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Tanikawa DYS, Aguena M, Bueno DF, Passos-Bueno MR, Alonso N. Fat grafts supplemented with adipose-derived stromal cells in the rehabilitation of patients with craniofacial microsomia. Plast Reconstr Surg. 2013;132:141–52; DOI:10.1097/PRS.0b013e3182910a82.TanikawaDYSAguenaMBuenoDFPassos-BuenoMRAlonsoNFat grafts supplemented with adipose-derived stromal cells in the rehabilitation of patients with craniofacial microsomiaPlast Reconstr Surg20131321415210.1097/PRS.0b013e3182910a82Open DOISearch in Google Scholar

Zuk PA, Zhu M, Mizuno H, Huang J, Futrell JW, Katz AJ, Benhaim P, Lorenz HP, Hedrick MH. Multilineage cells from human adipose tissue: Implications for cell-based therapies. Tissue Eng. 2001:211–28; DOI:10.1089/107632701300062859.ZukPAZhuMMizunoHHuangJFutrellJWKatzAJBenhaimPLorenzHPHedrickMHMultilineage cells from human adipose tissue: Implications for cell-based therapiesTissue Eng2001211–2810.1089/107632701300062859Open DOISearch in Google Scholar

Zuk PA, Zhu M, Ashjian P, De Ugarte DA, Huang JI, Mizuno H, Alfonso ZC, Fraser JK, Benhaim P, Hedrick MH. Human Adipose Tissue Is a Source of Multipotent Stem Cells. Mol Biol Cell. 2002;13:4279–95; DOI:10.1091/mbc.E02-02-0105.ZukPAZhuMAshjianPDeUgarte DAHuangJIMizunoHAlfonsoZCFraserJKBenhaimPHedrickMH.Human Adipose Tissue Is a Source of Multipotent Stem CellsMol Biol Cell20021342799510.1091/mbc.E02-02-0105Open DOISearch in Google Scholar

Zhu M, Zhou Z, Chen Y, Schreiber R, Ransom JT, Fraser JK, Hedrick MH, Pinkernell K, Kuo HC. Supplementation of fat grafts with adipose-derived regenerative cells improves long-term graft retention. Ann Plast Surg. 2010;64:222–8; DOI:10.1097/SAP.0b013e31819ae05c.ZhuMZhouZChenYSchreiberRRansomJTFraserJKHedrickMHPinkernellKKuoHCSupplementation of fat grafts with adipose-derived regenerative cells improves long-term graft retentionAnn Plast Surg201064222810.1097/SAP.0b013e31819ae05cOpen DOISearch in Google Scholar

Majumdar MK, Banks V, Peluso DP, Morris EA. Isolation, characterization, and chondrogenic potential of human bone marrow-derived multipotential stromal cells. J Cell Physiol. 2000;185:98–106; DOI:10.1002/1097-4652(200010)185:1<98::AID-JCP9>3.0.CO;2-1.MajumdarMKBanksVPelusoDPMorrisEAIsolation, characterization, and chondrogenic potential of human bone marrow-derived multipotential stromal cellsJ Cell Physiol20001859810610.1002/1097-4652(200010)185:1<98::AID-JCP9>3.0.CO;2-1Open DOISearch in Google Scholar

Planat-Benard V, Silvestre JS, Cousin B, André M, Nibbelink M, Tamarat R, Clergue M, Manneville C, Saillan-Barreau C, Duriez M, Tedgui A, Levy B, Pénicaud L, Casteilla L. Plasticity of Human Adipose Lineage Cells Toward Endothelial Cells: Physiological and Therapeutic Perspectives. Circulation. 2004;109:656–63; DOI:10.1161/01.CIR.0000114522.38265.61.Planat-BenardVSilvestreJSCousinBAndréMNibbelinkMTamaratRClergueMMannevilleCSaillan-BarreauCDuriezMTedguiALevyBPénicaudLCasteillaL.Plasticity of Human Adipose Lineage Cells Toward Endothelial Cells: Physiological and Therapeutic PerspectivesCirculation20041096566310.1161/01.CIR.0000114522.38265.61Open DOISearch in Google Scholar

