软细胞外基质驱动内质网应激依赖性S静止,是肺基底细胞分子特征的基础。

IF 9.4 1区 医学 Q1 ENGINEERING, BIOMEDICAL Acta Biomaterialia Pub Date : 2024-05-23 DOI:10.1016/j.actbio.2024.05.033
Pierre-Alexandre Laval , Marie Piecyk , Paul Le Guen , Mirela-Diana Ilie , Aubepart Marion , Joelle Fauvre , Isabelle Coste , Toufic Renno , Nicolas Aznar , Celine Hadji , Camille Migdal , Cedric Duret , Philippe Bertolino , Carole Ferraro-Peyret , Alice Nicolas , Cedric Chaveroux
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引用次数: 0

摘要

在二维和三维软基质上培养细胞可保留祖细胞的特征。然而,机械微环境决定祖细胞表型的机制及其与人类生物学的相关性仍鲜为人知。在这里,我们设计了具有高度物理化学均匀性的多孔水凝胶板,以可靠地解决生理硬度驱动细胞状态改变的分子机制问题。细胞周期、分化和代谢活动可在平行试验中进行研究,结果表明,软环境可促进非典型 S 期静止,防止细胞漂移,同时保持人类支气管上皮细胞的分化能力。这些对软度敏感的反应与内质网(ER)的钙渗漏、蛋白稳态缺陷和基础ER应激增强有关。对现有人类肺部单细胞数据的分析也表明,这种来自细胞外软环境的非常规状态确实与肺基底细胞的分子特征一致。总之,这项研究证明,在二维培养基中进行机械模拟,可使祖细胞保持在与生理高度相关的状态,从而描述支配人体组织中祖细胞生物学的分子事件。意义说明:这项研究的重点是软环境诱导祖细胞状态背后的分子机制。利用模仿正常人肺硬度的创新水凝胶支持物,所展示的数据证明了肺力学在保持肺上皮细胞分化能力的同时防止了漂移。此外,我们还发现细胞处于非典型 S 期的静止状态。从机理上讲,我们证明了这种静止状态:i)由内质网(ER)的钙渗漏和ER应激信号的PERK分支的基础激活驱动;ii)保护细胞免受代谢应激引起的致命性ER应激。最后,我们利用人类单细胞数据验证了在软基质上发现的这些分子特征也存在于基底肺细胞中。我们的研究结果揭示了在软环境中协调细胞命运和抵抗外源应激的原创性相关分子机制,从而为基底细胞生物学提供了新的基础和临床见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Soft extracellular matrix drives endoplasmic reticulum stress-dependent S quiescence underlying molecular traits of pulmonary basal cells

Cell culture on soft matrix, either in 2D and 3D, preserves the characteristics of progenitors. However, the mechanism by which the mechanical microenvironment determines progenitor phenotype, and its relevance to human biology, remains poorly described. Here we designed multi-well hydrogel plates with a high degree of physico-chemical uniformity to reliably address the molecular mechanism underlying cell state modification driven by physiological stiffness. Cell cycle, differentiation and metabolic activity could be studied in parallel assays, showing that the soft environment promotes an atypical S-phase quiescence and prevents cell drift, while preserving the differentiation capacities of human bronchoepithelial cells. These softness-sensitive responses are associated with calcium leakage from the endoplasmic reticulum (ER) and defects in proteostasis and enhanced basal ER stress. The analysis of available single cell data of the human lung also showed that this non-conventional state coming from the soft extracellular environment is indeed consistent with molecular feature of pulmonary basal cells. Overall, this study demonstrates that mechanical mimicry in 2D culture supports allows to maintain progenitor cells in a state of high physiological relevance for characterizing the molecular events that govern progenitor biology in human tissues.

Statement of significance

This study focuses on the molecular mechanism behind the progenitor state induced by a soft environment. Using innovative hydrogel supports mimicking normal human lung stiffness, the data presented demonstrate that lung mechanics prevent drift while preserving the differentiation capabilities of lung epithelial cells. Furthermore, we show that the cells are positioned in a quiescent state in the atypical S phase. Mechanistically, we demonstrate that this quiescence: i) is driven by calcium leakage from the endoplasmic reticulum (ER) and basal activation of the PERK branch of ER stress signalling, and ii) protects cells from lethal ER stress caused by metabolic stress. Finally, we validate using human single-cell data that these molecular features identified on the soft matrix are found in basal lung cells. Our results reveal original and relevant molecular mechanisms orchestrating cell fate in a soft environment and resistance to exogenous stresses, thus providing new fundamental and clinical insights into basal cell biology.

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来源期刊
Acta Biomaterialia
Acta Biomaterialia 工程技术-材料科学:生物材料
CiteScore
16.80
自引率
3.10%
发文量
776
审稿时长
30 days
期刊介绍: Acta Biomaterialia is a monthly peer-reviewed scientific journal published by Elsevier. The journal was established in January 2005. The editor-in-chief is W.R. Wagner (University of Pittsburgh). The journal covers research in biomaterials science, including the interrelationship of biomaterial structure and function from macroscale to nanoscale. Topical coverage includes biomedical and biocompatible materials.
期刊最新文献
Editorial Board Editorial Board Erratum to “Anti-fibrotic and anti-stricture effects of biodegradable biliary stents braided with dexamethasone-impregnated sheath/core structured monofilaments” [Acta Biomaterialia. Volume 178, 1 April 2024, Pages 137-146] Corrigendum to “Optimizing the cell compatibility and mechanical properties in TiZrNbTa medium-entropy alloy/β-Ti composites through phase transformation” [Acta Biomaterialia. Volume 181, June 2024, Pages 469-482] Association between neural stem/progenitor cells and biomaterials in spinal cord injury therapies: A systematic review and network meta-analysis
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