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Lemenze, A.

Publications and source records attributed to Lemenze, A..

7 recordsLinked to original sources

Interferon epsilon restricts Zika virus infection in the female reproductive tract

Interferon {varepsilon} (IFN{varepsilon}) is a unique type I IFN that has been implicated in host defense against sexually transmitted infections (STIs). Zika virus (ZIKV), an emerging pathogen, can infect the female reproductive tract (FRT) and cause devastating diseases, particularly in pregnant women. How IFN{varepsilon} contributes to protection against ZIKV infection in vivo is unknown. Here, we show that IFN{varepsilon} plays a critical role in host protection against vaginal ZIKV infection in mice. We found that IFN{varepsilon} was expressed not only by epithelial cells in the FRT, but also by certain immune and other cells at baseline or after exposure to viruses or specific TLR agonists. IFN{varepsilon}-deficient mice exhibited abnormalities in the epithelial border and underlying tissue in the cervicovaginal tract, and these defects were associated with increased susceptibility to vaginal, but not subcutaneous ZIKV infection. IFN{varepsilon}-deficiency resulted in an increase in magnitude, duration, and depth of ZIKV infection in the FRT. Critically, intravaginal administration of recombinant IFN{varepsilon} protected Ifn{varepsilon}-/- mice and highly susceptible Ifnar1-/-mice against vaginal ZIKV infection, indicating that IFN{varepsilon} was sufficient to provide protection even in the absence of signals from other type I IFNs and in an IFNAR1-independent manner. Our findings reveal a potentially critical role for IFN{varepsilon} in mediating protection against transmission of ZIKV in the context of sexual contact. SignificanceInterferon {varepsilon} (IFN{varepsilon}), a unique Type I IFN that is highly expressed in the epithelium of the female reproductive tract (FRT), is thought to protect the host against sexually transmitted infections (STIs) but the mechanism of action is not defined. Zika virus (ZIKV), a causative agent for preterm birth and other severe diseases in pregnant women, can be spread through vaginal transmission. Here, we show that mice lacking the Ifn{varepsilon} gene have abnormal epithelial development and tissue architecture in the cervicovaginal tract. The role of IFN{varepsilon} in protecting host against ZIKV is FRT-specific and is independent of IFNAR1 signaling. Our findings suggest potential preventive strategies based on harnessing mucosal immunity against STIs.

immunology↗

Endometrial adhesion G protein-coupled receptors are dynamically expressed across the menstrual cycle and expression is altered by ovarian stimulation

Ovarian stimulation (OS), utilized for the development of multiple ovarian follicles for IVF, induces supraphysiologic levels of E2 and an early rise in P4 that disrupt endometrial differentiation and decreases implantation rates or result in placental insufficiency and pregnancy complications. To improve pregnancy rates and reduce the risk of pregnancy complications associated with IVF, it is crucial to advance our molecular understanding of the molecular regulation of endometrial differentiation. Previous studies from our laboratory suggest G protein-coupled receptors (GPCRs) are important regulators of endometrial differentiation. To investigate this further, using a retrospective dataset, we identified all GPCRs expressed across the proliferative and secretory phase of the menstrual cycle and found that many members of the adhesion G protein-coupled receptor (ADGR) family are dynamically expressed. For each ADGR subfamily exhibiting differentially-expressed genes across the cycle, their expression was investigated by RT-PCR in the non-pregnant mouse uterus and decidua on E7.5 of pregnancy. For those genes expressed in the E7.5 decidua, their expression was further quantified by qPCR across early mouse pregnancy. The RT-PCR screen revealed expression of 13 ADGRs (4 of the 9 subfamilies) in E7.5 decidua and among these genes, many were differentially expressed between E0.5 and E5.5 or 6.5 and between E5.5 and E6.5. The dynamic expression of the ADGRs across the menstrual cycle and in early mouse pregnancy, suggests these ADGRs are E2- and/or P4-regulated genes. We therefore hypothesized that for these ADGR genes, mRNA expression would be disrupted in an OS cycle. This hypothesis was tested on endometrial biopsies collected in the secretory phase from prospective cohorts of women in natural and OS cycles. Consistent with the retrospective dataset, our data revealed that members of the ADGR gene family are expressed in the secretory phase of the natural menstrual cycle and for the first time, we show that their expression is altered by ovarian stimulation.

cell biology↗

Bone Marrow- and Umbilical Cord-Derived Mesenchymal Stem Cell Secretome Alters Gene Expression and Upregulates Motility of Human Endometrial Stromal Cells