Halvorsen YDC, Franklin D, Bond AL, Hitt DC, Auchter C, Boskey AL, Paschalis EP, Wilkison WO, Gimble JM. Extracellular matrix mineralization and osteoblast gene expression by human adipose tissue-derived stromal cells. Tissue Eng. 2001;7:729–41; DOI:10.1089/107632701753337681.HalvorsenYDCFranklinDBondALHittDCAuchterCBoskeyALPaschalisEPWilkisonWOGimbleJMExtracellular matrix mineralization and osteoblast gene expression by human adipose tissue-derived stromal cellsTissue Eng200177294110.1089/107632701753337681Open DOISearch in Google Scholar

Abdanipour A, Tiraihi T, Delshad AR. Trans-differentiation of the adipose tissue-derived stem cells into neuron-like cells expressing neurotrophins by selegiline. Iran Biomed J. 2011;15:113–21; DOI:10.6091/IBJ.1011.2012.AbdanipourATiraihiTDelshadARTrans-differentiation of the adipose tissue-derived stem cells into neuron-like cells expressing neurotrophins by selegilineIran Biomed J2011151132110.6091/IBJ.1011.2012Open DOISearch in Google Scholar

Keck M, Kober J, Riedl O, Kitzinger HB, Wolf S, Stulnig TM, Zeyda M, Gugerell A. Power assisted liposuction to obtain adipose-derived stem cells: Impact on viability and differentiation to adipocytes in comparison to manual aspiration. J Plast Reconstr Aesthetic Surg. 2014;67:e1; DOI:10.1016/j.bjps.2013.08.019.KeckMKoberJRiedlOKitzingerHBWolfSStulnigTMZeydaMGugerellAPower assisted liposuction to obtain adipose-derived stem cells: Impact on viability and differentiation to adipocytes in comparison to manual aspirationJ Plast Reconstr Aesthetic Surg201467e110.1016/j.bjps.2013.08.019Open DOISearch in Google Scholar

Dompe C, Wasiatycz G, Mozdziak P, Jankowski M, Kempisty B. Current clinical applications of adipose-derived stem cells in humans and animals. Med J Cell Biol. 2019;7; DOI:10.2478/acb-2019-0014.DompeCWasiatyczGMozdziakPJankowskiMKempistyBCurrent clinical applications of adipose-derived stem cells in humans and animalsMed J Cell Biol2019710.2478/acb-2019-0014Open DOISearch in Google Scholar

Oryan A, Alidadi S, Moshiri A, Maffulli N. Bone regenerative medicine: classic options, novel strategies, and future directions. J Orthop Surg Res. 2014;9:18; DOI:10.1186/1749-799X-9-18.OryanAAlidadiSMoshiriAMaffulliNBone regenerative medicine: classic options, novel strategies, and future directionsJ Orthop Surg Res201491810.1186/1749-799X-9-18Open DOISearch in Google Scholar

Coelho M, Oliveira T, Fernandes R. Biochemistry of adipose tissue: An endocrine organ. Arch Med Sci. 2013; DOI:10.5114/aoms.2013.33181.CoelhoMOliveiraTFernandesRBiochemistry of adipose tissue: An endocrine organArch Med Sci201310.5114/aoms.2013.33181Open DOISearch in Google Scholar

Thesleff T, Lehtimäki K, Niskakangas T, Mannerström B, Miettinen S, Suuronen R, Öhman J. Cranioplasty with adipose-derived stem cells and biomaterial: a novel method for cranial reconstruction. Neurosurgery. 2011;68:1535–40; DOI:10.1227/NEU.0b013e31820ee24e.ThesleffTLehtimäkiKNiskakangasTMannerströmBMiettinenSSuuronenRÖhmanJ.Cranioplasty with adipose-derived stem cells and biomaterial: a novel method for cranial reconstructionNeurosurgery20116815354010.1227/NEU.0b013e31820ee24eOpen DOISearch in Google Scholar

