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Gokyer, D.

Publications and source records attributed to Gokyer, D..

3 recordsLinked to original sources

AAV-DJ Enables Targeted Gene Modulation in Human Ovarian Cells

Study question: Can adeno-associated viruses (AAVs) efficiently and safely transduce human primary granulosa cells and human ovarian stromal fibroblasts to modulate the expression of genes involved in follicle recruitment and ovarian microenvironment regulation? Summary answer: AAVs can efficiently transduce human primary granulosa cells and human ovarian stromal cells with low toxicity, with the serotype DJ (AAV-DJ) demonstrating superior performance. AAVs enable targeted modulation of ovarian genes such as AMHR2 in human primary granulosa cells and TGF{beta}1 in human ovarian stromal cells, supporting the feasibility of gene-based approaches to improve ovarian function. What is known already: Infertility affects approximately 15% of couples, with diminished oocyte quality and quantity being major contributors, particularly with advanced reproductive age. Assisted reproductive technologies rely primarily on hormonal stimulation and do not directly target molecular pathways governing folliculogenesis or the ovarian microenvironment. Animal studies suggest that gene therapy using AAVs offers a promising strategy for tissue-specific and durable gene modulation, yet its application in human ovarian cells remains largely unexplored. Study design, size, duration: This was an experimental laboratory study using primary human granulosa cells from patients undergoing in vitro fertilization (IVF) and ovarian stromal cells obtained from post-pubertal patients who donated surplus ovarian tissue from ovarian tissue cryopreservation procedures for research. Sixteen AAV serotypes were evaluated for transduction efficiency, toxicity, and expression dynamics, followed by functional gene knockdown studies using AAV-DJ-based shRNA vectors. Participants/materials, setting, methods: Primary human granulosa cells and ovarian stromal cells were isolated from follicular aspirates and ovarian tissue, respectively. Cells were transduced with GFP-expressing AAV serotypes at varying multiplicities of infection (MOIs), incubation times, and culture days to assess transduction efficiency and cytotoxicity. Lead serotypes were further evaluated in dose-response studies. Functional gene modulation was assessed using AAV-DJ-mediated shRNA knockdown of AMHR2 in granulosa cells and TGF{beta}1 in stromal cells, quantified by RT-qPCR, immunofluorescence, and western blotting. Main results and the role of chance: Six of sixteen AAV serotypes (AAV2, AAV3, AAV6, AAV9, AAV-DJ, and AAV-X1.1) achieved greater than 10% transduction efficiency in human primary granulosa cells. Among these, AAV-DJ demonstrated the highest efficiency across all MOIs tested, reaching up to 48% transduction at 100,000 MOI, significantly outperforming AAV2 and AAV9. Toxicity increased with viral dose for all serotypes but remained comparable across vectors, with AAV-DJ exhibiting higher efficiency with comparable toxicity. The AAV-DJ-shRNA-AMHR2 construct produced a significant reduction in expression of AMHR2 mRNA by ~81% (p<0.05) in human primary granulosa cells as well as at the protein level in HEK293T-AMHR2-ZsGreen engineered cells (~85% knockdown, p<0.01). In human ovarian stromal cells, AAV-DJ preferentially transduced EMILIN1 and ACTA2-positive fibroblast and myofibroblast-like cells and enabled robust knockdown of TGF{beta}1 at both transcript (~89% knockdown, p<0.05) and protein levels (~67% knockdown, p<0.0001) using AAV-DJ-shRNA-TGF{beta}1 construct. Limitations, reasons for caution: These experiments were performed in vitro using primary human ovarian cells, which may not fully recapitulate the in vivo ovarian environment. Functional reproductive outcomes were not assessed, and future studies will be required to evaluate the effects of gene modulation on folliculogenesis and fertility. Wider implications of the findings: These findings establish AAV-DJ as a promising vector for targeted gene modulation in human ovarian cells. This approach introduces a novel framework for addressing infertility and ovarian function by directly targeting molecular pathways involved in follicle recruitment and ovarian stromal signaling, potentially enhancing current assisted reproductive technologies.

developmental biology↗

Phthalates are detected in the follicular fluid of adolescents and oocyte donors with associated changes in the cumulus cell transcriptome