IntroductionCyclic regeneration of the endometrium, and its repair after parturition or injury, are crucial for successful reproduction. Mesenchymal stem cells (MSCs) derived from bone marrow (BM-MSC) and umbilical cord (UC-MSC) facilitate tissue repair via their secretome, which contains growth factors and cytokines that promote wound healing. Despite the implication of MSCs in endometrial regeneration and repair, the mechanisms remain unclear. This study tested the hypothesis that the secretome of MSCs from human BM and UC upregulates human endometrial stromal cell (HESC) proliferation, migration and invasion, and activates pathways to increase HESC motility. MethodsMSCs were purchased from ATCC (BM-MSC-1) and cultured from the BM aspirate of three healthy female donors (BM-MSC-2-4), and from umbilical cords of two healthy male term infants (UC-MSC-1-2). Indirect co-culture of MSCs and hTERT-immortalized HESCs via a transwell system studied the effect of the BM-MSC and UC-MSC secretome on HESC proliferation, migration, and invasion. To study the effect of the MSC secretome on HESC gene expression, HESCs were exposed to the BM-MSC secretome via indirect co-culture for 24 h. Total RNA was extracted from HESCs for RNA sequencing (RNA-Seq). Differentially expressed genes (DEG) and significantly altered pathways were identified. MSigDB was used to identify the top 15 enriched biological pathways (padj < 0.05). RT-qPCR was performed to validate changes in mRNA expression of DEG common to both BM-MSC exposures. Given robust upregulation of CCL2 mRNA expression in HESCs exposed to the BM- and UC-MSC secretomes, transwell migration and invasion assays were performed to determine the effect of recombinant CCL2 on HESC motility. Statistical significance was defined as p<0.05. ResultsIndirect co-culture of HESCs with BM- or UC-MSCs resulted in significant increase in HESC migration and invasion regardless of the source of MSCs. However, effects on cellular proliferation varied among the MSC donors. Exposure of HESCs to the secretome of BM-MSCs changed the expression of 10,139 genes with FDR < 0.05. There was overlap among 4350 genes between HESCs exposed to BM-MSC-1 and BM-MSC-2. Within four biological pathways enriched in HESCs, 4 genes (CCL2, HGF, PLAU, and BDKRB2) were differentially expressed in HESCs that had been cocultured with BM-MSC-1 and BM-MSC-2. qRT-PCR showed significantly increased mRNA expression of CCL2 in HESCs exposed to BM-MSC-1 (5-fold) and BM-MSC-2 (7.7-fold). In contrast, the increase in HGF expression was significant after exposure to BM-MSC-2 (1.8-fold) but not BM-MSC-1. Exposure to the UC-MSC secretome had similar effects on HESC-derived CCL2 and HGF levels. CCL2 expression was significantly increased (6.5-fold) by UC-MSC-2 but not by UC-MSC-1; HGF expression was significantly increased (1.6-fold) by UC-MSC-2 but not by UC-MSC-1. Validation studies indicated that exposure to recombinant CCL2 for 48 hours significantly increased HESC migration (1.2-fold) and invasion (1.4-fold). These data suggest that CCL2 is a key factor in mediating MSC-induced HESC motility. ConclusionIncreased HESC motility by the secretome of BM- and UC-MSC appears to be mediated by paracrine and autocrine mechanisms, in part by upregulated CCL2 expression in HESC. Together, our data support the potential for leveraging the MSC secretome as a novel cell-free therapy in the treatment of disorders of endometrial regeneration.

cell biology↗

A helminth mimic of TGF-β, TGM, enhances regenerative cutaneous wound healing and modulates immune cell recruitment and activation

