[1]
Calvin SE, Oyen ML. Microstructure and mechanics of the chorioamnion membrane with an emphasis on fracture propertiesAnn N Y Acad Sci 2007; 1101: 166e85
[2]
Pipino C, Pierdomenico L, Di Tomo P, et al. Molecular and phenotypic characterization of human amniotic fluid-derived cells: A morphological and proteomic approach. Stem Cells Dev 2015; 24(12): 1415-28.
[3]
Savickiene J, Treigyte G, Baronaite S, et al. Human amniotic fluid mesenchymal stem cells from second- and third-trimester amniocentesis: Differentiation potential, molecular signature, and proteome analysis. Stem Cells Int 2015; 2015: 319238.
[4]
Roubelakis MG, Trohatou O, Anagnou NP. Amniotic fluid and amniotic membrane stem cells: Marker discovery. Stem Cells Int 2012; 2012: 107836.
[5]
Eslaminejad MB, Jahangir S. Amniotic fluid stem cells and their application in cell-based tissue regeneration. Int J Fertil Steril 2012; 6: 147-56.
[6]
Moraghebi R, Kirkeby A, Chaves P, et al. Term amniotic fluid: An unexploited reserve of mesenchymal stromal cells for reprogramming and potential cell therapy applications. Stem Cell Res Ther 2017; 8(1): 190.
[7]
Bitsika V, Roubelakis MG, Zagoura D, et al. Human amniotic fluid-derived mesenchymal stem cells as therapeutic vehicles: A novel approach for the treatment of bladder cancer. Stem Cells Dev 2012; 21(7): 1097-111.
[8]
Tsai MS, Lee JL, Chang YJ, Hwang SM. Isolation of human multipotent mesenchymal stem cells from second-trimester amniotic fluid using a novel two-stage culture protocol. Hum Reprod 2004; 19(6): 1450-6.
[9]
Steigman SA, Fauza DO. Isolation of mesenchymal stem cells from amniotic fluid and placentaCurr Protoc Stem Cell Biol 2007;
Chapter 1: Unit 1E2.
[10]
In ’t Anker PS, Scherjon SA, Kleijburg-van der Keur C, et al. Isolation of mesenchymal stem cells of fetal or maternal origin from human placenta. Stem Cells 2004; 22: 1338-45.
[11]
Schmidt D, Achermann J, Odermatt B, et al. Prenatally fabricated autologous human living heart valves based on amniotic fluid derived progenitor cells as single cell source. Circulation 2007; 116(11)(Suppl.): I64-70.
[12]
Cananzi M, De Coppi P. CD117(+) amniotic fluid stem cells: state of the art and future perspectives. Organogenesis 2012; 8: 77-88.
[13]
De Coppi P, Bartsch G Jr, Siddiqui MM, et al. Isolation of amniotic stem cell lines with potential for therapy. Nat Biotechnol 2007; 25: 100-6.
[14]
Chen Z, Chan MK, Steichenko N, et al. Heterogeneity of stem cells in human amniotic fluid. J Regen Med 2014; 3: 1-8.
[15]
Savickienė J, Matuzevičius D, Baronaitė S, et al. Histone modifications pattern associated with a state of mesenchymal stem cell cultures derived from amniotic fluid of normal and fetus-affected gestations. J Cell Biochem 2017; 118(11): 3744-55.
[16]
Spitzhorn LS, Rahman MS, Schwindt L, et al. Isolation and molecular characterization of amniotic fluid-derived mesenchymal stem cells obtained from caesarean sections. Stem Cells Int 2017; 2017: 5932706.
