| Literature DB >> 23087838 |
Elaine C Rettie1, Steve Dorus.
Abstract
Despite their conserved functional role in sexually reproducing organisms, spermatozoa are a diverse and rapidly evolving cell type. This phenomenon is largely attributed to sexual selection in polygamous species where sperm from multiple males compete to fertilize a limited number of oocytes. Drosophila have proven to be a particularly informative model system for the study of spermatogenesis and in this review we discuss how the characterization of the Drosophila melanogaster sperm proteome has advanced our understanding of the evolutionary genomics of sperm form and function. We summarize the molecular evolutionary characteristics of sperm genes and highlight recent evidence demonstrating the importance of novel gene creation in the evolution of sperm function and competitive ability. Comparative proteomic evidence is also provided, supporting an overall functional conservation between the Drosophila and mouse sperm proteomes. This analysis reveals a diverse repertoire of proteins functioning in proteolytic pathways, as well as the presence of proteins of the complement and innate immunity systems. We propose that these pathways may have functional relevance to post-mating female immunological responses as well as coevolved interactions with pathways expressed in the female reproductive tract, including those involved in sperm-oocyte recognition and fertilization.Entities:
Year: 2012 PMID: 23087838 PMCID: PMC3469443 DOI: 10.4161/spmg.21748
Source DB: PubMed Journal: Spermatogenesis ISSN: 2156-5554

Figure 1. Molecular evolutionary analysis of the Drosophila melanogaster sperm proteome (DmSP). Average nonsynonymous substitution rates (± s.e.m.) between D. melanogaster and D. simulans are displayed for the DmSP-I (bold), individual functional categories of DmSP genes, nonreproductive genes, accessory gland transcripts and ACP genes. Substitution rates for accessory gland and ACP genes is based on Swanson et al. PNAS. The figure has been adapted from Dorus et al., 2006.
Table 1.D. melanogaster sperm retrogenes
| Phylogenetic | X to autosome | Parental Symbol | ||
|---|---|---|---|---|
| Retrogene symbol | Metabolic process | |||
| Sophophora subgenus | yes | yes | ||
| yes | no | |||
| no | no | |||
| yes | no | |||
| Drosophilidae | yes | no | ||
| yes | no | |||
| yes | no | |||
| no | no | |||
| yes | no | |||
| no | yes | |||
| yes | no | |||
| yes | no | |||
| yes | no | |||
| no | yes | |||
| yes | yes | |||
| yes | yes | |||
| yes | no | |||
| Diptera | yes | no | ||
| yes | no | |||
| no | no | |||
1Identification in purified sperm by LC-MS/MS.,
2Male sterile alleles have been characterized for these genes.

Figure 2. Functional comparison of the Drosophila and mouse sperm proteomes. Gene ontology information was obtained from the PANTHER database (http://www.pantherdb.org/) and genes without annotated functions are labeled as uncharacterized. Proportions are based upon the total number of annotated functions, permitting genes to be present in multiple functional categories. Significant differences in the number of genes in Drosophila melanogaster and Mus musculus sperm proteomes for each functional category was determined using a two-tailed Fisher’s Exact Test with Bonferroni correction for multiple testing (*indicates overrepresentation in the mouse sperm proteome; † indicates overrepresentation in Drosophila sperm proteome).
Table 2. DmSP genes with functions in the immunity pathways
| Gene Symbol | GO Accession | GO Term |
|---|---|---|
| Innate immune response and Toll pathway | ||
| Toll-4, | 45087, 45089 | Innate immune response |
| 02385 | Mucosal immune response | |
| 02253, 06959 | Humoral Immune response | |
| 06952 | Defense response | |
| 08063 | Toll signaling pathway | |
1Testis expression based on transcript presence in 4 out of 4 microarray experiments.
2Upregulation of expression in the testis relative to whole fly.
3Male sterile alleles have been characterized for these genes.
Table 3. DmSP genes with peptidase or proteinase inhibitor domains
| Peptidase domain | Gene symbols |
|---|---|
| Metallopeptidases | |
| Peptidase M1 | |
| Peptidase M12B | |
| Peptidase M13 | |
| Peptidase M14 | |
| Peptidase M16 | |
| Peptidase M17 | |
| Peptidase M24 or M24A | |
| Peptidase M41 | |
1Testis expression based on transcript presence in 4 out of 4 microarray experiments.
2Upregulation of expression in the testis relative to whole fly.