Search bioRxiv⌕ Search

bioRxiv · 10.64898/2026.01.26.701811

Profibrotic Changes Following Tension Application in a Fetal Lamb Model of Long Gap Esophageal Atresia

Abstract

IntroductionEsophageal atresia is a common congenital anomaly, occurring in 1 in 3,500 live births. The Foker process has revolutionized the treatment of long gap esophageal atresia (LGEA). It is well established that the Foker process causes tension accelerated growth of the esophagus, but what occurs at the molecular level during tension accelerated growth is still unknown. We aimed to create tension accelerated growth in a fetal lamb model of LGEA in order to answer this question. MethodsFollowing IACUC approval, time-dated fetal lambs (108 to 120 days of gestation) underwent thoracic esophagectomy. Both esophageal ends were ligated and sutured together to create an internal pexy under high tension. Lambs were delivered on postoperative day 2 (POD2) (n=7), POD6 (n=9) or term (n=5). The native esophagus collected at model creation served as control tissue. Specimens were bluntly separated into two layers: inner layer (IL) (epithelium, lamina propria, muscularis mucosa, submucosa) and outer layer (OL) (submucosa, muscle layer, adventitia). RNA sequencing (RNAseq), proteomics, immunohistochemistry, western blotting and real-time qRT-PCR were performed on the specimens. Mann-Whitneys or unpaired t-test were used for statistical analyses. Esophageal fibroblast cell lines established from human biopsy specimens were cultured and stimulated with TGF-beta for in vitro studies on collagen expression. Results23 lambs underwent esophagectomy with tension suture placement at 108 to 120 days gestation. Histologic analysis of tension conditioned compared to control esophagus by trichrome staining demonstrated an increase in collagen deposition in tension conditioned esophagus compared to controls. High throughput bulk RNA sequencing and proteomic analysis were performed with a focus on pathways implicated in fibrosis. GSEA analysis of the inner layer demonstrates upregulation of TGFB signaling, extracellular matrix organization, and collagen deposition at all timepoints. Further analysis was performed to evaluate specific collagen subtypes contributing to this profibrotic phenotype, and COL8A1 and COL12A1 were both significantly upregulated in both RNA and proteomic analysis at all timepoints, with Western blotting confirming up regulation in stretched tissue. In order to evaluate the relationship between TGFB signaling and collagen deposition in the esophagus, we stimulated esophageal fibroblasts with TGFB, qRT-PCR was performed to evaluate the expression of COL8A1, COL12A1, and COL6A3. Expression of all three of these collagen subtypes was noted to be significantly upregulated at all timepoints following TGFB stimulation when compared to non-stimulated controls. ConclusionsTension accelerated growth can safely be achieved in a fetal ovine model of long gap esophageal atresia. Additionally, esophageal atresia can be modeled in the ovine fetus as early as 92 days gestation. Our results demonstrate that esophageal tissue subjected to sustained tension undergoes significant profibrotic changes, as evidenced by upregulation of TGFB signaling, alterations in extracellular matrix organization, and increased collagen deposition. While it is well documented that patients with LGEA have an increased risk of post operative esophageal strictures, these findings provide the first in vivo proof of the role of tension in conferring a profibrotic phenotype in the tension-lengthened esophagus.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Pollack, J. C., Vinit, N., Jain, S., Conan, R. E., Bates, M., Kwechin, M., Eubanks, A. L., Xie, M., Muir, A., Partridge, E.. 2026-01-28. Profibrotic Changes Following Tension Application in a Fetal Lamb Model of Long Gap Esophageal Atresia. https://doi.org/10.64898/2026.01.26.701811

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

Transposable Elements Profiling Reveals DUXA-associated MLT1D Endogenous Retroviral Elements Activation During Bovine Maternal to Zygotic Transition