Chomczynski P, Sacchi N. Single-step method of RNA isolation by acid guanidinium thiocyanate-phenol-chloroform extraction. Anal Biochem. 1987;162:156–9; DOI:10.1016/0003-2697(87)90021-2.ChomczynskiPSacchiNSingle-step method of RNA isolation by acid guanidinium thiocyanate-phenol-chloroform extractionAnal Biochem1987162156910.1016/0003-2697(87)90021-2Open DOISearch in Google Scholar

An Y, Zhao J, Nie F, Wu Y, Xia Y, Li D. Parathyroid hormone (PTH) promotes ADSC osteogenesis by regulating SIK2 and Wnt4. Biochem Biophys Res Commun. 2019;516:551–7; DOI:10.1016/j.bbrc.2019.06.084.AnYZhaoJNieFWuYXiaYLiDParathyroid hormone (PTH) promotes ADSC osteogenesis by regulating SIK2 and Wnt4Biochem Biophys Res Commun2019516551710.1016/j.bbrc.2019.06.084Open DOISearch in Google Scholar

Lough DM, Chambers C, Germann G, Bueno R, Reichensperger J, Swanson E, Dyer M, Cox L, Harrison C, Neumeister MW. Regulation of ADSC Osteoinductive Potential Using Notch Pathway Inhibition and Gene Rescue: A Potential On/ Off Switch for Clinical Applications in Bone Formation and Reconstructive Efforts. Plast Reconstr Surg. 2016;138:642e-652e; DOI:10.1097/PRS.0000000000002551.LoughDMChambersCGermannGBuenoRReichenspergerJSwansonEDyerMCoxLHarrisonCNeumeisterMWRegulation of ADSC Osteoinductive Potential Using Notch Pathway Inhibition and Gene Rescue: A Potential On/ Off Switch for Clinical Applications in Bone Formation and Reconstructive EffortsPlast Reconstr Surg2016138642e652e;10.1097/PRS.0000000000002551Open DOISearch in Google Scholar

Ding L, Tang S, Liang P, Wang C, Zhou P fei, Zheng L. Bone Regeneration of Canine Peri-implant Defects Using Cell Sheets of Adipose-Derived Mesenchymal Stem Cells and Platelet-Rich Fibrin Membranes. J Oral Maxillofac Surg. 2019;77; DOI:10.1016/j.joms.2018.10.018.DingLTangSLiangPWangCZhouP feiZhengL.Bone Regeneration of Canine Peri-implant Defects Using Cell Sheets of Adipose-Derived Mesenchymal Stem Cells and Platelet-Rich Fibrin MembranesJ Oral Maxillofac Surg20197710.1016/j.joms.2018.10.018Open DOISearch in Google Scholar

Coelho de Faria A, Chiantia F, Teixeira M, Aloise A, Pelegrine A. Comparative Study Between Mesenchymal Stem Cells Derived from Bone Marrow and from Adipose Tissue, Associated with Xenograft, in Appositional Reconstructions: Histomorphometric Study in Rabbit Calvaria. Int J Oral Maxillofac Implant. 2016;31:155–61; DOI:10.11607/jomi.4606.Coelhode Faria AChiantiaFTeixeiraMAloiseAPelegrineA.Comparative Study Between Mesenchymal Stem Cells Derived from Bone Marrow and from Adipose Tissue, Associated with Xenograft, in Appositional Reconstructions: Histomorphometric Study in Rabbit CalvariaInt J Oral Maxillofac Implant2016311556110.11607/jomi.4606Open DOISearch in Google Scholar