Intestinal helminth parasites express excretory/secretory (ES) molecules, which modulate the type-2 immune response including anti-inflammatory and tissue repair pathways. TGF-{beta} mimic (TGM), an ES molecule secreted by Heligmosomoides polygyrus (Hp), binds TGF-{beta} receptors yet lacks structural homology to TGF-{beta} and exhibits distinct receptor interactions. We demonstrate TGM treatment enhanced wound healing and tissue regeneration in an in vivo wound biopsy model. TGM, in a 1.5% carboxymethylcellulose solution, was topically administered beneath a Tegaderm layer. Through histological analysis, increased restoration of normal tissue structure in the wound beds of TGM-treated mice was observed during mid- to late-stage wound healing. These observations included accelerated re-epithelialization and hair follicle regeneration, without increased scarring. Flow cytometric and gene expression analysis showed differential expansion of myeloid populations at different stages of wound healing. This included enhanced early accumulation and persistence of macrophages in TGM-treated wounds during the initial inflammatory phase. Additionally, the percentage of alternatively activated (M2) macrophages expressing CD206 was reduced with TGM treatment during early and mid-stage wound healing. scRNAseq analysis of TGM-treated wounds indicate upregulation of multiple wound healing-associated genes without expression of CD206 within macrophage subsets. Experiments with truncated TGM constructs revealed that the TGF{beta}-R binding domain was essential in enhancing the wound healing response. In summary, TGM can accelerate skin wound healing and pro-restorative maturation through its interaction with the TGF-{beta} receptor and stimulate the recruitment and reprogramming of specific macrophage subsets. This study indicates a role for TGM as a potential novel therapeutic option for enhanced wound healing. One-Sentence SummaryA helminth-derived protein leads to rapid wound closure, skin regeneration, and reprogramming of macrophage activation through TGF-{beta}R binding.

immunology↗

Breast tumor IGF-1R regulates cell adhesion and metastasis: Alignment of mouse single cell and human breast cancer transcriptomics

The acquisition of a metastatic phenotype is the critical event that determines patient survival from breast cancer. Several receptor tyrosine kinases have functions both in promoting and inhibiting metastasis in breast tumors. Although the insulin-like growth factor 1 receptor (IGF-1R) has been considered a target for inhibition in breast cancer, low levels of IGF-1R expression are associated with worse overall patient survival. To determine how reduced IGF-1R impacts tumor phenotype, we used weighted gene correlation network analysis (WGCNA) of METABRIC patient data and identified gene modules specific to cell cycle, adhesion, and immune cell signaling inversely correlated with IGF-1R expression in human breast cancers. Integration of human patient data with data from mouse tumors revealed similar pathways necessary for promoting metastasis in basal-like tumors with reduced signaling or expression of the IGF-1R. Functional analyses revealed the basis for the enhanced metastatic phenotype including alterations in E- and P-cadherins.

cancer biology↗

A transmissible γδ intraepithelial lymphocyte hyperproliferative phenotype is associated with the intestinal microbiota and confers protection against acute infection.

Intraepithelial lymphocytes expressing the {gamma}{delta} T cell receptor ({gamma}{delta} IELs) serve as a first line of defense against luminal microbes. Although the presence of an intact microbiota is dispensable for {gamma}{delta} IEL development, several microbial factors contribute to the maintenance of this sentinel population. However, whether specific commensals influence population of the {gamma}{delta} IEL compartment under homeostatic conditions has yet to be determined. We identified a novel {gamma}{delta} IEL hyperproliferative phenotype that arises early in life and is characterized by expansion of multiple V{gamma} subsets. Horizontal transfer of this hyperproliferative phenotype to mice harboring a phenotypically normal {gamma}{delta} IEL compartment was prevented following antibiotic treatment, thus demonstrating that the microbiota is both necessary and sufficient for the observed increase in {gamma}{delta} IELs. Further, we identified a group of unique gut bacteria represented by 5 amplicon sequence variants (ASV) which are strongly associated with {gamma}{delta} IEL expansion. Using intravital microscopy, we find that hyperproliferative {gamma}{delta} IELs also exhibit increased migratory behavior leading to enhanced protection against bacterial infection. These findings reveal that transfer of a specific group of commensals can regulate {gamma}{delta} IEL homeostasis and immune surveillance, which may provide a novel means to reinforce the epithelial barrier.

immunology↗

Monocyte-derived alveolar macrophages mediate resistance to migrating helminths through depletion of arginine availability

Macrophages are known to mediate anti-helminth responses, but it remains uncertain which subsets are involved or how macrophages actually kill helminths. Here we show rapid monocyte recruitment to the lung after infection with the nematode parasite, Nippostrongylus brasiliensis. In this inflamed tissue microenvironment these monocytes differentiate into an alveolar-like macrophage (AM) phenotype, expressing both Siglec-F and CD11c, surround invading parasitic larvae and preferentially kill parasites in vitro. Monocyte-derived AMs (Mo-AMs) express type 2-associated markers and show distinct remodeling of the chromatin landscape relative to tissue-derived AMs. In particular, they express high amounts of Arg1 (arginase-1), which we demonstrate mediates helminth killing through L-arginine depletion. These studies indicate that recruited monocytes are selectively programmed in the pulmonary environment to express AM markers and an anti-helminth phenotype.

immunology↗