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牛输卵管类器官:一种多组学方法,用于捕获输卵管对热应激的细胞和细胞外分子反应。

Bovine oviductal organoids: a multi-omics approach to capture the cellular and extracellular molecular response of the oviduct to heat stress.

机构信息

Animal Reproduction and Biotechnology Laboratory (ARBL), Department of Biomedical Sciences, College of Veterinary Medicine and Biomedical Sciences, Colorado State University, 3107 Rampart Rd, Fort Collins, CO, 80521, USA.

Department of Animal Production, Faculty of Agriculture, Cairo University, Giza, 12613, Egypt.

出版信息

BMC Genomics. 2023 Oct 27;24(1):646. doi: 10.1186/s12864-023-09746-y.

Abstract

BACKGROUND

The mammalian oviduct is a complex, fibromuscular organ known for its role in orchestrating a series of timely and dynamic changes to suitably support early embryogenesis. Climate change-induced heat stress (HS) is one of the largest single stressors compromising reproductive function in humans and farm animals via systemic changes in the redox status of the maternal environment, adversely affecting fertilization and early embryonic development. Oviductal organoids represent a unique 3-dimensional, biomimetic model to study the physiology of the oviduct and its subsequent impact on embryo development under various environmental conditions.

RESULTS

Our study is the first to demonstrate an innovative approach to understanding the cascade of molecular changes sustained by bovine oviductal organoids under HS and the subsequent maternal signals harnessed within their secreted extracellular vesicles (EVs). Transcriptomic analysis of oviductal organoids exposed to HS revealed 2,570 differentially expressed genes (1,222 up- and 1,348 downregulated), while EV-coupled miRNome analysis disclosed 18 miRNAs with significant differential expression (12 up- and 6 downregulated) in EVs from thermally stressed organoids compared to EVs released from organoids cultured under thermoneutral conditions. Genes activated in oviductal organoids in response to thermal stress, include: COX1, ACTB, CST6, TPT1, and HSPB1, while miR-1246, miR-148a, miR21-5p, miR-451, and miR-92a represent the top highly abundant EV-coupled miRNAs released in response to HS. Pathway analysis of genes enriched in organoids exposed to thermal stress showed the enrichment of endocrine resistance, cellular senescence, and notch signaling pathways. Similarly, EV-coupled miRNAs released from thermally stressed organoids showed their potential regulation of genes involved in cellular senescence, p53 signaling, and TGF-beta signaling pathways.

CONCLUSIONS

In conclusion, the cellular and extracellular response of bovine oviductal organoids to in vitro HS conditions reveal the prospective impact of environmental HS on the physiology of the oviduct and the probable subsequent impacts on oocyte fertilization and early embryo development. Future studies elucidating the potential impact of HS-associated EVs from oviductal organoids on oocyte fertilization and preimplantation embryo development, would justify the use of an organoid model to optimally understand the oviduct-embryo communication under suboptimal environments.

摘要

背景

哺乳动物的输卵管是一个复杂的纤维肌肉器官,其作用是协调一系列及时和动态的变化,以适当地支持早期胚胎发生。气候变化引起的热应激(HS)是通过母体环境氧化还原状态的系统性变化,对人类和农场动物的生殖功能造成最大单一压力之一,对受精和早期胚胎发育产生不利影响。输卵管类器官代表了一种独特的 3 维、仿生模型,可用于研究输卵管的生理学及其在各种环境条件下对胚胎发育的后续影响。

结果

我们的研究首次证明了一种创新方法,可以了解牛输卵管类器官在 HS 下持续的分子变化级联,以及随后在其分泌的细胞外囊泡(EVs)中利用的母体信号。暴露于 HS 的输卵管类器官的转录组分析显示,有 2570 个差异表达基因(1222 个上调和 1348 个下调),而 EV 相关的 miRNA 组分析显示,与在热中性条件下培养的类器官释放的 EV 相比,热应激类器官释放的 EV 中有 18 个 miRNA 表达有显著差异(12 个上调和 6 个下调)。输卵管类器官对热应激的反应中激活的基因包括:COX1、ACTB、CST6、TPT1 和 HSPB1,而 miR-1246、miR-148a、miR-21-5p、miR-451 和 miR-92a 则代表了对 HS 反应中释放的最高丰度的 EV 相关 miRNA。对热应激类器官中富集的基因进行通路分析显示,内分泌抵抗、细胞衰老和 Notch 信号通路富集。同样,从热应激类器官释放的 EV 相关 miRNA 显示了它们对涉及细胞衰老、p53 信号和 TGF-β 信号通路的基因的潜在调节作用。

结论

总之,牛输卵管类器官对体外 HS 条件的细胞和细胞外反应揭示了环境 HS 对输卵管生理学的潜在影响,以及可能对卵母细胞受精和早期胚胎发育的后续影响。未来研究阐明来自输卵管类器官的 HS 相关 EVs 对卵母细胞受精和植入前胚胎发育的潜在影响,将证明使用类器官模型来优化理解次优环境下的输卵管-胚胎通讯是合理的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/de9c/10605953/8ea10a37a389/12864_2023_9746_Fig1_HTML.jpg

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