Park S, Heo HA, Lee KB, Kim HG, Pyo SW. Improved Bone Regeneration with Multiporous PLGA Scaffold and BMP-2-Transduced Human Adipose-Derived Stem Cells by Cell-Permeable Peptide. Implant Dent. 2017;26; DOI:10.1097/ID.0000000000000523.ParkSHeoHALeeKBKimHGPyoSWImproved Bone Regeneration with Multiporous PLGA Scaffold and BMP-2-Transduced Human Adipose-Derived Stem Cells by Cell-Permeable PeptideImplant Dent20172610.1097/ID.0000000000000523Open DOISearch in Google Scholar

Yoon Y, Jung T, Shahid MA, Khan IU, Kim WH, Kweon OK. Frozen-thawed gelatin-induced osteogenic cell sheets of canine adipose-derived mesenchymal stromal cells improved fracture healing in canine model. J Vet Sci. 2019;20; DOI:10.4142/jvs.2019.20.e63.YoonYJungTShahidMAKhanIUKimWHKweonOKFrozen-thawed gelatin-induced osteogenic cell sheets of canine adipose-derived mesenchymal stromal cells improved fracture healing in canine modelJ Vet Sci20192010.4142/jvs.2019.20.e63Open DOISearch in Google Scholar

Tateno A, Asano M, Akita D, Toriumi T, Tsurumachi-Iwasaki N, Kazama T, Arai Y, Matsumoto T, Kano K, Honda M. Transplantation of dedifferentiated fat cells combined with a biodegradable type i collagen-recombinant peptide scaffold for critical-size bone defects in rats. J Oral Sci. 2019;61; DOI:10.2334/josnusd.18-0458.TatenoAAsanoMAkitaDToriumiTTsurumachi-IwasakiNKazamaTAraiYMatsumotoTKanoKHondaMTransplantation of dedifferentiated fat cells combined with a biodegradable type i collagen-recombinant peptide scaffold for critical-size bone defects in ratsJ Oral Sci20196110.2334/josnusd.18-0458Open DOISearch in Google Scholar

Xie M, Qin H, Luo Q, He X, He X, Lan P, Lian L. Comparison of Adipose-Derived and Bone Marrow Mesenchymal Stromal Cells in a Murine Model of Crohn’s Disease. Dig Dis Sci. 2017;62:115–23; DOI:10.1007/s10620-016-4166-6.XieMQinHLuoQHeXHeXLanPLianLComparison of Adipose-Derived and Bone Marrow Mesenchymal Stromal Cells in a Murine Model of Crohn’s DiseaseDig Dis Sci2017621152310.1007/s10620-016-4166-6Open DOISearch in Google Scholar

Sánchez-Garcés M, Alvira-González J, Sánchez C, Barbany Cairó J, Del Pozo M, Gay-Escoda C. Bone Regeneration Using Adipose-Derived Stem Cells with Fibronectin in Dehiscence-Type Defects Associated with Dental Implants: An Experimental Study in a Dog Model. Int J Oral Maxillofac Implant. 2017;32:96–106; DOI:10.11607/jomi.5169.Sánchez-GarcésMAlvira-GonzálezJSánchezCBarbanyCairó JDelPozo MGay-EscodaC.Bone Regeneration Using Adipose-Derived Stem Cells with Fibronectin in Dehiscence-Type Defects Associated with Dental Implants: An Experimental Study in a Dog ModelInt J Oral Maxillofac Implant2017329610610.11607/jomi.5169Open DOISearch in Google Scholar

Dominici M, Le Blanc K, Mueller I, Slaper-Cortenbach I, Marini F, Krause D, Deans R, Keating A, Prockop D, Horwitz E. Minimal criteria for defining multipotent mesenchymal stromal cells. The International Society for Cellular Therapy position statement. Cytotherapy. 2006;8:315–7; DOI:10.1080/14653240600855905.DominiciMLeBlanc KMuellerISlaper-CortenbachIMariniFKrauseDDeansRKeatingAProckopDHorwitzE.Minimal criteria for defining multipotent mesenchymal stromal cellsThe International Society for Cellular Therapy position statement. Cytotherapy20068315710.1080/14653240600855905Open DOISearch in Google Scholar

