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子宫壁多细胞共培养模型的层状排列和机械生物学。

Arrangement into layers and mechanobiology of multi-cell co-culture models of the uterine wall.

机构信息

Department of Biomedical Engineering, Tel Aviv University, Tel Aviv, Israel.

Department of Obstetrics and Gynecology, Lis Maternity Hospital, Tel-Aviv Medical Center, Tel Aviv, Israel.

出版信息

Hum Reprod. 2024 Aug 1;39(8):1767-1777. doi: 10.1093/humrep/deae130.

Abstract

STUDY QUESTION

Can a co-culture of three cell types mimic the in vivo layers of the uterine wall?

SUMMARY ANSWER

Three protocols tested for co-culture of endometrial epithelial cells (EEC), endometrial stromal cells (ESC), and myometrial smooth muscle cells (MSMC) led to formation of the distinct layers that are characteristic of the structure of the uterine wall in vivo.

WHAT IS KNOWN ALREADY

We previously showed that a layer-by-layer co-culture of EEC and MSMC responded to peristaltic wall shear stresses (WSS) by increasing the polymerization of F-actin in both layers. Other studies showed that WSS induced significant cellular alterations in epithelial and endothelial cells.

STUDY DESIGN, SIZE, DURATION: Human EEC and ESC cell lines and primary MSMC were co-cultured on a collagen-coated synthetic membrane in custom-designed wells. The co-culture model, created by seeding a mixture of all cells at once, was exposed to steady WSS of 0.5 dyne/cm2 for 10 and 30 min.

PARTICIPANTS/MATERIALS, SETTING, METHODS: The co-culture of the three different cells was seeded either layer-by-layer or as a mixture of all cells at once. Validation of the models was by specific immunofluorescence staining and confocal microscopy. Alterations of the cytoskeletal F-actin in response to WSS were analyzed from the 2-dimensional confocal images through the Z-stacks following a previously published algorithm.

MAIN RESULTS AND THE ROLE OF CHANCE

We generated three multi-cell in vitro models of the uterine wall with distinct layers of EEC, ESC, and MSMC that mimic the in vivo morphology. Exposure of the mixed seeding model to WSS induced increased polymerization of F-actin in all the three layers relative to the unexposed controls. Moreover, the increased polymerization of F-actin was higher (P-value < 0.05) when the length of exposure was increased from 10 to 30 min. Furthermore, the inner layers of ESC and MSMC, which are not in direct contact with the applied shearing fluid, also increased their F-actin polymerization.

LARGE SCALE DATA

N/A.

LIMITATIONS, RESONS FOR CAUTION: The mixed seeding co-culture model was exposed to steady WSS of one magnitude, whereas the uterus is a dynamic organ with intra-uterine peristaltic fluid motions that vary in vivo with different time-dependent magnitude. Further in vitro studies may explore the response to peristaltic WSS or other physical and/or hormonal perturbations that may mimic the spectrum of pathophysiological aspects.

WIDER IMPLICATIONS OF THE FINDINGS

Numerous in vitro models were developed in order to mimic the human endometrium and endometrium-myometrium interface (EMI) region. The present co-culture models seem to be the first constructed from EEC, ESC, and MSMC on a collagen-coated synthetic membrane. These multi-cell in vitro models better represent the complex in vivo anatomy of the EMI region. The mixed seeding multi-cell in vitro model may easily be implemented in controlled studies of uterine function in reproduction and the pathogenesis of diseases.

STUDY FINDING/COMPETING INTEREST(S): This study was supported in part by Tel Aviv University funds. All authors declare no conflict of interest.

摘要

研究问题

三种细胞的共培养能否模拟子宫壁的体内层?

总结答案

三种共培养子宫内膜上皮细胞(EEC)、子宫内膜基质细胞(ESC)和子宫平滑肌细胞(MSMC)的方案导致形成了与体内子宫壁结构特征一致的独特层。

已知内容

我们之前表明,EEC 和 MSMC 的逐层共培养对蠕动壁切变应力(WSS)的反应是通过增加两层中 F-肌动蛋白的聚合来实现的。其他研究表明,WSS 诱导上皮细胞和内皮细胞发生显著的细胞改变。

研究设计、规模、持续时间:人 EEC 和 ESC 细胞系和原代 MSMC 被共培养在定制设计的井中的胶原包被的合成膜上。通过一次接种所有细胞的混合物来创建共培养模型,并暴露于 0.5dyne/cm2 的稳定 WSS 中 10 和 30 分钟。

参与者/材料、设置、方法:三种不同细胞的共培养分别以层状或所有细胞的混合物形式接种。通过特定的免疫荧光染色和共焦显微镜对模型进行验证。通过之前发表的算法从二维共焦图像的 Z 堆叠分析对 WSS 反应的细胞骨架 F-肌动蛋白的改变。

主要结果和机会的作用

我们生成了三种具有不同 EEC、ESC 和 MSMC 层的子宫壁多细胞体外模型,模拟了体内形态。与未暴露的对照相比,WSS 暴露于混合播种模型中导致所有三层的 F-肌动蛋白聚合增加。此外,当暴露时间从 10 分钟增加到 30 分钟时,F-肌动蛋白的聚合增加更高(P 值<0.05)。此外,ESC 和 MSMC 的内层与施加的切变流体没有直接接触,它们的 F-肌动蛋白聚合也增加了。

大规模数据

无。

局限性、谨慎的原因:混合播种共培养模型暴露于一个量级的稳定 WSS 下,而子宫是一个动态器官,宫内蠕动流体运动在体内随不同时间相关的量级而变化。进一步的体外研究可能会探索对蠕动 WSS 或其他物理和/或激素扰动的反应,这些扰动可能模拟病理生理方面的范围。

研究结果的更广泛意义

为了模拟人类子宫内膜和子宫内膜-子宫肌层界面(EMI)区域,已经开发了许多体外模型。本研究中的共培养模型似乎是首次从 EEC、ESC 和 MSMC 在胶原包被的合成膜上构建的。这些多细胞体外模型更好地代表了 EMI 区域复杂的体内解剖结构。混合播种多细胞体外模型可方便地应用于生殖功能和疾病发病机制的子宫功能的受控研究。

研究结果/竞争利益:本研究部分得到特拉维夫大学基金的支持。所有作者均声明无利益冲突。

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