[17]
Moschidou D, Mukherjee S, Blundell MP, et al. Valproic acid confers functional pluripotency to human amniotic fluid stem cells in a transgene-free approach Mol Ther 2012; 20: 1953e67
[18]
You Q, Cai L, Zheng J, et al. Isolation of human mesenchymal stem cells from third-trimester amniotic fluid Int J Gynaecol Obstet
2008; 103: 149e52
[19]
Roubelakis MG, Pappa KI, Bitsika V, et al. Molecular and proteomic characterization of human mesenchymal stem cells derived from amniotic fluid: comparison to bone marrow mesenchymal stem cellsStem Cells Dev 2007; 16(6): 931e52
[20]
Zimmermann S, Voss M, Kaiser S, et al. Lack of telomerase activity in human mesenchymal stem cells. Leuk Off J Leuk Soc Am Leuk Res Fund UK 2003; 17(6): 1146-9.
[21]
Roubelakis MG, Bitsika V, Zagoura D, et al. In vitro and in vivo properties of distinct populations of amniotic fluid mesenchymal progenitor cells. J Cell Mol Med 2011; 15(9): 1896-913.
[22]
Chen Z, Jadhav A, Wang F, Perle M, Basch RK, Young B. Senescence and longevity in amniotic fluid derived cells. Stem Cell Discovery 2013; 3: 47-55.
[23]
Carraro G, Perin L, Sedrakyan S, et al. Human amniotic fluid stem cells can integrate and differentiate into epithelial lung lineages. Stem Cells 2008; 26(11): 2902-11.
[24]
Moorefield EC, McKee EE, Solchaga L, et al. Cloned, CD117 selected human amniotic fluid stem cells are capable of modulating the immune response. PLoS One 2011; 6: e26535.
[25]
Moschidou D, Mukherjee S, Blundell MP, et al. Human mid-trimester amniotic fluid stem cells cultured under embryonicstem cell conditions with valproic acid acquire pluripotent characteristicsStem Cells Dev 2013; 22: 444e58
[26]
Joerger-Messerli MS, Marx C, Oppliger B, Mueller M, Surbek DV, Schoeberlein A. Mesenchymal stem cells from wharton’s jelly and amniotic fluid. Best Pract Res Clin Obstet Gynaecol 2016; 31: 30-44.
[27]
Kim J, Lee Y, Kim H, et al. Human amniotic fluid-derived stem cells have characteristics of multipotent stem cells. Cell Prolif 2007; 40: 75-90.
[28]
Prusa AR, Marton E, Rosner M, Bernaschek G, Hengstschlager M. Oct-4-expressing cells in human amniotic fluid: A new source for stem cell research? Hum Reprod 2003; 18(7): 1489-93.
[29]
Klemmt PA, Vafaizadeh V, Groner B. The potential of amniotic fluid stem cells for cellular therapy and tissue engineering. Expert Opin Biol Ther 2011; 11: 1297-314.
[30]
Perin L, Sedrakyan S, Giuliani S, et al. Protective effect of human amniotic fluid stem cells in an immunodeficient mouse model of acute tubular necrosis. PLoS One 2010; 5: e9357.
[31]
Murphy S, Atala A. Amniotic Fluid Stem Cells. In: Cetrulo KJ,
Cetrulo CL Jr, Taghizadeh RR, Ed.: Perinatal Stem Cells. New
Jerseys Wiley-Blackwell 2013; pp. 1-15
[32]
Zhou J, Wang D, Liang T, Guo Q, Zhang G. Amniotic fluid-derived mesenchymal stem cells: Characteristics and therapeutic applications. Arch Gynecol Obstet 2014; 290(2): 223-31.
[33]
Kunisaki SM, Freedman DA, Fauza DO. Fetal tracheal reconstruction
with cartilaginous grafts engineered from mesenchymal amniocytes.
J Pediatr Surg 2006; 41(4): 675e82.
[34]
Gray FL, Turner CG, Ahmed A, et al. Prenatal tracheal reconstruction
with a hybrid amniotic mesenchymal stem cellsengineered
construct derived from decellularized airway. J Pediatr Surg 2012;
47(6): 1072e9.
[35]
Kunisaki SM, Jennings RW, Fauza DO. Fetal cartilage engineering from amniotic mesenchymal progenitor cellsStem Cells Dev
2006; 15(2): 245e53
[36]
Steigman SA, Ahmed A, Shanti RM, et al. Sternal repair with bone
grafts engineered from amniotic mesenchymal stem cells. J Pediatr
Surg 2009; 44(6): 1120e6.
