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Review

Adipose-derived stem cells for the regeneration of damaged tissues

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Pages 567-578 | Published online: 17 May 2006

Bibliography

  • KORBLING M, ESTROV Z: Adult stem cells for tissue repair – a new therapeutic concept? N. Engl. J. Med. (2003) 349(6):570-582.
  • BELTRAMI AP, BARLUCCHI L, TORELLA D et al.: Adult cardiac stem cells are multipotent and support myocardial regeneration. Cell (2003) 114(6):763-776.
  • ZUK PA, ZHU M, MIZUNO H et al.: Multilineage cells from human adipose tissue: implications for cell-based therapies. Tissue Eng. (2001) 7(2):211-228.
  • NAM SY, LOBIE PE: The mechanism of effect of growth hormone on preadipocyte and adipocyte function. Obesity Rev. (2000) 1(2):73-86.
  • COWHERD RM, LYLE RE, MCGEHEE RE JR: Molecular regulation of adipocyte differentiation. Semin. Cell Dev. Biol. (1999) 10(1):3-10.
  • SORISKY A: From preadipocyte to adipocyte: differentiation-directed signals of insulin from the cell surface to the nucleus. Crit. Rev. Clin. Lab. Sci. (1999) 36(1):1-34.
  • KIRKLAND JL, HOLLENBERG CH: Inhibitors of preadipocyte replication: opportunities for the treatment of obesity. Prog. Mol. Subcell. Biol. (1998) 20:177-195.
  • GREGOIRE FM, SMAS CM, SUL HS: Understanding adipocyte differentiation. Physiol. Rev. (1998) 78(3):783-809.
  • ZUK PA, ZHU M, ASHJIAN P et al.: Human adipose tissue is a source of multipotent stem cells. Mol. Biol. Cell (2002) 13(12):4279-4295.
  • SEN A, LEA-CURRIE YR, SUJKOWSKA D et al.: Adipogenic potential of human adipose derived stromal cells from multiple donors is heterogeneous. J. Cell. Biochem. (2001) 81(2):312-319.
  • TCHKONIA T, GIORGADZE N, PIRTSKHALAVA T et al.: Fat depot origin affects adipogenesis in primary cultured and cloned human preadipocytes. Am. J. Physiol. Regul. Integr. Comp. Physiol. (2002) 282(5):R1286-R1296.
  • THOLPADY SS, KATZ AJ, OGLE RC: Mesenchymal stem cells from rat visceral fat exhibit multipotential differentiation in vitro. Anat. Rec. A Discov. Mol. Cell. Evol. Biol. (2003) 272(1):398-402.
  • OGAWA R, MIZUNO H, WATANABE A et al.: Adipogenic differentiation by adipose-derived stem cells harvested from GFP transgenic mice-including relationship of sex differences. Biochem. Biophys. Res. Commun. (2004) 319(2):511-517.
  • TCHKONIA T, TCHOUKALOVA YD, GIORGADZE N et al.: Abundance of two human preadipocyte subtypes with distinct capacities for replication, adipogenesis, and apoptosis varies among fat depots. Am. J. Physiol. Endocrinol. Metabol. (2005) 288(1):E267-E277.
  • LEE JA, PARRETT BM, CONEJERO JA et al.: Biological alchemy: engineering bone and fat from fat-derived stem cells. Ann. Plast. Surg. (2003) 50(6):610-617.
  • HALVORSEN YD, FRANKLIN D, BOND AL et al.: Extracellular matrix mineralization and osteoblast gene expression by human adipose tissue-derived stromal cells. Tissue Eng. (2001) 7(6):729-741.
  • HATTORI H, SATO M, MASUOKA K et al.: Osteogenic potential of human adipose tissue-derived stromal cells as an alternative stem cell source. Cells Tissues Organs (2004) 178(1):2-12.
  • OGAWA R, MIZUNO H, HYAKUSOKU H et al.: Chondrogenic and osteogenic differentiation of adipose-derived stem cells isolated from GFP transgenic mice. J. Nippon Med. Sch. Nihon Ika Daigaku Zasshi (2004) 71(4):240-241.
  • JUSTESEN J, PEDERSEN SB, STENDERUP K, KASSEM M: Subcutaneous adipocytes can differentiate into bone-forming cells in vitro and in vivo. Tissue Eng. (2004) 10(3-4):381-391.
