» Articles » PMID: 26420037

Comparison of Capability of Human Bone Marrow Mesenchymal Stem Cells and Endometrial Stem Cells to Differentiate into Motor Neurons on Electrospun Poly(ε-caprolactone) Scaffold

Overview
Journal Mol Neurobiol
Date 2015 Oct 1
PMID 26420037
Citations 25
Authors
Affiliations
Soon will be listed here.
Abstract

Human endometrial and bone marrow-derived mesenchymal stem cells can be differentiated into a number of cell lineages. Mesenchymal stem cells (MSCs) are potential candidates for cellular therapy. The differentiation of human bone marrow MSCs (hBM-MSCs) and endometrial stem cells (hEnSCs) into motor neuron-like cells has been rarely investigated previously; however, the comparison between these stem cells when they are differentiated into motor neuron-like cell is yet to be studied. The aim of this study was therefore to investigate and compare the capability of hBM-MSCs and hEnSCs cultured on tissue culture polystyrene (TCP) and poly ε-caprolactone (PCL) nanofibrous scaffold to differentiate into motor neuron-like cells in the presence of neural inductive molecules. Engineered hBM-MSCs and hEnSCs seeded on PCL nanofibrous scaffold were differentiated into beta-tubulin III, islet-1, Neurofilament-H (NF-H), HB9, Pax6, and choactase-positive motor neurons by immunostaining and real-time PCR, in response to the signaling molecules. The data obtained from PCR and immunostaining showed that the expression of motor neuron markers of both hBM-MSCs and hEnSCs differentiated cells on PCL scaffold are significantly higher than that of the control group. The expression of these markers in hEnSCs differentiated cells was higher than that in hBM-MSCs. However, this difference was not statistically significant. In conclusion, differentiated hBM-MSCs and hEnSCs on PCL can provide a suitable three-dimensional situation for neuronal survival and outgrowth for regeneration of the central nervous system. Both cells may be potential candidates for cellular therapy in motor neuron disorders. However, differentiation of hEnSCs into motor neuron-like cells was better than hBM-MSCs.

Citing Articles

Human Endometrial Regenerative Cells for Neurological Disorders: Hype or Hope?.

Momeni J, Naserzadeh E, Sepehrinezhad A, Ashayeri Ahmadabad R, Negah S Int J Stem Cells. 2024; 17(3):224-235.

PMID: 38185531 PMC: 11361851. DOI: 10.15283/ijsc23091.


Advances in Management of Spinal Cord Injury Using Stem Cell-derived Extracellular Vesicles: A Review Study.

Afsartala Z, Hadjighassem M, Shirian S, Ebrahimi-Barough S, Gholami L, Hussain M Basic Clin Neurosci. 2023; 14(4):443-451.

PMID: 38050575 PMC: 10693808. DOI: 10.32598/bcn.2022.3430.2.


Sustained release of valproic acid loaded on chitosan nanoparticles within hybrid of alginate/chitosan hydrogel with/without stem cells in regeneration of spinal cord injury.

Jafarimanesh M, Ai J, Shojaei S, Khonakdar H, Darbemamieh G, Shirian S Prog Biomater. 2023; 12(2):75-86.

PMID: 36652161 PMC: 10154445. DOI: 10.1007/s40204-022-00209-3.


Human fetal membrane-mesenchymal stromal cells generate functional spinal motor neurons .

Gaggi G, Di Credico A, Guarnieri S, Mariggio M, Ballerini P, Di Baldassarre A iScience. 2022; 25(10):105197.

PMID: 36238899 PMC: 9550654. DOI: 10.1016/j.isci.2022.105197.


The Fingerprints of Biomedical Science in Internal Medicine.

Arjmand B, Alavi-Moghadam S, Sarvari M, Tayanloo-Beik A, Aghayan H, Mehrdad N Adv Exp Med Biol. 2022; 1401:173-189.

PMID: 35856133 DOI: 10.1007/5584_2022_729.


References
1.
Gargett C, Nguyen H, Ye L . Endometrial regeneration and endometrial stem/progenitor cells. Rev Endocr Metab Disord. 2012; 13(4):235-51. DOI: 10.1007/s11154-012-9221-9. View

2.
Abbott A . Cell culture: biology's new dimension. Nature. 2003; 424(6951):870-2. DOI: 10.1038/424870a. View

3.
Cai C, Grabel L . Directing the differentiation of embryonic stem cells to neural stem cells. Dev Dyn. 2007; 236(12):3255-66. DOI: 10.1002/dvdy.21306. View

4.
Gu W, Zhang F, Xue Q, Ma Z, Lu P, Yu B . Transplantation of bone marrow mesenchymal stem cells reduces lesion volume and induces axonal regrowth of injured spinal cord. Neuropathology. 2009; 30(3):205-17. DOI: 10.1111/j.1440-1789.2009.01063.x. View

5.
Lee J, Bashur C, Goldstein A, Schmidt C . Polypyrrole-coated electrospun PLGA nanofibers for neural tissue applications. Biomaterials. 2009; 30(26):4325-35. PMC: 2713816. DOI: 10.1016/j.biomaterials.2009.04.042. View