Behm C, Blufstein A, Gahn J, Noroozkhan N, Moritz A, Rausch-Fan X, Andrukhov O. Soluble CD14 enhances the response of periodontal ligament stem cells to toll-like receptor 2 agonists. Mediators Inflamm. 2019;2019; DOI:10.1155/2019/8127301.BehmCBlufsteinAGahnJNoroozkhanNMoritzARausch-FanXAndrukhovOSoluble CD14 enhances the response of periodontal ligament stem cells to toll-like receptor 2 agonistsMediators Inflamm2019201910.1155/2019/8127301Open DOISearch in Google Scholar

Lobba ARM, Forni MF, Carreira ACO, Sogayar MC. Differential expression of CD90 and CD14 stem cell markers in malignant breast cancer cell lines. Cytom Part A. 2012;81A:1084–91; DOI:10.1002/cyto.a.22220.LobbaARMForniMFCarreiraACOSogayarMCDifferential expression of CD90 and CD14 stem cell markers in malignant breast cancer cell linesCytom Part A201281A10849110.1002/cyto.a.22220Open DOISearch in Google Scholar

Wright SD, Ramos RA, Tobias PS, Ulevitch RJ, Mathison JC. CD14, a receptor for complexes of lipopolysaccharide (LPS) and LPS binding protein. Science (80- ). 1990;249:1431–3; DOI:10.1126/science.1698311.WrightSDRamosRATobiasPSUlevitchRJMathisonJCCD14, a receptor for complexes of lipopolysaccharide (LPS) and LPS binding proteinScience (80- )19902491431310.1126/science.1698311Open DOISearch in Google Scholar

Park HJ, Lee WY, Park C, Hong K, Song H. CD14 is a unique membrane marker of porcine spermatogonial stem cells, regulating their differentiation. Sci Rep. 2019;9; DOI:10.1038/s41598-019-46000-6.ParkHJLeeWYParkCHongKSongHCD14 is a unique membrane marker of porcine spermatogonial stem cells, regulating their differentiationSci Rep2019910.1038/s41598-019-46000-6Open DOISearch in Google Scholar

Han SA, Lee S, Seong SC, Lee MC. Effects of CD14 macrophages and proinflammatory cytokines on chondrogenesis in osteoarthritic synovium-derived stem cells. Tissue Eng - Part A. 2014;20:2680–91; DOI:10.1089/ten.tea.2013.0656.HanSALeeSSeongSCLeeMCEffects of CD14 macrophages and proinflammatory cytokines on chondrogenesis in osteoarthritic synovium-derived stem cellsTissue Eng - Part A20142026809110.1089/ten.tea.2013.0656Open DOISearch in Google Scholar

Vannucchi AM, Guidi S, Guglielmelli P, Glinz S, Lombardini L, Busca A, Locatelli F, Dall’Omo AM, Bosi A. Significance of CTLA-4 and CD14 genetic polymorphisms in clinical outcome after allogeneic stem cell transplantation [3]. Bone Marrow Transplant. 2007;40:1001–2; DOI:10.1038/sj.bmt.1705850.VannucchiAMGuidiSGuglielmelliPGlinzSLombardiniLBuscaALocatelliFDall’OmoAMBosiASignificance of CTLA-4 and CD14 genetic polymorphisms in clinical outcome after allogeneic stem cell transplantation [3]Bone Marrow Transplant2007401001210.1038/sj.bmt.1705850Open DOISearch in Google Scholar

eISSN:
2544-3577
Język:
Angielski
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4 razy w roku
Dziedziny czasopisma:
Life Sciences, Molecular Biology, Biochemistry