  • ERICKSON GR, GIMBLE JM, FRANKLIN DM et al.: Chondrogenic potential of adipose tissue-derived stromal cells in vitro and in vivo. Biochem. Biophys. Res. Commun. (2002) 290(2):763-769.
  • HUANG JI, ZUK PA, JONES NF et al.: Chondrogenic potential of multipotential cells from human adipose tissue. Plast. Reconstr. Surg. (2004) 113(2):585-594.
  • MIZUNO H, ZUK PA, ZHU M et al.: Myogenic differentiation by human processed lipoaspirate cells. Plast. Reconstr. Surg. (2002) 109(1):199-209; discussion 210-191.
  • RANGAPPA S, FEN C, LEE EH, BONGSO A, SIM EK: Transformation of adult mesenchymal stem cells isolated from the fatty tissue into cardiomyocytes. [erratum appears in Ann. Thorac. Surg. (2004) 77(5):1880; Note: Wei, Eugene Sim Kwang [corrected to Sim, Eugene Kwang Wei]]. Ann. Thorac. Surg. (2003) 75(3):775-779.
  • PLANAT-BENARD V, MENARD C, ANDRE M et al.: Spontaneous cardiomyocyte differentiation from adipose tissue stroma cells. Circ. Res. (2004) 94(2):223-229.
  • GAUSTAD KG, BOQUEST AC, ANDERSON BE, GERDES AM, COLLAS P: Differentiation of human adipose tissue stem cells using extracts of rat cardiomyocytes. Biochem. Biophys. Res. Commun. (2004) 314(2):420-427.
  • BAI X, PINKERNELL K, NABZDYK C et al.: Spontaneous cardiomyogenic differentiation of human adipose tissue derived stem cells: identification, isolation and characterization using lentiviral cardiac promoter/marker expression. American Heart Association Meeting. Dallas, Texas, USA (13 – 16 November 2005).
  • PLANAT-BENARD V, SILVESTRE JS, COUSIN B et al.: Plasticity of human adipose lineage cells toward endothelial cells: physiological and therapeutic perspectives. Circulation (2004) 109(5):656-663.
  • SEO MJ, SUH SY, BAE YC, JUNG JS: Differentiation of human adipose stromal cells into hepatic lineage in vitro and in vivo. Biochem. Biophys.Res.Commun. (2005) 328(1):258-264.
  • ASHJIAN PH, ELBARBARY AS, EDMONDS B et al.: In vitro differentiation of human processed lipoaspirate cells into early neural progenitors. Plast. Reconstr. Surg. (2003) 111(6):1922-1931.
  • SAFFORD KM, HICOK KC, SAFFORD SD et al.: Neurogenic differentiation of murine and human adipose-derived stromal cells. Biochem. Biophys. Res. Commun. (2002) 294(2):371-379.
  • KANG SK, LEE DH, BAE YC et al.: Improvement of neurological deficits by intracerebral transplantation of human adipose tissue-derived stromal cells after cerebral ischemia in rats. Exp. Neurol. (2003) 183(2):355-366.
  • KANG SK, PUTNAM LA, YLOSTALO J et al.: Neurogenesis of Rhesus adipose stromal cells. J. Cell Sci. (2004) 117(Pt 18):4289-4299.
  • SAFFORD KM, SAFFORD SD, GIMBLE JM, SHETTY AK, RICE HE: Characterization of neuronal/glial differentiation of murine adipose-derived adult stromal cells. Exp. Neurol. (2004) 187(2):319-328.
  • BRZOSKA M, GEIGER H, GAUER S, BAER P: Epithelial differentiation of human adipose tissue-derived adult stem cells. Biochem. Biophys.Res.Commun. (2005) 330(1):142-150.
  • COUSIN B, ANDRE M, ARNAUD E, PENICAUD L, CASTEILLA L: Reconstitution of lethally irradiated mice by cells isolated from adipose tissue. Biochem. Biophys. Res. Commun. (2003) 301(4):1016-1022.
  • MINGUELL JJ, ERICES A, CONGET P: Mesenchymal stem cells. Exp. Biol. Med. (2001) 226(6):507-520.
  • KASSEM M, KRISTIANSEN M, ABDALLAH BM: Mesenchymal stem cells: cell biology and potential use in therapy. Basic Clin. Pharmacol. Toxicol. (2004) 95(5):209-214.
  • DE UGARTE DA, MORIZONO K, ELBARBARY A et al.: Comparison of multi-lineage cells from human adipose tissue and bone marrow. Cells Tissues Organs (2003) 174(3):101-109.
