Migratory mechanisms of chick primordial germ cells toward gonadal anlage

T Kuwana1, T Rogulska

  • 1Pathology Section, National Institute for Minamata Disease, Minamata City, Kumamoto, Japan. kuwana@fsinet.or.jp

Insights

Chick primordial germ cells (PGCs) migrate to developing gonads through passive trapping by capillaries and active attraction by gonadal factors. This study reveals mechanisms of PGC migration, crucial for gonad development.

Area of Science:

  • Developmental Biology
  • Cell Biology
  • Embryology

Background:

  • Chick primordial germ cells (PGCs) originate in the germinal crescent and migrate to the presumptive gonads (pG) by stage 19.
  • Understanding the mechanisms of PGC migration is crucial for comprehending gonad development and reproductive biology.

Purpose of the Study:

  • To elucidate the roles of passive and active factors in chick PGC migration to the presumptive gonads.
  • To investigate physical trapping by the capillary network and chemotactic attraction by the gonadal anlage.

Main Methods:

  • In ovo injection of latex beads/pollens into embryonic bloodstream (stages 13-19) to assess passive PGC translocation.
  • Ectopic transplantation of quail gonadal anlage into chick embryos to examine PGC attraction by the gonadal anlage.
  • In vitro culture of PGCs to observe their migratory behavior and cell-cell interactions.

Main Results:

  • Injected particles accumulated in gonadal regions, suggesting passive translocation via capillary networks and morphogenetic movements.
  • Host PGCs aggregated in transplanted quail gonadal anlage, indicating the presence of a gonadal attractive factor.
  • PGCs exhibited no contact inhibition in vitro, suggesting migration is not solely dependent on cell-cell repulsion.

Conclusions:

  • Chick PGC migration to the developing gonads involves both passive trapping by the capillary network and active chemotactic attraction.
  • The gonadal anlage proper emits an attractive factor that guides PGCs to their destination.
  • These findings provide insights into the complex migratory behavior of PGCs during embryonic development.

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