| Literature DB >> 31875078 |
Negar Varaa1, Saeed Azandeh2, Zahra Khodabandeh3, Anneh Mohammad Gharravi4.
Abstract
There are several differentiation methods for mesenchymal stem cells (MSCs) into hepatocyte-like cell. Investigators reported various hepatic differentiation protocols such as modifying culturing conditions or using various growth factors/cytokines. In this literature review, we compared different MSCs extraction and isolation protocols from Wharton's jelly (WJ) and explored various MSCs differentiation methods. Various protocols have been recommended for MSCs isolated from WJ, such as enzymatic, enzymatic-explant, and explant methods. In the explant method, valuable time is wasted, but the cost and biological contaminations are reduced and the number of isolated cells is high. However, other features, such as immune phenotype and multiline-age differentiation capacity, do not differ from other methods. There are also several differentiation methods for hepatocyte-like cell including the induction of MSC by cytokines and growth factors, and the differentiation of MSC in 2- and 3-dimensional matrix (2D and 3D). Among several cytokines, hepatocyte growth factor (HGF) and fibroblast growth factor (FGF) are essential. In the early stage of the differentiation, 2D culture is useful, and in the development stage, 3D culture system with HGF and FGF cytokines are more effective in the process of differentiation. Some studies have used 3D culture system in biocompatible scaffolds, such as alginate, collagen, gelatin, and peptide-Gly-Leu-amide (PGLA). In conclusion, Wharton's jelly-Mesenchymal stem cells (WJ-MSCs) can be considered as an appropriate source for hepatocyte differentiation. Moreover, we introduced the explant method as the most effective protocol. This review attempted to highlight factors in hepatocyte differentiation, but the most effective protocol is not still unknown. Copyright: © Shiraz University of Medical Sciences.Entities:
Keywords: Mesenchymal stromal cells ; Umbilical cord ; Wharton jelly ; hepatocytes; Cell differentiation
Year: 2019 PMID: 31875078 PMCID: PMC6885715 DOI: 10.30476/ijms.2019.44952
Source DB: PubMed Journal: Iran J Med Sci ISSN: 0253-0716
Comparison between different MSCs isolation methods
| MSCs isolation methods | Advantage | Disadvantage |
|---|---|---|
| Enzymatic procedure | -Can use the total length of the cord and MSC isolation from the three recognized compartments or can use some parts of UC[ | -Proteolytic stress on cells |
| -Leads to an increase in stem cell yield without time-consuming producers[ | -Increased price and | |
| -Isolation protocol within 3 hrs.[ | -High risk of biological contaminations[ | |
| Explants procedure | -High proliferation rate | -Explant pieces floating[ |
| -Higher numbers of homogeneous cell | -The time need to isolate cells is loner[ | |
| -The price and biological contaminations are reduced[ | ||
| -no proteolytic stress on cells | ||
| Mixed enzymatic-explant digestion | -Shorter time need to isolate MSCs from tissue | -There are proteolytic stress on cells but is less than an enzymatic method |
| -High amounts of homogeneous cell.[ | -Price for enzymatic digestion also exists | |
| -MSCs viability up to 90 % after cryopreservation.[ | -High risk of biological contaminations33 |
In vitro protocols of MSCs isolation and differentiation in- to-hepatocyte-like cells
| Isolation of MSCs | Induction growth factors | Methods of hepatic differentiation | Culture (2D/3D) | References |
|---|---|---|---|---|
| Enzymatic | Animal model In vivo differentiation | Animal model In vivo differentiation | 3D In-vivo | Chen et al. 2016[ |
| Result :Transplanted hUCMSCs into hepatectomized rats differentiated into hepatocyte-like cells | ||||
| Enzymatic | EGF and bFGF, HGF, bFGF and nicotinamide, Dex, ITS premix and OSM | 3 steps protocol | 2D | Lee, et al. 2012[ |
