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间充质干/基质细胞的分化潜能受宫内生长受限的影响而改变。

Differentiation Potential of Mesenchymal Stem/Stromal Cells Is Altered by Intrauterine Growth Restriction.

作者信息

Weatherall Emma L, Avilkina Viktorija, Cortes-Araya Yennifer, Dan-Jumbo Susan, Stenhouse Claire, Donadeu Francesc X, Esteves Cristina L

机构信息

The Roslin Institute and The Royal (DICK) School of Veterinary Studies (R(D)SVS), The University of Edinburgh, Edinburgh, United Kingdom.

The Euan Macdonald Centre, The University of Edinburgh, Edinburgh, United Kingdom.

出版信息

Front Vet Sci. 2020 Nov 5;7:558905. doi: 10.3389/fvets.2020.558905. eCollection 2020.

Abstract

Consistency in clinical outcomes is key to the success of therapeutic Mesenchymal Stem/Stromal cells (MSCs) in regenerative medicine. MSCs are used to treat both humans and companion animals (horses, dogs, and cats). The properties of MSC preparations can vary significantly with factors including tissue of origin, donor age or health status. We studied the effects of developmental programming associated with intrauterine growth restriction (IUGR) on MSC properties, particularly related to multipotency. IUGR results from inadequate uterine capacity and placental insufficiency of multifactorial origin. Both companion animals (horses, dogs, cats) and livestock (pigs, sheep, cattle) can be affected by IUGR resulting in decreased body size and other associated changes that can include, alterations in musculoskeletal development and composition, and increased adiposity. Therefore, we hypothesized that this dysregulation occurs at the level of MSCs, with the cells from IUGR animals being more prone to differentiate into adipocytes and less to other lineages such as chondrocytes and osteocytes compared to those obtained from normal animals. IUGR has consequences on health and performance in adult life and in the case of farm animals, on meat quality. In humans, IUGR is linked to increased risk of metabolic (type 2 diabetes) and other diseases (cardiovascular), later in life. Here, we studied porcine MSCs where IUGR occurs spontaneously, and shows features that recapitulate human IUGR. We compared the properties of adipose-derived MSCs from IUGR (IUGR-MSCs) and Normal (Normal-MSCs) new-born pig littermates. Both MSC types grew clonally and expressed typical MSC markers (CD105, CD90, CD44) at similar levels. Importantly, tri-lineage differentiation capacity was significantly altered by IUGR. IUGR-MSCs had higher adipogenic capacity than Normal-MSCs as evidenced by higher adipocyte content and expression of the adipogenic transcripts, PPARγ and FABP4 ( < 0.05). A similar trend was observed for fibrogenesis, where, upon differentiation, IUGR-MSCs expressed significantly higher levels of COL1A1 ( < 0.03) than Normal-MSCs. In contrast, chondrogenic and osteogenic potential were decreased in IUGR-MSCs as shown by a smaller chondrocyte pellet and osteocyte staining, and lower expression of SOX9 ( < 0.05) and RUNX2 ( < 0.02), respectively. In conclusion, the regenerative potential of MSCs appears to be determined prenatally in IUGR and this should be taken into account when selecting cell donors in regenerative therapy programmes both in humans and companion animals.

摘要

临床结果的一致性是治疗性间充质干/基质细胞(MSCs)在再生医学中取得成功的关键。MSCs被用于治疗人类和伴侣动物(马、狗和猫)。MSCs制剂的特性会因多种因素而有显著差异,包括组织来源、供体年龄或健康状况。我们研究了与宫内生长受限(IUGR)相关的发育编程对MSCs特性的影响,特别是与多能性相关的影响。IUGR是由子宫容量不足和多因素起源的胎盘功能不全导致的。伴侣动物(马、狗、猫)和家畜(猪、羊、牛)都可能受到IUGR的影响,导致体型减小以及其他相关变化,这些变化可能包括肌肉骨骼发育和组成的改变以及肥胖增加。因此,我们假设这种失调发生在MSCs水平,与从正常动物获得的细胞相比,来自IUGR动物的细胞更容易分化为脂肪细胞,而较少分化为其他谱系,如软骨细胞和骨细胞。IUGR会对成年后的健康和性能产生影响,对于农场动物来说,还会影响肉质。在人类中,IUGR与后期生活中代谢性疾病(2型糖尿病)和其他疾病(心血管疾病)的风险增加有关。在这里,我们研究了自发发生IUGR并表现出与人类IUGR相似特征的猪MSCs。我们比较了来自IUGR(IUGR - MSCs)和正常(Normal - MSCs)新生仔猪同窝仔的脂肪来源MSCs的特性。两种MSCs类型均呈克隆生长,并以相似水平表达典型的MSCs标志物(CD105、CD90、CD44)。重要的是,IUGR显著改变了三系分化能力。IUGR - MSCs比Normal - MSCs具有更高的成脂能力,这通过更高的脂肪细胞含量和成脂转录本PPARγ和FABP4的表达得到证明(<0.05)。在纤维化方面也观察到类似趋势,在分化时,IUGR - MSCs表达的COL1A1水平明显高于Normal - MSCs(<0.03)。相比之下,IUGR - MSCs的软骨生成和骨生成潜力降低,表现为软骨细胞团块和骨细胞染色较小,以及SOX9(<0.05)和RUNX2(<0.02)的表达较低。总之,MSCs的再生潜力似乎在IUGR中由产前决定,在为人类和伴侣动物的再生治疗计划选择细胞供体时应考虑到这一点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8acb/7676910/dac9e32e1147/fvets-07-558905-g0001.jpg

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