Ecdysteroid promotes cell cycle progression in the Bombyx wing disc through activation of c-Myc

Minoru Moriyama1, Kohji Osanai1, Tomokazu Ohyoshi1

  • 1Faculty of Agriculture, Utsunomiya University, 350 Mine, Utsunomiya, Tochigi 321-8505, Japan.

Insights

Insect metamorphosis involves cell proliferation regulated by ecdysteroid hormones. This study reveals ecdysteroid directly upregulates c-myc, a key gene for cell cycle progression during insect development.

Area of Science:

  • Insect developmental biology
  • Molecular endocrinology
  • Cell cycle regulation

Background:

  • Holometabolous insect metamorphosis requires precise control of cell proliferation in imaginal discs.
  • The role of ecdysteroids in regulating cell cycle genes during this transition is not fully understood.

Purpose of the Study:

  • To investigate how ecdysteroids control cell cycle-related gene expression during insect development.
  • To elucidate the molecular mechanisms linking ecdysteroids to cell proliferation in Bombyx mori wing discs.

Main Methods:

  • Analysis of c-myc gene expression in Bombyx mori larvae during development.
  • In vitro wing disc culture experiments with ecdysteroid supplementation.
  • Assessment of cell cycle gene expression following ecdysteroid treatment and in the presence of inhibitors.

Main Results:

  • Ecdysteroid hormone (20E) significantly upregulates c-myc expression in silkworm wing discs.
  • Ecdysteroid treatment leads to increased expression of key cell cycle regulators (cyclins, Cdc25, E2F1).
  • c-Myc is essential for ecdysteroid-induced cell proliferation, and ecdysteroid may directly stimulate c-myc expression.

Conclusions:

  • A novel pathway for ecdysteroid-inducible cell proliferation in insects is proposed, involving direct c-myc activation.
  • This regulatory mechanism highlights conserved aspects of steroid hormone action on cell cycle control between insects and mammals.

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