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McDonough-Goldstein, C. E.

Publications and source records attributed to McDonough-Goldstein, C. E..

3 recordsLinked to original sources

Novel female reproductive organ differentiates postmating transcriptional response to insemination versus arrival of sperm in bedbugs

Following the evolution of internal fertilisation, the female reproductive tract became the site of reproductive interactions. However, our understanding of the evolution of female reproductive tract function, including postmating responses critical for reproductive success, are taxonomically limited. Traumatic insemination in the common bedbug (Cimex lectularius) presents an unusual scenario under which postmating responses unfold. Bedbugs have evolved a novel organ, the mesospermalege, that is the site of initial ejaculate x female interactions. As the female reproductive tract does not take receipt of the ejaculate until several hours after mating, bedbugs provide a unique opportunity to explore the evolution of a novel reproductive organ that decouples postmating female responses involved in mating and transfer of the ejaculate from sperm storage, ovulation, and oviposition. Here we show that the mesospermalege has a gene expression profile consistent with functions of ejaculate processing and immune response normally found in the lower reproductive tract of other insect species. In parallel, the postmating response in the lower female reproductive tract is delayed, coinciding with movement of sperm through the female, clearly showing that the postmating response has evolved in response to sperm receipt rather than being an innate function of the tissue. Notably, we also found expression of male seminal fluid genes in the mesospermalege, indicating that intersexual molecular dynamics influence the evolution of reproductive tissues. Our results provide insights into the evolution of novel reproductive traits and female postmating physiology in a global pest with an unusual reproductive biology. SIGNIFICANCEReproduction poses one of the most persistent challenges faced by animals whereby females undergo a series of physiological changes after mating. The independent origin of a reproductive organ in bedbugs (called the mesospermalege) which has evolved to alleviate the costs of traumatic insemination presents a unique case to study the evolution of a novel trait and postmating physiology. Using transcriptomics, we show that many genes normally expressed in the female reproductive tract are instead expressed in the mesospermalege. The reproductive tract also shows a delayed postmating transcriptional response coinciding with sperm entry into the reproductive tract. Our results provide insights into the evolution of reproductive traits and female postmating physiology in a global pest with an unusual reproductive biology.

evolutionary biology↗

Hallmarks of uterine receptivity predate placental mammals

Embryo implantation is essential to pregnancy in eutherian (placental) mammals. The cellular changes that enabled invasive implantation to evolve from superficial embryo apposition, the ancestral condition still retained in marsupials, have remained unclear. We generated and compared single-cell transcriptomes from the peri-implantation and non-pregnant uterus of two rodents with invasive implantation, the mouse and the guinea pig, and the opossum, a marsupial lacking invasive implantation. Cross-species analysis of endometrial cell types and ligand-receptor signaling revealed that the opossum blastocyst-stage uterus, despite lacking fetal-maternal contact, shares key features with the eutherian window of receptivity. These include a window in which the epithelial-stromal IHH-PTCH1 axis is active, but the downstream BMP2-mediated signaling that enables decidualization in eutherians is antagonized through a temporary spike in glandular GREM2. We propose that a homologous progesterone-responsive endometrial remodeling reaction preceded the evolution of eutherian and marsupial modes of implantation in their respective lineages. Complementary analysis of pre- and post-implantation embryonic transcriptomes from the same species revealed broad conservation of implantation-related functional genes in the blastocyst, as well as a remarkable similarity in ligand production between the mature trophoblast and the luminal epithelium. We suggest that this redundancy between trophectoderm and luminal epithelial signaling was an enabling factor for the evolution of invasive placentation. Together, these findings suggest that eutherian implantation evolved by maternal rewiring of the output of an ancestral window of receptivity-like epithelial-stromal signaling axis toward decidualization, stabilized epithelial loss, and invasion. Significance StatementPregnancy in placental mammals begins with implantation and invasion of the embryo, whereas marsupials retain a superficial mode of embryo apposition. How this major evolutionary transition occurred is unknown. Comparing uterine and embryonic single-cell transcriptomes between model rodents and the opossum reveals that the marsupial uterus activates an epithelial-stromal signaling axis canonically associated with receptivity to implantation. In the marsupial uterus, its outputs are opposed by inhibitory signals, whereas in placental mammals, this program promotes uterine decidual transformation and invasion. Early-embryo implantation-related gene expression, in contrast, shows little change across species. These results challenge the view that implantation evolved through the gain of invasive properties by the embryo, and reveal a common developmental foundation from which placentals evolved their novel mode of gestation.

evolutionary biology↗

The seminal odorant binding protein Obp56g is required for mating plug formation and male fertility in Drosophila melanogaster

In Drosophila melanogaster and other insects, the seminal fluid proteins (SFPs) and male sex pheromones that enter the female with sperm during mating are essential for fertility and induce profound post-mating effects on female physiology and behavior. The SFPs in D. melanogaster and other taxa include several members of the large gene family known as odorant binding proteins (Obps). Previous work in Drosophila has shown that some Obp genes are highly expressed in the antennae and can mediate behavioral responses to odorants, potentially by binding and carrying these molecules to odorant receptors. These observations have led to the hypothesis that the seminal Obps might act as molecular carriers for pheromones or other compounds important for male fertility in the ejaculate, though functional evidence in any species is lacking. Here, we used RNAi and CRISPR/Cas9 generated mutants to test the role of the seven seminal Obps in D. melanogaster fertility and the post-mating response (PMR). We found that Obp56g is required for male fertility and the induction of the PMR, whereas the other six genes had no effect on fertility when mutated individually. Obp56g is expressed in the males ejaculatory bulb, an important tissue in the reproductive tract that synthesizes components of the mating plug. We found males lacking Obp56g fail to form a mating plug in the mated females reproductive tract, leading to ejaculate loss and reduced sperm storage. We also examined the evolutionary history of these seminal Obp genes, as several studies have documented rapid evolution and turnover of SFP genes across taxa. We found extensive lability in gene copy number and evidence of positive selection acting on two genes, Obp22a and Obp51a. Comparative RNAseq data from the male reproductive tract of multiple Drosophila species revealed that Obp56g shows high male reproductive tract expression only in species of the melanogaster and obscura groups, though conserved head expression in all species tested. Together, these functional and expression data suggest that Obp56g may have been co-opted for a reproductive function over evolutionary time.

genetics↗