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Differential effects of Sex-lethal mutations on dosage compensation early in Drosophila development
1Department of Biology, Princeton University, New Jersey 08544.
Abstract:
In response to the primary sex determination signal, X chromosome dose, the Sex-lethal gene controls all aspects of somatic sex determination and differentiation, including X chromosome dosage compensation. Two complementary classes of mutations have been identified that differentially affect Sxl somatic functions: (1) those impairing the "early" function used to set developmental pathway choice in response to the sex determination signal and (2) those impairing "late" functions involved in maintaining the pathway choice independent of the initiating signal and/or in directing differentiation. This "early vs. late" distinction correlates with a switch in promoter utilization from SxlPe to SxlPm at the blastoderm stage and a corresponding switch from transcriptional to RNA splicing control. Here we characterize five partial-loss-of-function Sxl alleles to explore a distinction between "early vs. late" functioning of Sxl in dosage compensation. Assaying for dosage compensation during the blastoderm stage, we find that the earliest phase of the dosage compensation process is controlled by products of the early Sxl promoter, SxlPe. Hence, in addition to triggering the sexual pathway decision of cells, products derived from SxlPe also control early dosage compensation, the first manifestation of sexually dimorphic differentiation. The effects of mutant Sxl alleles on early dosage compensation are consistent with their previous categorization as early vs. late defective with respect to their effects on pathway initiation. Results reported here suggest that the dosage compensation regulatory genes currently known to function downstream of Sxl, genes known as the "male-specific lethals," do not control all aspects of dosage compensation either at the blastoderm stage or later in development. In the course of this study, we also discovered that the canonical early defective allele, Sxlf9, which is impaired in its ability to establish the female developmental pathway commitment, is likely to be defective in the stability and/or functioning of products derived from SxlPe, rather than in the ability of SxlPe to respond to the chromosomal sex determination signal.
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.