[37]
Turner CG, Klein JD, Gray FL, et al. Craniofacial repair with fetal
bone grafts engineered from amniotic mesenchymal stem cells. J
Surg Res 2012; 178(2): 785e90
[38]
Zheng YB, Gao ZL, Xie C, et al. Characterization and hepatogenic differentiation of mesenchymal stem cells from human amniotic fluid and human bone marrow: A comparative study. Cell Biol Int 2008; 32: 1439-48.
[39]
Li Y, Xu W, Yan J, et al. Differentiation of human amniotic fluid-derived mesenchymal stem cells into type II alveolar epithelial cells in vitro. Int J Mol Med 2014; 33(6): 1507-13.
[40]
Mu XP, Ren LQ, Yan HW, et al. Enhanced differentiation of human amniotic fluid-derived stem cells into insulin-producing cells in vitro. J Diabetes Investig 2017; 8(1): 34-43.
[41]
Lai D, Wang F, Chen Y, Wang L, Wang Y, Cheng W. Human amniotic fluid stem cells have a potential to recover ovarian function in mice with chemotherapy-induced sterility. BMC Dev Biol 2013; 13: 34.
[42]
Cipriani S, Bonini D, Marchina E, et al. Mesenchymal cells from human amniotic fluid survive and migrate after transplantation into adult rat brain. Cell Biol Int 2007; 31(8): 845-50.
[43]
Deng J, Petersen BE, Steindler DA, Jorgensen ML, Laywell ED. Mesenchymal stem cells spontaneously express neural proteins in culture and are neurogenic after transplantation. Stem Cells 2006; 24(4): 1054-64.
[44]
Yan ZJ, Hu YQ, Zhang HT, et al. Comparison of the neural differentiation potential of human mesenchymal stem cells from amniotic fluid and adult bone marrow. Cell Mol Neurobiol 2013; 33(4): 465-75.
[45]
Thangnipon W, Puangmalai N, Suwanna N, et al. Potential role of N-benzylcinnamide in inducing neuronal differentiation from human amniotic fluid mesenchymal stem cells. Neurosci Lett 2016; 610: 6-12.
[46]
Soler R, Fullhase C, Hanson A, et al. Stem cell therapy ameliorates
bladder dysfunction in an animal model of Parkinson disease. J
Urol 2012; 187: 1491e7.
[47]
Pan HC, Yang DY, Chiu YT, et al. Enhanced regeneration in injured
sciatic nerve by human amniotic mesenchymal stem cell. J
Clin Neurosci 2006; 13(5): 570e5.
[48]
Yang DY, Sheu ML, Su HL, et al. Dual regeneration of muscle and
nerve by intravenous administration of human amniotic fluidderived
mesenchymal stem cells regulated by stromal cell-derived
factor-1alpha in a sciatic nerve injury model. J Neurosurg 2012;
116(6): 1357e67.
[49]
Mohammadian F, Eatemadi A, Daraee H. Application of stem cell for the regeneration of spiral ganglion neurons. Cell Mol Biol(Noisy-le-grand) 2017; 63(1): 6-12.
[50]
Jindal H, Bhatt B, Sk S, Singh Malik J. Alzheimer disease immunotherapeutics: Then and now. Hum Vaccin Immunother 2014; 10(9): 2741-3.
[51]
Jiang P, Dickson DW. Parkinson’s disease: Experimental models and reality. Acta Neuropathol 2018; 135(1): 13-32.
[52]
Chang YJ, Ho TY, Wu ML, et al. Amniotic fluid stem cells with low gamma-interferon response showed behavioral improvement in Parkinsonism rat model. PLoS One 2013; 8: e76118.
[53]
Pan HC, Cheng FC, Chen CJ, et al. Post-injury regeneration in rat
sciatic nerve facilitated by neurotrophic factors secreted by amniotic
fluid mesenchymal stem cells. J Clin Neurosci 2007; 14(11):
1089e98.
