Matrigel inhibits elongation and drives endoderm differentiation in aggregates of mouse embryonic stem cells.

IF 2.8 4区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Atoosa Amel, Rachel Brown, Alexa Rabeling, Mubeen Goolam
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引用次数: 0

Abstract

Modelling peri-implantation mammalian development using the self-organising properties of stem cells is a rapidly growing field that has advanced our understanding of cell fate decisions occurring in the early embryo. Matrigel, a basement membrane matrix, is a critical substrate used in various protocols for its efficacy in promoting stem cell growth and self-organisation. However, its role in driving stem cell lineage commitment, and whether this effect is driven by biochemical or physical cues, is not currently clear. Here, we grow embryoid bodies in suspension, Matrigel and agarose, an inert polysaccharide, to attempt to decouple the physical and biochemical roles of Matrigel and better understand how it drives stem cell differentiation. We use a combination of light microscopy, quantitative PCR and immunostaining to investigate gene and protein changes in our different culture conditions. We show that stem cell aggregates in Matrigel are hindered in their ability to elongate compared with those grown in agarose or in suspension, indicating that prohibitive role in self-organisation. Aggregates in Matrigel are also driven to differentiate into endoderm, with ectoderm differentiation inhibited. Furthermore, these effects are not due to the physical presence of Matrigel, as the same effects are not witnessed in aggregates grown in agarose. Our results thus indicate that Matrigel has a significant and complex effect on the differentiation and morphology of embryoid bodies.

基质抑制伸长和驱动内胚层分化聚集的小鼠胚胎干细胞。
利用干细胞的自组织特性来模拟哺乳动物的植入期发育是一个快速发展的领域,它提高了我们对早期胚胎中发生的细胞命运决定的理解。Matrigel是一种基底膜基质,因其促进干细胞生长和自组织的功效而被广泛应用于各种方案中。然而,它在驱动干细胞谱系承诺中的作用,以及这种作用是由生化还是物理线索驱动的,目前尚不清楚。在这里,我们在悬浮液中培养胚状体,Matrigel和琼脂糖(一种惰性多糖),试图解耦Matrigel的物理和生化作用,并更好地了解它如何驱动干细胞分化。我们使用光学显微镜、定量PCR和免疫染色相结合的方法来研究基因和蛋白质在不同培养条件下的变化。我们发现,与琼脂糖或悬浮液中生长的干细胞相比,基质中干细胞聚集体的伸长能力受到阻碍,这表明在自组织中起禁止作用。基质中的聚集体也会分化为内胚层,而外胚层的分化受到抑制。此外,这些影响不是由于Matrigel的物理存在,因为在琼脂糖中生长的聚集体中没有看到同样的影响。因此,我们的研究结果表明,Matrigel对胚状体的分化和形态有重要而复杂的影响。
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来源期刊
FEBS Open Bio
FEBS Open Bio BIOCHEMISTRY & MOLECULAR BIOLOGY-
CiteScore
5.10
自引率
0.00%
发文量
173
审稿时长
10 weeks
期刊介绍: FEBS Open Bio is an online-only open access journal for the rapid publication of research articles in molecular and cellular life sciences in both health and disease. The journal''s peer review process focuses on the technical soundness of papers, leaving the assessment of their impact and importance to the scientific community. FEBS Open Bio is owned by the Federation of European Biochemical Societies (FEBS), a not-for-profit organization, and is published on behalf of FEBS by FEBS Press and Wiley. Any income from the journal will be used to support scientists through fellowships, courses, travel grants, prizes and other FEBS initiatives.
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