Transposable elements (TEs) are a major source of genomic diversity in mammals, yet their regulatory roles in the bovine genome remain poorly understood. Through characterizing bovine TE landscape, despite the substantial proportion (25.6%) of ruminant-specific TEs, we observe age- and class-dependent genomic distribution patterns similar to those observed in other mammals. Next, we profile TE and gene expression dynamics in pre-implantation embryos generated in vivo (IVV), by in vitro fertilization (IVT), and through somatic cell nuclear transfer (SCNT). The zygotic genome activation (ZGA) is shifted from the 4-cell stage to the 8-cell stage in IVT and SCNT embryos compared to IVV embryos. SCNT embryos exhibit impaired initiation of early transcription programs at the 4-cell stage and disrupted developmental trajectories, including abnormal activation of pluripotency-associated genes. A subset of retroviral LTR elements are strongly activated at ZGA in IVV and IVT embryos, whereas their activation is markedly muted in SCNT embryos, suggesting that impaired gene and TE reprogramming may contribute to the developmental defects commonly observed in SCNT embryos. By epigenomic profiling, the MLT1D elements from the ERVL-MaLR LTR family lose repressive marks and gain H3K27ac at ZGA, together with DUXA-binding motif enrichment. Knockdown of DUXA in bovine embryos significantly reduced MLT1D expression and ZGA marker genes. We propose that a subset of DUXA-enriched MLT1D functions as enhancers that promote ZGA. Overall, our study provides new insights into the regulatory roles of TEs during bovine embryogenesis and establishes a framework for comparative studies of TE-mediated gene regulation in early mammalian development.

developmental biology↗

Distinct transcriptional responses to mild cold versus warm temperatures in adult Drosophila melanogaster ovaries

Temperature influences fertility across diverse organisms, yet the mechanisms underlying how suboptimal temperatures affect gamete production and quality remain largely unknown. We previously showed that chronic exposure of adult Drosophila melanogaster females to mild cold promotes the maintenance of germline stem cells (GSCs) and high oocyte quality over time despite reducing the rates of oogenesis, while exposure to warm temperature causes death of early germline cysts and vitellogenic follicles and a severe decrease in oocyte quality. To explore potential mechanisms underlying these highly distinct responses, we compared the ovarian transcriptomes of females maintained at these temperatures (18{degrees}C or 29{degrees}C) to that of 25{degrees}C controls. We found that 18{degrees}C upregulates or downregulates ~2.5 times as many genes as 29{degrees}C, indicating that the ovary mounts active physiological responses to mild cold and warm temperatures--as opposed to simply undergoing passive changes driven by thermodynamics. Gene set enrichment analysis revealed modulation of genes involved in neuronal signaling in opposite directions at 18{degrees}C versus 29{degrees}C. Most genes, however, exhibit temperature-specific regulation: 29{degrees}C upregulates synaptic transmission genes and downregulates lipid biosynthesis genes, whereas 18{degrees}C upregulates actin cytoskeleton genes and downregulates cell adhesion and lipid organization genes. Notably, mild cold or warm temperature specifically modulated (either up or down) the expression of distinct sets of transposable elements (TEs), suggesting the existence of temperature-dependent TE regulatory mechanisms and/or downstream effects. Finally, we show that GSCs at 18{degrees}C have increased retrotransposon R2 transcript levels, larger nucleolar size, and elevated levels of the known stemness factor phosphorylated Mad, leading to a working model whereby elevated ribosome biogenesis supports increased stemness signaling to promote GSC maintenance in mild cold. These findings suggest potential mechanisms and open new questions for investigation towards a deeper understanding of how temperature modulates gene expression and impacts germline development and quality--which are essential for the perpetuation of species.

developmental biology↗

Dynamic Changes in Endometrial Folding and Secretory Activity Across the Menstrual Cycle

Embryo implantation remains a major limitation of assisted reproductive technology, with failure occurring in approximately 30% of euploid embryo transfers. Implantation requires a synchronized dialogue between the blastocyst and receptive endometrium during the window of implantation (WOI), yet minimally invasive approaches to characterize the structural and molecular features of receptivity remain limited. We analyzed paired sonohysterogram images and uterine lavage samples collected during the proliferative and mid-secretory phases from subjects with regular ovulatory cycles and proven fertility. Endometrial folds were quantified, and lavage samples were analyzed by Luminex multiplex immunoassay. Folds were present in both phases but were significantly more abundant during the mid-secretory WOI, independent of imaging view and endometrial thickness. Folding correlated strongly with circulating estradiol level during the proliferative phase but not the mid-secretory phase, and folding patterns between phases were not correlated, suggesting distinct regulatory mechanisms. Consistent with these structural patterns, uterine lavage demonstrated phase-specific differences in expression of factors associated with endometrial receptivity and implantation, with glandular epithelium, and myeloid-lineage cells emerging as major contributors. Together, these findings identify coordinated structural and secretory processes during the WOI and support further evaluation of endometrial folding and uterine lavage as complementary, minimally invasive markers of endometrial receptivity.

developmental biology↗