxytocin influences uterine contraction but not sperm steering. Thus progesterone serves dominant physiological chemoattractant coordinating hyperactivation and chemotaxis, ensuring preferential recruitment of capacitated sperm to fertilization site at ampulla and enhancing encounters with egg, mechanism conserved across mammals including humans.

Ref: Blackmore & Eisoldt, Nature 1992 & Lishko, Cell 2011: Progesterone induced CatSper activation mediates sperm chemotaxis and hyperactivation.