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Schust, D. J.

Publications and source records attributed to Schust, D. J..

2 recordsLinked to original sources

Mouse suppressyn-like 1 is an endogenous retrovirus-derived inhibitor of membrane fusion through direct association with envelope glycoproteins

Cell-cell fusion is essential for placental development and is mediated by endogenous retrovirus (ERV)-derived fusogens known as syncytins. However, how ERV-derived proteins negatively regulate membrane fusion remains largely unknown. Here, we identify a previously uncharacterized murine ERV envelope-derived protein, mouse suppressyn-like 1 (mSUPYNL1), that suppresses syncytin-mediated membrane fusion through a mechanism distinct from that of placental human suppressyn (hSUPYN). Unlike hSUPYN, which acts through receptor interference, mSUPYNL1 inhibits both murine and human syncytin-mediated fusion independently of receptor usage by associating with the surface (SU) subunits of multiple syncytin envelope glycoproteins, revealing a receptor-independent mechanism of fusion suppression. This mechanism extends beyond endogenous fusogens. mSUPYNL1 also associates with the SU glycoprotein (gp46) of Human T-cell Leukemia Virus type 1 (HTLV-1) and suppresses Env-dependent syncytium formation, whereas hSUPYN showed no detectable antiviral activity in this assay. These findings identify mSUPYNL1 as a broad-spectrum inhibitor of envelope glycoprotein-mediated membrane fusion. Analysis of mSUPYNL1 knockout mice revealed that, in contrast to the placenta-restricted expression of hSUPYN, mSUPYNL1 was broadly expressed, with its most prominent localization in decidual stromal and vascular endothelial cells of the pregnant uterus, as well as in hematopoietic tissues such as the spleen and thymus. Together, our findings uncover an evolutionarily distinct class of ERV-derived fusion suppressors that function through envelope glycoprotein recognition instead of receptor interference. Our study expands current models of ERV domestication by demonstrating that retroviral envelope proteins have been independently co-opted not only to promote membrane fusion but also to restrain it, thereby linking placental biology, antiviral defense, and host evolution. HIGHLIGHTSO_LImSUPYNL1 is an endogenous retrovirus-derived membrane fusion inhibitor C_LIO_LImSUPYNL1 binds the SU domains of murine and human syncytins C_LIO_LImSUPYNL1 suppresses HTLV-1 Env-mediated syncytium formation C_LIO_LIDirect envelope recognition enables receptor-independent fusion inhibition C_LI

developmental biology↗

Development of properly-polarized trophoblast stem cell-derived organoids to model early human pregnancy

The development of human trophoblast stem cells (hTSC) and stem cell-derived trophoblast organoids has enabled investigation of placental physiology and disease and early maternal-fetal interactions during a stage of human pregnancy that previously had been severely restricted. A key shortcoming in existing trophoblast organoid methodologies is the non-physiologic position of the syncytiotrophoblast (STB) within the inner portion of the organoid, which neither recapitulates placental villous morphology in vivo nor allows for facile modeling of STB exposure to the endometrium or the contents of the intervillous space. Here we have successfully established properly-polarized human trophoblast stem cell (hTSC)-sourced organoids with STB forming on the surface of the organoid. These organoids can also be induced to give rise to the extravillous trophoblast (EVT) lineage with HLA-G+ migratory cells that invade into an extracellular matrix-based hydrogel. Compared to previous hTSC organoid methods, organoids created by this method more closely mimic the architecture of the developing human placenta and provide a novel platform to study normal and abnormal human placental development and to model exposures to pharmaceuticals, pathogens and environmental insults. MotivationHuman placental organoids have been generated to mimic physiological cell-cell interactions. However, those published models derived from human trophoblast stem cells (hTSCs) or placental villi display a non-physiologic "inside-out" morphology. In vivo, the placental villi have an outer layer of syncytialized cells that are in direct contact with maternal blood, acting as a conduit for gas and nutrient exchange, and an inner layer of progenitor, single cytotrophoblast cells that fuse to create the syncytiotrophoblast layer. Existing "inside-out" models put the cytotrophoblast cells in contact with culture media and substrate, making physiologic interactions between syncytiotrophoblast and other cells/tissues and normal and pathogenic exposures coming from maternal blood difficult to model. The goal of this study was to develop an hTSC-derived 3-D human trophoblast organoid model that positions the syncytiotrophoblast layer on the outside of the multicellular organoid. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=69 SRC="FIGDIR/small/560327v1_ufig1.gif" ALT="Figure 1"> View larger version (24K): org.highwire.dtl.DTLVardef@7f1e7forg.highwire.dtl.DTLVardef@1ab41d9org.highwire.dtl.DTLVardef@7046d5org.highwire.dtl.DTLVardef@13a7542_HPS_FORMAT_FIGEXP M_FIG C_FIG

developmental biology↗