基于内皮细胞的工程共培养模型系统的物理和生物学进展

IF 6.2 2区 生物学 Q1 CELL BIOLOGY Seminars in cell & developmental biology Pub Date : 2023-09-30 DOI:10.1016/j.semcdb.2023.01.012
Claudia Tanja Mierke
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引用次数: 3

摘要

细胞生物学和机械生物学领域的科学知识在很大程度上依赖于基于细胞的体外实验和模型,这些实验和模型有助于检查和理解各种环境中的某些生物过程和事件。细胞培养测定是一种非常宝贵的仪器,用于广泛的生物医学和生物物理研究。实验模型在简单性、再现性和与其他方法的可组合性方面的质量,特别是它们描述天然组织中细胞命运的规模,对于提高理解组织和器官中细胞-细胞和细胞-基质相互作用的知识至关重要。通常,体外模型以哺乳动物细胞的实验修补为中心,通常在平面二维(2D)材料上作为单层培养。尽管平面生物学模型已经取得了重大进展和许多发现,但由于简单的2D设置不能再现自然活组织中细胞的生理反应,它们在产生进一步的新生物学理解方面的有用性受到了限制。此外,2D炖煮中的共培养系统弱地反映了其组织和器官的自然环境。3D细胞生物学和基质工程的重大进展导致了一种新型细胞培养形状的创建和建立,这种形状更准确地代表了体内微环境,并允许以仿生方法分析细胞及其相互作用。当代生物医学和生物物理科学在技术上取得了新的进展,允许为组织工程设计更具挑战性和弹性的体外模型,特别关注基于支架或水凝胶的形式、器官型培养和芯片上器官,这些都涵盖了共培养的目的。即使是这些复杂的系统也必须尽可能地简化,以便过于精确地掌握生理学的特定部分。特别值得一提的是,它们架起了传统动物研究和人类(病理)生理学之间的桥梁。在这篇综述中,介绍了3D仿生培养的最新进展,特别关注共同培养,重点是癌症研究中的技术构建块和基于内皮的共同培养模型,这些模型可用于开发正常和患病条件下更具生理学相关性的人体组织体外模型。通过各种生理和疾病模型的应用和样本,有可能确定必须解决的前沿和未来参与问题,以将合成仿生培养系统更成功地集成到生物医学和生物物理研究中。
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Physical and biological advances in endothelial cell-based engineered co-culture model systems

Scientific knowledge in the field of cell biology and mechanobiology heavily leans on cell-based in vitro experiments and models that favor the examination and comprehension of certain biological processes and occurrences across a variety of environments. Cell culture assays are an invaluable instrument for a vast spectrum of biomedical and biophysical investigations. The quality of experimental models in terms of simplicity, reproducibility, and combinability with other methods, and in particular the scale at which they depict cell fate in native tissues, is critical to advancing the knowledge of the comprehension of cell-cell and cell-matrix interactions in tissues and organs. Typically, in vitro models are centered on the experimental tinkering of mammalian cells, most often cultured as monolayers on planar, two-dimensional (2D) materials. Notwithstanding the significant advances and numerous findings that have been accomplished with flat biology models, their usefulness for generating further new biological understanding is constrained because the simple 2D setting does not reproduce the physiological response of cells in natural living tissues. In addition, the co-culture systems in a 2D stetting weakly mirror their natural environment of tissues and organs. Significant advances in 3D cell biology and matrix engineering have resulted in the creation and establishment of a new type of cell culture shapes that more accurately represents the in vivo microenvironment and allows cells and their interactions to be analyzed in a biomimetic approach. Contemporary biomedical and biophysical science has novel advances in technology that permit the design of more challenging and resilient in vitro models for tissue engineering, with a particular focus on scaffold- or hydrogel-based formats, organotypic cultures, and organs-on-chips, which cover the purposes of co-cultures. Even these complex systems must be kept as simplified as possible in order to grasp a particular section of physiology too very precisely. In particular, it is highly appreciated that they bridge the space between conventional animal research and human (patho)physiology. In this review, the recent progress in 3D biomimetic culturation is presented with a special focus on co-cultures, with an emphasis on the technological building blocks and endothelium-based co-culture models in cancer research that are available for the development of more physiologically relevant in vitro models of human tissues under normal and diseased conditions. Through applications and samples of various physiological and disease models, it is possible to identify the frontiers and future engagement issues that will have to be tackled to integrate synthetic biomimetic culture systems far more successfully into biomedical and biophysical investigations.

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来源期刊
CiteScore
15.10
自引率
1.40%
发文量
310
审稿时长
9.1 weeks
期刊介绍: Seminars in Cell and Developmental Biology is a review journal dedicated to keeping scientists informed of developments in the field of molecular cell and developmental biology, on a topic by topic basis. Each issue is thematic in approach, devoted to an important topic of interest to cell and developmental biologists, focusing on the latest advances and their specific implications. The aim of each issue is to provide a coordinated, readable, and lively review of a selected area, published rapidly to ensure currency.
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