PurposeTo investigate follicular fluid (FF) phthalate levels in adolescents undergoing fertility preservation compared to oocyte donors and explore its association with ovarian reserve and cumulus cell gene expression. Methods20 Adolescents (16.7 {+/-} 0.6 years old) and 24 oocyte donors (26.2 {+/-} 0.4 years old) undergoing fertility preservation were included in the study. Patient demographics, ovarian stimulation and oocyte retrieval outcomes were analyzed for each group. FF levels of 9 phthalate metabolites were assessed individually and as molar sums representative of common compounds (all phthalates: Phthalates; DEHP: DEHP), exposure sources (plastics: Plastic; personal care products: PCP), and modes of action (anti-androgenic: AA) and compared between the two groups. ResultsFollicular fluid Plastic and PCP levels were significantly higher in adolescents compared to oocyte donors (p<0.05). Follicular fluid DEHP, Plastic, PCP, AA, and Phthalates levels were positively associated with antral follicle count (AFC) (p<0.05) in oocyte donors when adjusted for age, BMI, and race/ethnicity. RNA-seq analysis revealed 248 differentially expressed genes (DEGs) in cumulus cells of adolescents within the top quartile (n=4) of FF Phthalates levels compared to the adolescents within the bottom half (n=9). Genes enriched in pathways involved in cell motility and development were significantly downregulated. ConclusionAdolescents undergoing fertility preservation cycles demonstrate higher levels of phthalate metabolites in their follicular fluid compared to oocyte donors. Phthalate metabolite levels in FF are associated with higher AFC levels in oocyte donors. Higher phthalate levels in FF are associated with alterations in the cumulus cells transcriptome in adolescents. Capsule SummaryPhthalates are detected in the follicular fluid of adolescents and oocytes donors, and the levels are increased in the follicular fluid of adolescents. Higher total phthalate levels in follicular fluid are associated with altered cumulus cells transcriptome in adolescents.

developmental biology↗

The oocyte microenvironment is altered in adolescents compared to oocyte donors.

Study questionAre the molecular signatures of cumulus cells (CCs) and follicular fluid (FF) of adolescents undergoing fertility preservation differ from that of reproductively adult oocyte donors? Summary answerThe microenvironment immediately surrounding the oocyte, including the CCs and FF, is altered in adolescents undergoing fertility preservation compared to oocyte donors. What is known alreadyAdolescents experience a period of subfecundity following menarche. Recent evidence suggests that this may be at least partially due to increased oocyte aneuploidy. Reproductive juvenescence in mammals is associated with suboptimal oocyte quality. Study design, size, durationThis was a prospective cohort study. Adolescents (10-19 years old, N=23) and oocyte donors (22-30 years old, N=31) undergoing ovarian stimulation and oocyte retrieval at the Northwestern Fertility and Reproductive Medicine Center between November 1, 2020 and May 1, 2023 were enrolled in this study. Participants/materials, setting, methodsPatient demographics, ovarian stimulation, and oocyte retrieval outcomes were collected for all participants. The transcriptome of CCs associated with mature oocytes was compared between adolescents (10-19 years old, n=19), and oocyte donors (22-30 years old, n=19) using bulk RNA-sequencing. FF cytokine profiles (10-19 years old, n=18 vs. 25-30 years old, n=16) were compared using cytokine arrays. Main results and the role of chanceRNA-seq analysis revealed 581 differentially expressed genes (DEGs) in cumulus cells of adolescents relative to oocyte donors, with 361 genes downregulated and 220 upregulated. Genes enriched in pathways involved in cell cycle and cell division (e.g., GO:1903047, p= 3.5 x 10-43; GO:0051983, p= 4.1 x 10- 30; GO:0000281, p= 7.7 x 10-15; GO:0044839, p= 5.3 x 10-13) were significantly downregulated, while genes enriched in several pathways involved in cellular and vesicle organization (e.g., GO:0010256, p= 1.2 x 10-8; GO:0051129, p= 6.8 x 10-7; GO:0016050, p= 7.4 x 10-7; GO:0051640, p= 8.1 x 10-7) were upregulated in CCs of adolescents compared to oocyte donors. The levels of 9 cytokines were significantly increased in FF of adolescents compared to oocyte donors: IL-1 alpha (2-fold), IL-1 beta (1.7-fold), I-309 (2-fold), IL-15 (1.6-fold), TARC (1.9-fold), TPO (2.1-fold), IGFBP-4 (2-fold), IL-12-p40 (1.7-fold) and ENA-78 (1.4-fold). Interestingly, 7 of these cytokines have known pro-inflammatory roles. Importantly, neither the CC transcriptomes or FF cytokine profiles were different in adolescents with or without cancer. Large scale dataOriginal high-throughput sequencing data will be deposited in Gene Expression Omnibus (GEO) before publication, and the GEO accession number will be provided here. Limitations, reasons for cautionThis study aims to gain insights into the associated gamete quality by studying the immediate oocyte microenvironment. The direct study of oocytes is more challenging due to sample scarcity, as they are cryopreserved for future use, but will provide a more accurate assessment of oocyte reproductive potential. Wider implications of the findingsUnderstanding the underpinnings of altered immediate oocyte microenvironment of adolescent patients may provide insights into the reproductive potential of the associated gametes in the younger end of the age spectrum. This has implications for the fertility preservation cycles for very young patients. Study funding/competing interest(s)This project was supported by Friends of Prentice organization SP0061324 (M.M.L and E.B.), Gesualdo Family Foundation (Research Scholar: M.M.L.), and NIH/NICHD K12 HD050121 (E.B.). The authors have declared that no conflict of interest exists.

developmental biology↗