[54]
Dionigi B, Ahmed A, Brazzo J 3rd, et al. Partial or complete coverage
of experimental spina bifida by simple intraamniotic injection
of concentrated amniotic mesenchymal stem cells. J Pediatr Surg
2015; 50: 69e73
[55]
Liu H, Liu DQ, Li BW, et al. Human amniotic fluid-derived stem cells can differentiate into hepatocyte-like cells in vitro and in vivo. In Vitro Cell Dev Biol Anim 2011; 47: 601-8.
[56]
Zagoura DS, Roubelakis MG, Bitsika V, et al. Therapeutic potential of a distinct population of human amniotic fluid mesenchymal stem cells and their secreted molecules in mice with acute hepatic failure. Gut 2012; 61(6): 894-906.
[57]
Volarevic V, Al-Qahtani A, Arsenijevic N, Pajovic S, Lukic ML. Interleukin-1 receptor antagonist (IL-1Ra) and IL-1Ra producing mesenchymal stem cells as modulators of diabetogenesis. Autoimmunity 2010; 43(4): 255-63.
[58]
Zheng YB, Zhang XH, Huang ZL, et al. Amniotic-fluid-derived mesenchymal stem cells overexpressing interleukin-1 receptor antagonist improve fulminant hepatic failure. PLoS One 2012; 7(7): e41392.
[59]
Li Y, Gu C, Xu W, et al. Therapeutic effects of amniotic fluid-derived mesenchymal stromal cells on lung injury in rats with emphysema. Respir Res 2014; 15: 120.
[60]
Vadasz S, Jensen T, Moncada C, et al. Second and third trimester
amniotic fluid mesenchymal stem cells can repopulate a decellularized
lung scaffold and express lung markers. J Pediatr Surg
2014; 49(11): 1554e63
[61]
Liu C, Wu H. From Beta cell replacement to beta cell regeneration: Implications for antidiabetic therapy. J Diabetes Sci Technol 2014; 8(6): 1221-6.
[62]
Mu XP, Ren LQ, Yan HW, et al. Enhanced differentiation of human amniotic fluid-derived stem cells into insulin-producing cells in vitro. J Diabetes Investig 2017; 8(1): 34-43.
[63]
Kuhn EN, Wu SM. Origin of cardiac progenitor cells in the developing and postnatal heart. J Cell Physiol 2010; 225(2): 321-5.
[64]
Zhao P, Ise H, Hongo M, Ota M, Konishi I, Nikaido T. Human amniotic mesenchymal cells have some characteristics of cardiomyocytes. Transplantation 2005; 79(5): 528-35.
[65]
Iop L, Chiavegato A, Callegari A, et al. Different cardiovascular potential of adult- and fetal-type mesenchymal stem cells in a rat model of heart cryoinjury. Cell Transplant 2008; 17(6): 679-94.
[66]
Di Trapani M, Bassi G, Ricciardi M, et al. Comparative study of immune regulatory properties of stem cells derived from different tissues Stem Cells Dev 2013; 22: 2990e3002
[67]
Kode JA, Mukherjee S, Joglekar MV, et al. Mesenchymal stem cells: immunobiology and role in immunomodulation and tissue regenerationCytotherapy 2009; 11: 377e91
[68]
Ren G, Zhao X, Zhang L, et al. Inflammatory cytokine-induced intercellular adhesion molecule-1 and vascular cell adhesion molecule-1 in mesenchymal stem cells are critical for immunosuppression. J Immunol 2010; 184(5): 2321-8.
[69]
Mareschi K, Castiglia S, Sanavio F, et al. Immunoregulatory effects on T lymphocytes by human mesenchymal stromal cells isolated from bone marrow, amniotic fluid, and placenta. Exp Hematol 2016; 44(2): 138-50.