  • KATZ AJ, THOLPADY A, THOLPADY SS, SHANG H, OGLE RC: Cell surface and transcriptional characterization of human adipose-derived adherent stromal (hADAS) cells. Stem Cells (2005) 23(3):412-423.
  • GRONTHOS S, FRANKLIN DM, LEDDY HA et al.: Surface protein characterization of human adipose tissue-derived stromal cells. J. Cell. Physiol. (2001) 189(1):54-63.
  • VAN HARMELEN V, SKURK T, ROHRIG K et al.: Effect of BMI and age on adipose tissue cellularity and differentiation capacity in women. Int. J. Obesity Relat. Metab. Disord. (2003) 27(8):889-895.
  • VON HEIMBURG D, HEMMRICH K, HAYDARLIOGLU S, STAIGER H, PALLUA N: Comparison of viable cell yield from excised versus aspirated adipose tissue. Cells Tissues Organs (2004) 178(2):87-92.
  • AUST L, DEVLIN B, FOSTER SJ et al.: Yield of human adipose-derived adult stem cells from liposuction aspirates. Cytotherapy (2004) 6(1):7-14.
  • PATRICK CW JR: Adipose tissue engineering: the future of breast and soft tissue reconstruction following tumor resection. Semin. Surg. Oncol. (2000) 19(3):302-311.
  • BILLINGS E JR, MAY JW JR: Historical review and present status of free fat graft autotransplantation in plastic and reconstructive surgery. Plast. Reconstr. Surg. (1989) 83(2):368-381.
  • ERSEK RA: Transplantation of purified autologous fat: a 3-year follow-up is disappointing. Plast. Reconstr. Surg. (1991) 87(2):219-227; discussion 228.
  • VON HEIMBURG D, ZACHARIAH S, HESCHEL I et al.: Human preadipocytes seeded on freeze-dried collagen scaffolds investigated in vitro and in vivo. Biomaterials (2001) 22(5):429-438.
  • VON HEIMBURG D, ZACHARIAH S, LOW A, PALLUA N: Influence of different biodegradable carriers on the in vivo behavior of human adipose precursor cells. Plast. Reconstr. Surg. (2001) 108(2):411-420; discussion 421-412.
  • PATRICK CW JR, CHAUVIN PB, HOBLEY J, REECE GP: Preadipocyte seeded PLGA scaffolds for adipose tissue engineering. Tissue Eng. (1999) 5(2):139-151.
  • VON HEIMBURG D, KUBERKA M, RENDCHEN R et al.: Preadipocyte-loaded collagen scaffolds with enlarged pore size for improved soft tissue engineering. Int. J. Artif. Organs (2003) 26(12):1064-1076.
  • HALBLEIB M, SKURK T, DE LUCA C, VON HEIMBURG D, HAUNER H: Tissue engineering of white adipose tissue using hyaluronic acid-based scaffolds. I: in vitro differentiation of human adipocyte precursor cells on scaffolds. Biomaterials (2003) 24(18):3125-3132.
  • HEMMRICH K, VON HEIMBURG D, RENDCHEN R et al.: Implantation of preadipocyte-loaded hyaluronic acid-based scaffolds into nude mice to evaluate potential for soft tissue engineering. Biomaterials (2005) 26(34):7025-7037.
  • KIMURA Y, OZEKI M, INAMOTO T, TABATA Y: Adipose tissue engineering based on human preadipocytes combined with gelatin microspheres containing basic fibroblast growth factor. Biomaterials (2003) 24(14):2513-2521.
  • KAWAGUCHI N, TORIYAMA K, NICODEMOU-LENA E et al.: De novo adipogenesis in mice at the site of injection of basement membrane and basic fibroblast growth factor. Proc. Natl. Acad. Sci. USA (1998) 95(3):1062-1066.
  • PATRICK CW JR, ZHENG B, JOHNSTON C, REECE GP: Long-term implantation of preadipocyte-seeded PLGA scaffolds. Tissue Eng. (2002) 8(2):283-293.
  • HALBERSTADT C, AUSTIN C, ROWLEY J et al.: A hydrogel material for plastic and reconstructive applications injected into the subcutaneous space of a sheep. Tissue Eng. (2002) 8(2):309-319.
