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Differential effects of Sex-lethal mutations on dosage compensation early in Drosophila development

M Bernstein1, T W Cline

  • 1Department of Biology, Princeton University, New Jersey 08544.

Genetics
|March 1, 1994
PubMed

Insights

The Sex-lethal (Sxl) gene controls sex determination and dosage compensation. Early Sxl promoter (SxlPe) products initiate both sexual pathway choice and early dosage compensation, revealing a dual role in development.

Area of Science:

  • Developmental Biology
  • Genetics
  • Molecular Biology

Background:

  • The Sex-lethal (Sxl) gene is crucial for somatic sex determination and X chromosome dosage compensation in response to X chromosome dose.
  • Sxl exhibits distinct "early" and "late" functions, influencing developmental pathway choice and differentiation.
  • These functions correlate with promoter utilization (SxlPe vs. SxlPm) and a switch from transcriptional to splicing control.

Purpose of the Study:

  • To investigate the distinction between "early" and "late" Sxl functions specifically in dosage compensation.
  • To characterize five partial-loss-of-function Sxl alleles to understand their roles in dosage compensation.
  • To clarify the contribution of SxlPe to early dosage compensation and developmental pathway initiation.

Main Methods:

  • Characterization of five partial-loss-of-function Sxl alleles.
  • Assaying for dosage compensation during the blastoderm stage.
  • Analyzing the effects of mutant Sxl alleles on early dosage compensation and pathway initiation.

Main Results:

  • The earliest phase of dosage compensation at the blastoderm stage is controlled by products from the early Sxl promoter, SxlPe.
  • SxlPe products initiate both sexual pathway decisions and early dosage compensation, the first sexually dimorphic differentiation.
  • Mutant Sxl alleles' effects on early dosage compensation align with their "early" vs. "late" defective classifications.
  • Downstream "male-specific lethal" genes do not regulate all dosage compensation aspects.
  • The allele Sxlf9 appears defective in SxlPe product stability/function, not SxlPe response to sex determination signals.

Conclusions:

  • SxlPe plays a dual role, initiating both sexual pathway choice and early dosage compensation.
  • This study refines the understanding of Sxl's "early" functions in sex determination and dosage compensation.
  • The findings suggest a more complex regulatory network for dosage compensation than previously understood, involving SxlPe beyond initial pathway commitment.

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