[70]
Bright JJ, Kerr LD, Sriram S. TGF-beta inhibits IL-2-induced tyrosine phosphorylation and activation of Jak-1 and Stat 5 in T lymphocytes. J Immunol 1997; 159(1): 175-83.
[71]
Di Nicola M, Carlo-Stella C, Magni M, et al. Human bone marrow stromal cells suppress T-lymphocyte proliferation induced by cellular or nonspecific mitogenic stimuli. Blood 2002; 99(10): 3838-43.
[72]
Volarevic V, Gazdic M, Simovic Markovic B, Jovicic N, Djonov V, Arsenijevic N. Mesenchymal stem cell-derived factors: Immuno-modulatory effects and therapeutic potential. Biofactors 2017; 43(5): 633-44.
[73]
Kalinski P. Regulation of immune responses by prostaglandin E2. J Immunol 2012; 188(1): 21-8.
[74]
Kota DJ, Prabhakara KS, Toledano-Furman N, et al. Prostaglandin E2 indicates therapeutic efficacy of mesenchymal stem cells in experimental traumatic brain injury. Stem Cells 2017; 35(5): 1416-30.
[75]
Ren G, Su J, Zhang L, et al. Species variation in the mechanisms of mesenchymal stem cell-mediated immunosuppression. Stem Cells 2009; 27(8): 1954-62.
[76]
Milosavljevic N, Gazdic M, Simovic Markovic B, et al. Mesenchymal stem cells attenuate liver fibrosis by suppressing Th17 cells - an experimental study. Transpl Int 2018; 31(1): 102-15.
[77]
Milosavljevic N, Gazdic M, Simovic Markovic B, et al. Mesenchymal stem cells attenuate acute liver injury by altering ratio between interleukin 17 producing and regulatory natural killer T cells. Liver Transpl 2017; 23(8): 1040-50.
[78]
Yi T, Song SU. Immunomodulatory properties of mesenchymal stem cells and their therapeutic applications. Arch Pharm Res 2012; 35(2): 213-21.
[80]
Legaki E, Roubelakis MG, Theodoropoulos GE, et al. Therapeutic potential of secreted molecules derived from human amniotic fluid mesenchymal stem/stroma cells in a mice model of colitis. Stem Cell Rev 2016; 12(5): 604-12.
[81]
Zani A, Cananzi M, Fascetti-Leon F, et al. Amniotic fluid stem
cells improve survival and enhance repair of damaged intestine in
necrotising enterocolitis via a COX-2 dependent mechanism. Gut
2014; 63: 300e9
[82]
Yang DY, Sheu ML, Su HL, et al. Dual regeneration of muscle and
nerve by intravenous administration of human amniotic fluidderived
mesenchymal stem cells regulated by stromal cell-derived
factor-1alpha in a sciatic nerve injury model. J Neurosurg 2012;
116(6): 1357e67.
[83]
Li L, Wang D, Zhou J, Cheng Y, Liang T, Zhang G. Characteristics of human amniotic fluid mesenchymal stem cells and their tropism to human ovarian cancer. PLoS One 2015; 10(4): e0123350.
[84]
Bitsika V, Roubelakis MG, Zagoura D, et al. Human amniotic fluid-derived mesenchymal stem cells as therapeutic vehicles: a novel approach for the treatment of bladder cancer. Stem Cells Dev 2012; 21(7): 1097-111.
[85]
Dong Z, Greene G, Pettaway C, et al. Suppression of angiogenesis, tumorigenicity, and metastasis by human prostate cancer cells engineered to produce interferon-beta. Cancer Res 1999; 59(4): 872-9.
[86]
Qin XQ, Runkel L, Deck C, DeDios C, Barsoum J. Interferon-beta induces S phase accumulation selectively in human transformed cells. J Interferon Cytokine Res 1997; 17(6): 355-67.
[87]
Schiller JH, Storer B, Bittner G, Willson JK, Borden EC. Phase II trial of a combination of interferon-beta ser and interferon-gamma in patients with advanced malignant melanoma. J Interferon Res 1988; 8(5): 581-9.