  • SCHOELLER T, LILLE S, WECHSELBERGER G et al.: Histomorphologic and volumetric analysis of implanted autologous preadipocyte cultures suspended in fibrin glue: a potential new source for tissue augmentation. [erratum appears in Aesthetic Plast. Surg. (2003) 27(3):239; Note: Mowlawi A [corrected to Mowlavi A]]. Aesthetic Plast. Surg. (2001) 25(1):57-63.
  • HICOK KC, DU LANEY TV, ZHOU YS et al.: Human adipose-derived adult stem cells produce osteoid in vivo. Tissue Eng. (2004) 10(3-4):371-380.
  • DRAGOO JL, CHOI JY, LIEBERMAN JR et al.: Bone induction by BMP-2 transduced stem cells derived from human fat. J. Orthop. Res. (2003) 21(4):622-629.
  • DRAGOO JL, SAMIMI B, ZHU M et al.: Tissue-engineered cartilage and bone using stem cells from human infrapatellar fat pads. J. Bone Joint Surg. Br. (2003) 85(5):740-747.
  • PETERSON B, ZHANG J, IGLESIAS R et al.: Healing of critically sized femoral defects, using genetically modified mesenchymal stem cells from human adipose tissue. Tissue Eng. (2005) 11(1-2):120-129.
  • COWAN CM, SHI YY, AALAMI OO et al.: Adipose-derived adult stromal cells heal critical-size mouse calvarial defects. Nat. Biotechnol. (2004) 22(5):560-567.
  • CONEJERO J, LEE J, PARRETT B et al.: Repair of palatal bone defects using osteogenically differentiated fat-derived stem cells. Plast. Reconstr. Surg. (2006) 117(3):857-863.
  • LENDECKEL S, JODICKE A, CHRISTOPHIS P et al.: Autologous stem cells (adipose) and fibrin glue used to treat widespread traumatic calvarial defects: case report. J. Craniomaxillofac. Surg. (2004) 32(6):370-373.
  • GUILAK F, AWAD HA, FERMOR B, LEDDY HA, GIMBLE JM: Adipose-derived adult stem cells for cartilage tissue engineering. Biorheology (2004) 41(3-4):389-399.
  • SHELTON WR, TREACY SH, DUKES AD, BOMBOY AL: Use of allografts in knee reconstruction: I. Basic science aspects and current status. J. Am. Acad. Orthop. Surg. (1998) 6(3):165-168.
  • WINTER A, BREIT S, PARSCH D et al.: Cartilage-like gene expression in differentiated human stem cell spheroids: a comparison of bone marrow-derived and adipose tissue-derived stromal cells. Arthritis Rheum. (2003) 48(2):418-429.
  • AWAD HA, WICKHAM MQ, LEDDY HA, GIMBLE JM, GUILAK F: Chondrogenic differentiation of adipose-derived adult stem cells in agarose, alginate, and gelatin scaffolds. Biomaterials (2004) 25(16):3211-3222.
  • FRASER JK, SCHREIBER RE, ZUK PA, HEDRICK MH: Adult stem cell therapy for the heart. Int. J. Biochem. Cell Biol. (2004) 36(4):658-666.
  • PITTENGER MF, MARTIN BJ: Mesenchymal stem cells and their potential as cardiac therapeutics. Circ. Res. (2004) 95(1):9-20.
  • STREM BM, ZHU M, ALFONSO ZC et al.: Expression of cardiomyocytic markers on adipose tissue-derived cells in a murine model of acute myocardial injury. Cytotherapy (2005) 7(3):282-291.
  • STREM BM, JORDAN MC, KIM JK et al.: Adipose tissue-derived stem cells enhanced cardiac function following surgically-induced myocardial infarction. Adipocytes (2005) 1(3):192-193.
  • JOHNSTONE BH, TSOKOAEVA Z, YOUSSEF EA et al.: Preservation of heart function following MI using an abundant source of autologous stem cells derived from adipose. Adipocytes (2005) 1(3):196.
  • REHMAN J, TRAKTUEV D, LI J et al.: Secretion of angiogenic and antiapoptotic factors by human adipose stromal cells. Circulation (2004) 109(10):1292-1298.
  • MARTINEZ-ESTRADA OM, MUNOZ-SANTOS Y, JULVE J, REINA M, VILARO S: Human adipose tissue as a source of Flk-1+ cells: new method of differentiation and expansion. Cardiovasc. Res. (2005) 65(2):328-333.
