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本文引用的文献

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Evaluation of an in vitro toxicogenetic mouse model for hepatotoxicity.体外毒遗传学小鼠模型用于肝毒性的评价。
Toxicol Appl Pharmacol. 2010 Dec 15;249(3):208-16. doi: 10.1016/j.taap.2010.09.012. Epub 2010 Sep 24.
2
Isolation and culture of adult mouse hepatocytes.成年小鼠肝细胞的分离与培养。
Methods Mol Biol. 2010;633:185-96. doi: 10.1007/978-1-59745-019-5_13.
3
Sandwich-cultured hepatocytes: an in vitro model to evaluate hepatobiliary transporter-based drug interactions and hepatotoxicity.夹心培养肝细胞:评估基于肝胆转运体的药物相互作用和肝毒性的体外模型。
Drug Metab Rev. 2010 Aug;42(3):446-71. doi: 10.3109/03602530903491881.
4
Perfused multiwell plate for 3D liver tissue engineering.灌注式多孔板用于 3D 肝脏组织工程。
Lab Chip. 2010 Jan 7;10(1):51-8. doi: 10.1039/b913221j. Epub 2009 Oct 22.
5
Influence of seeding density and extracellular matrix on bile Acid transport and mrp4 expression in sandwich-cultured mouse hepatocytes.在三明治培养的鼠原代肝细胞中,接种密度和细胞外基质对胆酸转运和 mrp4 表达的影响。
Mol Pharm. 2010 Apr 5;7(2):491-500. doi: 10.1021/mp900227a.
6
Oxygen-mediated enhancement of primary hepatocyte metabolism, functional polarization, gene expression, and drug clearance.氧介导的原代肝细胞代谢、功能极化、基因表达及药物清除的增强。
Proc Natl Acad Sci U S A. 2009 Sep 15;106(37):15714-9. doi: 10.1073/pnas.0906820106. Epub 2009 Aug 31.
7
Transformation and action of extracellular NAD+ in perfused rat and mouse livers.细胞外烟酰胺腺嘌呤二核苷酸(NAD+)在灌注大鼠和小鼠肝脏中的转化与作用
Acta Pharmacol Sin. 2009 Jan;30(1):90-7. doi: 10.1038/aps.2008.7. Epub 2008 Dec 15.
8
Switch from type II to I Fas/CD95 death signaling on in vitro culturing of primary hepatocytes.原代肝细胞体外培养时Fas/CD95死亡信号从II型向I型转换。
Hepatology. 2008 Dec;48(6):1942-53. doi: 10.1002/hep.22541.
9
An inducible autocrine cascade regulates rat hepatocyte proliferation and apoptosis responses to tumor necrosis factor-alpha.一种可诱导的自分泌级联反应调节大鼠肝细胞对肿瘤坏死因子-α的增殖和凋亡反应。
Hepatology. 2008 Jul;48(1):276-88. doi: 10.1002/hep.22335.
10
The influence of oxygen tension on the structure and function of isolated liver sinusoidal endothelial cells.氧张力对分离的肝窦内皮细胞结构和功能的影响。
Comp Hepatol. 2008 May 5;7:4. doi: 10.1186/1476-5926-7-4.

氧和基质共同调节原代小鼠肝细胞活力和功能。

Co-regulation of primary mouse hepatocyte viability and function by oxygen and matrix.

机构信息

Department of Biological Engineering, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Room 16-429, Cambridge, Massachusetts, 02139.

出版信息

Biotechnol Bioeng. 2014 May;111(5):1018-27. doi: 10.1002/bit.25152. Epub 2014 Jan 31.

DOI:10.1002/bit.25152
PMID:24222008
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4110975/
Abstract

Although oxygen and extracellular matrix cues both influence differentiation state and metabolic function of primary rat and human hepatocytes, relatively little is known about how these factors together regulate behaviors of primary mouse hepatocytes in culture. To determine the effects of pericellular oxygen tension on hepatocellular function, we employed two methods of altering oxygen concentration in the local cellular microenvironment of cells cultured in the presence or absence of an extracellular matrix (Matrigel) supplement. By systematically altering medium depth and gas phase oxygen tension, we created multiple oxygen regimes (hypoxic, normoxic, and hyperoxic) and measured the local oxygen concentrations in the pericellular environment using custom-designed oxygen microprobes. From these measurements of oxygen concentrations, we derived values of oxygen consumption rates under a spectrum of environmental contexts, thus providing the first reported estimates of these values for primary mouse hepatocytes. Oxygen tension and matrix microenvironment were found to synergistically regulate hepatocellular survival and function as assessed using quantitative image analysis for cells stained with vital dyes, and assessment of secretion of albumin. Hepatocellular viability was affected only at strongly hypoxic conditions. Surprisingly, albumin secretion rates were greatest at a moderately supra-physiological oxygen concentration, and this effect was mitigated at still greater supra-physiological concentrations. Matrigel enhanced the effects of oxygen on retention of function. This study underscores the importance of carefully controlling cell density, medium depth, and gas phase oxygen, as the effects of these parameters on local pericellular oxygen tension and subsequent hepatocellular function are profound.

摘要

尽管氧气和细胞外基质线索都影响原代大鼠和人肝细胞的分化状态和代谢功能,但对于这些因素如何共同调节原代小鼠肝细胞在培养中的行为,我们知之甚少。为了确定细胞周围氧张力对肝细胞功能的影响,我们采用了两种方法来改变细胞外基质(Matrigel)补充存在或不存在时细胞局部细胞微环境中的氧浓度。通过系统地改变培养基深度和气相氧张力,我们创建了多个氧状态(缺氧、正常氧和高氧),并使用定制的氧微探针测量细胞周围环境中的局部氧浓度。从这些氧浓度测量值中,我们推导出了在一系列环境背景下的氧消耗率值,从而首次报道了原代小鼠肝细胞的这些值的估计值。发现氧张力和基质微环境协同调节肝细胞的存活和功能,方法是使用对用活染料染色的细胞进行定量图像分析,以及评估白蛋白的分泌。只有在强烈的低氧条件下才会影响肝细胞活力。令人惊讶的是,白蛋白分泌率在略高于生理的氧浓度下最高,而在更高的超生理浓度下,这种作用会减轻。Matrigel 增强了氧对功能保留的影响。这项研究强调了仔细控制细胞密度、培养基深度和气相氧的重要性,因为这些参数对局部细胞周围氧张力和随后的肝细胞功能的影响非常大。