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Published on: August 21, 2014
Complex regulation and multiple developmental functions of misfire, the Drosophila melanogaster ferlin gene
Michelle K Smith1, Barbara T Wakimoto
1Department of Biology and Center for Developmental Biology, University of Washington, Seattle, WA 98195-1800, USA. michelle.k.smith@colorado.edu <michelle.k.smith@colorado.edu>
Background:
Ferlins are membrane proteins with multiple C2 domains and proposed functions in Ca2+ mediated membrane-membrane interactions in animals. Caenorhabditis elegans has two ferlin genes, one of which is required for sperm function. Mammals have several ferlin genes and mutations in the human dysferlin (DYSF) and otoferlin (OTOF) genes result in muscular dystrophy and hearing loss, respectively. Drosophila melanogaster has a single ferlin gene called misfire (mfr). A previous study showed that a mfr mutation caused male sterility because of defects in fertilization. Here we analyze the expression and structure of the mfr gene and the consequences of multiple mutations to better understand the developmental function of ferlins.
Results:
We show that mfr is expressed in the testis and ovaries of adult flies, has tissue-specific promoters, and expresses alternatively spliced transcripts that are predicted to encode distinct protein isoforms. Studies of 11 male sterile mutations indicate that a predicted Mfr testis isoform with five C2 domains and a transmembrane (TM) domain is required for sperm plasma membrane breakdown (PMBD) and completion of sperm activation during fertilization. We demonstrate that Mfr is not required for localization of Sneaky, another membrane protein necessary for PMBD. The mfr mutations vary in their effects in females, with a subset disrupting egg patterning and causing a maternal effect delay in early embryonic development. Locations of these mutations indicate that a short Mfr protein isoform carries out ferlin activities during oogenesis.
Conclusion:
The mfr gene exhibits complex transcriptional and post-transcriptional regulation and functions in three developmental processes: sperm activation, egg patterning, and early embryogenesis. These functions are in part due to the production of protein isoforms that vary in the number of C2 domains. These findings help establish D. melanogaster as model system for understanding ferlin function and dysfunction in animals, including humans.
Insights
The Drosophila misfire (mfr) gene produces different protein versions essential for sperm function, egg development, and early embryogenesis. This research establishes fruit flies as a model for studying ferlin-related disorders in humans.
Area of Science:
- Molecular and Developmental Biology
- Genetics and Genomics
Background:
- Ferlins are Ca2+-dependent membrane proteins involved in membrane fusion.
- Mutations in human ferlin genes cause muscular dystrophy and hearing loss.
- The Drosophila melanogaster misfire (mfr) gene is a single-celled ferlin with unknown functions.
Purpose of the Study:
- To analyze the expression and structure of the mfr gene.
- To understand the developmental functions of ferlins through mfr mutations.
Main Methods:
- Analysis of mfr gene expression in adult flies.
- Characterization of 11 male-sterile mfr mutations.
- Investigation of mfr's role in sperm plasma membrane breakdown (PMBD).
- Assessment of mfr's function in oogenesis and early embryogenesis.
Main Results:
- Mfr is expressed in testes and ovaries, with tissue-specific promoters and alternative splicing.
- A testis-specific Mfr isoform is crucial for sperm plasma membrane breakdown and activation.
- Mfr is not required for the localization of the Sneaky protein.
- Mfr mutations affect female reproduction, including egg patterning and embryonic development, indicating a role for a shorter isoform in oogenesis.
Conclusions:
- The mfr gene displays complex regulation and plays roles in sperm activation, egg patterning, and embryogenesis.
- Alternative splicing generates Mfr protein isoforms with varying C2 domains, mediating distinct functions.
- Drosophila melanogaster serves as a valuable model for studying ferlin biology and associated human diseases.
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