  • MIRANVILLE A, HEESCHEN C, SENGENES C et al.: Improvement of postnatal neovascularization by human adipose tissue-derived stem cells. Circulation (2004) 110(3):349-355.
  • PEIRCE S, BAILEY A, SHANG H, KATZ A: hASCs in a rat mesenteric model of angiogenesis: positional, histomorphic, and functional evidence of a perivascular phenotype. Adipocytes (2005) 1(3):190.
  • TRAKTUEV D, LI J, FENG D et al.: A population of CD34-positive adipose stromal cells share hematopoietic, mesenchymal, and pericyte surface markers and reside in a perivascular niche. Adipocytes (2005) 1(3):193-194.
  • PENG H, HUARD J: Muscle-derived stem cells for musculoskeletal tissue regeneration and repair. Transpl. Immunol. (2004) 12(3-4):311-319.
  • URISH K, KANDA Y, HUARD J: Initial failure in myoblast transplantation therapy has led the way toward the isolation of muscle stem cells: potential for tissue regeneration. Curr. Top. Dev. Biol. (2005) 68:263-280.
  • DEASY BM, LI Y, HUARD J: Tissue engineering with muscle-derived stem cells. Curr. Opin. Biotechnol. (2004) 15(5):419-423.
  • DEZAWA M, ISHIKAWA H, ITOKAZU Y et al.: Bone marrow stromal cells generate muscle cells and repair muscle degeneration. Science (2005) 309(5732):314-317.
  • BACOU F, EL ANDALOUSI RB, DAUSSIN PA et al.: Transplantation of adipose tissue-derived stromal cells increases mass and functional capacity of damaged skeletal muscle. Cell Transplant. (2004) 13(2):103-111.
  • BOUBAKER EL ANDALOUSI R, DAUSSIN PA, MICALLEF JP et al.: Changes in mass and performance in rabbit muscles after muscle damage with or without transplantation of primary satellite cells. Cell Transplant. (2002) 11(2):169-180.
  • LEE KD, KUO TK, WHANG-PENG J et al.: In vitro hepatic differentiation of human mesenchymal stem cells. Hepatology (2004) 40(6):1275-1284.
  • SATO Y, ARAKI H, KATO J et al.: Human mesenchymal stem cells xenografted directly to rat liver are differentiated into human hepatocytes without fusion. Blood (2005) 106(2):756-763.
  • KIM DH, JE CM, SIN JY, JUNG JS: Effect of partial hepatectomy on in vivo engraftment after intravenous administration of human adipose tissue stromal cells in mouse. Microsurgery (2003) 23(5):424-431.
  • KOKAI L, RUBIN P, MARRA K: The potential of adipose-derived adult stem cells as a source of neuronal progenitor cells. Plast. Reconstr. Surg. (2005) 116(5):1453-1460.
  • OKONKWO DO, KATZ AJ, LEE KS, JANE JA: Repopulation of injured brain with human adipo-derived stem cells after traumatic brain injury. J. Am. Coll. Surg. (2005) 201(3):S47.
  • KANG SK, JUN ES, BAE YC, JUNG JS: Interactions between human adipose stromal cells and mouse neural stem cells in vitro. Brain Res. Dev. Brain Res. (2003) 145(1):141-149.
  • CHEN J, LI Y, WANG L et al.: Therapeutic benefit of intravenous administration of bone marrow stromal cells after cerebral ischemia in rats. Stroke (2001) 32(4):1005-1011.
  • MAHMOOD A, LU D, WANG L et al.: Treatment of traumatic brain injury in female rats with intravenous administration of bone marrow stromal cells. Neurosurgery (2001) 49(5):1196-1203; discussion 1203-1194.
  • CHOPP M, ZHANG XH, LI Y et al.: Spinal cord injury in rat: treatment with bone marrow stromal cell transplantation. Neuroreport (2000) 11(13):3001-3005.
  • AOKI S, TODA S, ANDO T, SUGIHARA H: Bone marrow stromal cells, preadipocytes, and dermal fibroblasts promote epidermal regeneration in their distinctive fashions. Mol. Biol. Cell (2004) 15(10):4647-4657.
  • TIMPER K, SEBOEK D, EBERHARDT M et al.: Human adipose tissue-derived mesenchymal stem cells differentiate into insulin, somatostatin, and glucagon expressing cells. Biochem. Biophys. Res. Commun. (2006) 341(4):1135-1140.