| Result :Potential for hepatogenic differentiation of placenta-derived stem cells (PDSCs) containing WJ | ||||
| Explant | HGF,FGF-4,OSM, Dex 2 | 2 steps protocol | 2D | Esmaeli 2014[ |
| Result: Shift in the fatty acid profile during the hepatocyte differentiation | ||||
| Enzymatic | EGF, bFGF (2 days) HGF, bFGF (10 days) nicotinamide, ITS (10 days) | Sequential 3 steps | 2D | Campard, et al. 200831 |
| Result: Human MSCs can be considered as a source with hepatogenic potential | ||||
| Explant | bFGF, EGF, | Cocktail | 3D | Su et al. 2014[ |
| Result: Poly (3-hydroxybutyrate-co-3-hydroxyvalerate-co-3-hydroxyhexanoate) scaffolds loaded with UC-MSCs or differentiated UC-MSCs promoted the recovery of injured livers | ||||
| Enzymatic | DMEM/F-12 medium with HGF, EGF, ITS, Dex, OSM | 2 steps protocol | 2D | Zhou et al. 2014[ |
| Result: Stimulation of host hepatocyte regeneration via hUCMSCs | ||||
| Explant | 40 ng/mL HGF And 10 ng/mL FGF-4 | Cocktail | 2D | Zhang et al. 2009[ |
| Result: UC-MSC can differentiate into functional hepatocyte-like cells and have advantages over BM-MSC | ||||
| Explant | EGF and FGF4, HGF, FGF4, Dex, ITS and OSM | 2 steps protocol | 3D | Chitrangi et al. 2017[ |
| Result: gelatin-vinyl acetate scaffold enhanced differentiation of UC-MSCs to hepatocyte-like cells | ||||
| Ex-vivo | - | Ex vivo | - | Gomez-Aristizabl and Davies 2012[ |
| Result: Human UC perivascular Cells (hucpvcs) can act as stromal cells for rat hepatocytes, | ||||
| Explant | 10 ng/mL HGF, 10 ng/mL FGF4 | Cocktail | 2D | Ewida, et al. 2016[ |
| Result: hMSCs can differentiate in vitro into functional hLCs (hepatocyte-like stem cells) in a liver fibrosis rat model | ||||
| Explant | Liver homogenate supernatants (LHS) | Cocktail | 2D | Xue, et al. 2016[ |
| Result: Liver tissue microenvironment may contribute to the differentiation of hUCMSCs into hepatocytes both in vitro and in vivo | ||||
| Enzymatic | Dex, EGF, HGF, ITS and OSM | 2-step (for 2 weeks) | 2D | Liang, et al. 2012[ |
| Result: Extending hUCMSCs replicative lifespan without influencing hepatogenic differentiation potential via telomerization of hUCMSCs by human telomerase reverse transcriptase (HTERT) | ||||
| Explant | FGF-4 and HGF(14 days) HGF, ITS, oncostatin and Dex. (14 days) | Sequential 2 steps | 3D | Raut, and Khanna 2016[ |
| Result: improved expression of hepatocyte-specific miRNAs, miR-23b cluster (miR-27b-3p, miR-24-1-5p and miR-23b-3p), miR-30a-5p, miR-26a-5p, miR-148a-3p, miR-192-5p, miR-122-5p due to VPA pre-treatment | ||||
| Explant | ITS, HGF, OSM, Dex (15 days). | Cocktail | 2D | An, et al. 2014[ |
| Result: The lineage conversion of hUCMSCs to hepatic cell fate by upregulating the expression of endodermal genes through AKT and ERK activation by valproic acid (VPA) | ||||
| Explant | EGF, bFGF, HGF, bFGF nicotinamide, OSM, ITS | 2 steps protocol | 2D | Zheng, et al. 2015[ |
| Result: Oncostatin M (OSM) acts an important role in hepatogenic differentiation. | ||||
| Explant | HGF, infection with a lentivirus containing a miRNA inhibitor sequence | Cocktail | 2D | Cui, et al. 2013[ |
| Result: The capability of miRNAS to converting hMSCs to a hepatocyte phenotype in vitro | ||||
| Explant | IGF-I, HGF and Dex OSM up to 23 days | 2 steps | 3D cell aggregate | Talaei-Khozani, et al. 2015[ |
| Result: Facilitating hepatocyte differentiation may be by the UCMSCs aggregate formation before administration of the differentiation protocols | ||||
HGF: hepatocyte growth factor; bFGF: basic fibroblast growth factor; OSM: Oncostatin M; Dex: dexamethasone; EGF: epidermal growth factor; ITS: insulin-transferrin-selenium; IGF: insulin-like growth factor; TGF: transforming growth factor; DMEM: Dulbecco’s Modified Eagle’s Medium
Figure1The figure depicts the in vitro protocols of MSCs differentiation into hepatocyte-like cells