Cyclic AMP efflux through MRP4 regulates actin dynamics signalling pathway and sperm motility in bovines

Nicolás Chiarante1, Carlos A I Alonso2, Jessica Plaza3

  • 1Universidad Buenos Aires (UBA), Facultad de Medicina, (CONICET-UBA) Centro de Estudios Farmacológicos y Botánicos (CEFYBO), C1121ABG, Buenos Aires, Argentina.

Scientific Reports
|September 25, 2020
PubMed

Insights

Multidrug resistance-associated protein 4 (MRP4) facilitates cAMP efflux in bovine sperm, crucial for capacitation. Inhibiting MRP4 with MK571 blocks sperm motility and actin polymerization, effects reversed by extracellular cAMP (ecAMP).

Area of Science:

  • Reproductive Biology
  • Sperm Physiology
  • Molecular Transport

Background:

  • Multidrug resistance-associated protein 4 (MRP4) transporter mediates cAMP efflux in bovine spermatozoa.
  • Extracellular cAMP (ecAMP) triggers sperm capacitation events.

Purpose of the Study:

  • To investigate the role of MRP4 in bovine sperm function using the MRP4 inhibitor MK571.
  • To explore the relationship between MRP4 activity, cAMP efflux, and sperm motility and actin polymerization.

Main Methods:

  • Incubation of bovine spermatozoa with MK571 and/or ecAMP.
  • Analysis of sperm motility (total, progressive, kinematic parameters).
  • Localization studies of MRP4 transporter.
  • Assessment of F-actin polymerization levels.
  • Investigation of Protein Kinase A (PKA) involvement.

Main Results:

  • MK571 inhibited capacitation-associated events, sperm motility, and kinematic parameters.
  • MRP4 localization shifted from post-acrosomal/mid-piece to the acrosome during capacitation.
  • Extracellular cAMP (ecAMP) rescued MK571's inhibitory effects on motility and actin polymerization.
  • ecAMP alone increased F-actin levels, an effect dependent on PKA activity.

Conclusions:

  • MRP4-mediated cAMP efflux is vital for bovine sperm capacitation.
  • MRP4 activity influences sperm motility and actin polymerization.
  • The findings highlight a novel regulatory pathway involving MRP4, cAMP, and the actin cytoskeleton in sperm function.

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