  • MORIGI M, IMBERTI B, ZOJA C et al.: Mesenchymal stem cells are renotropic, helping to repair the kidney and improve function in acute renal failure. J. Am. Soc. Nephrol. (2004) 15(7):1794-1804.
  • LE BLANC K, RINGDEN O: Immunobiology of human mesenchymal stem cells and future use in hematopoietic stem cell transplantation. Biol. Blood Marrow Transplant. (2005) 11(5):321-334.
  • PUISSANT B, BARREAU C, BOURIN P et al.: Immunomodulatory effect of human adipose tissue-derived adult stem cells: comparison with bone marrow mesenchymal stem cells. Br. J. Haematol. (2005) 129(1):118-129.
  • MCINTOSH K, ZVONIC S, GARRETT S et al.: The immunogenicity of human adipose derived cells: temporal changes in vitro. Stem Cells (2006) (In Press).
  • CHU K, KIM M, JEONG SW, KIM SU, YOON BW: Human neural stem cells can migrate, differentiate, and integrate after intravenous transplantation in adult rats with transient forebrain ischemia. Neurosci. Lett. (2003) 343(2):129-133.
  • ALEKSANDROVA MA, SABURINA IN, POLTAVTSEVA RA et al.: Behavior of human neural progenitor cells transplanted to rat brain. Brain Res. Dev. Brain Res. (2002) 134(1-2):143-148.
  • ENGLUND U, BJORKLUND A, WICTORIN K: Migration patterns and phenotypic differentiation of long-term expanded human neural progenitor cells after transplantation into the adult rat brain. Brain Res. Dev. Brain Res. (2002) 134(1-2):123-141.
  • AZIZI SA, STOKES D, AUGELLI BJ, DIGIROLAMO C, PROCKOP DJ: Engraftment and migration of human bone marrow stromal cells implanted in the brains of albino rats-similarities to astrocyte grafts. Proc. Natl. Acad. Sci. USA (1998) 95(7):3908-3913.
  • KIM SJ, CHO HH, KIM YJ et al.: Human adipose stromal cells expanded in human serum promote engraftment of human peripheral blood hematopoietic stem cells in NOD/SCID mice. Biochem. Biophys. Res. Commun. (2005) 329(1):25-31.
  • GARCIA-OLMO D, GARCIA-ARRANZ M, GARCIA LG et al.: Autologous stem cell transplantation for treatment of rectovaginal fistula in perianal Crohn’s disease: a new cell-based therapy. Int. J. Colorectal Dis. (2003) 18(5):451-454.
  • GARCIA-OLMO D, GARCIA-ARRANZ M, HERREROS D et al.: A Phase I clinical trial of the treatment of Crohn’s fistula by adipose mesenchymal stem cell transplantation. Dis. Colon Rectum (2005) 48(7):1416-1423.
  • MORIZONO K, DE UGARTE DA, ZHU M et al.: Multilineage cells from adipose tissue as gene delivery vehicles. Hum. Gene Ther. (2003) 14(1):59-66.
  • SELVAGGI TA, WALKER RE, FLEISHER TA: Development of antibodies to fetal calf serum with arthus-like reactions in human immunodeficiency virus-infected patients given syngeneic lymphocyte infusions. Blood (1997) 89(3):776-779.
  • MACKENSEN A, DRAGER R, SCHLESIER M, MERTELSMANN R, LINDEMANN A: Presence of IgE antibodies to bovine serum albumin in a patient developing anaphylaxis after vaccination with human peptide-pulsed dendritic cells. Cancer Immunol. Immunother. (2000) 49(3):152-156.
  • TUSCHONG L, SOENEN SL, BLAESE RM, CANDOTTI F, MUUL LM: Immune response to fetal calf serum by two adenosine deaminase-deficient patients after T cell gene therapy. Hum. Gene Ther. (2002) 13(13):1605-1610.
  • SPEES JL, GREGORY CA, SINGH H et al.: Internalized antigens must be removed to prepare hypoimmunogenic mesenchymal stem cells for cell and gene therapy. Mol. Ther. (2004) 9(5):747-756.
  • PARKER AM, SHANG H, KHURGEL M, KATZ AJ: Low serum and serum free culture of multipotential human adipose stem cells. Adipocytes (2005) 1(3):181-182.
  • RUBIO D, GARCIA-CASTRO J, MARTIN MC et al.: Spontaneous human adult stem cell transformation. Cancer Res. (2005) 65(8):3035-3039.

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