99
Views
9
CrossRef citations to date
0
Altmetric
Reviews

Adult stem cells for cardiovascular diseases: the adipose tissue potential

, , &
Pages 791-798 | Published online: 07 Jun 2007

Bibliography

  • HORWITZ EM: Bone marrow transplantation: it’s not just about blood anymore! Pediatr. Transplant. (2003) 7(Suppl. 3):56-58.
  • JACKSON KA, MAJKA SM, WANG H et al.: Regeneration of ischemic cardiac muscle and vascular endothelium by adult stem cells. J. Clin. Invest. (2001) 107(11):1395-1402.
  • ORLIC D, KAJSTURA J, CHIMENTI S et al.: Bone marrow cells regenerate infarcted myocardium. Nature (2001) 410(6829):701-705.
  • MOLLMANN H, NEF HM, KOSTIN S et al.: Bone marrow-derived cells contribute to infarct remodelling. Cardiovasc. Res. (2006) 71(4):661-671.
  • ISHIKAWA F, SHIMAZU H, SHULTZ LD et al.: Purified human hematopoietic stem cells contribute to the generation of cardiomyocytes through cell fusion. Faseb J. (2006) 20(7):950-952.
  • FUKUHARA S, TOMITA S,NAKATANI T, YUTANI C,KITAMURA S: Endogenous bone-marrow-derived stem cells contribute only a small proportion of regenerated myocardium in the acute infarctionmodel. J. Heart Lung Transplant. (2005) 24(1):67-72.
  • BALSAM LB, WAGERS AJ, CHRISTENSEN JL et al.: Haematopoietic stem cells adopt mature haematopoietic fates in ischaemic myocardium. Nature (2004) 428(6983):668-673.
  • DETEN A, VOLZ HC, CLAMORS S et al.: Hematopoietic stem cells do not repair the infarcted mouse heart. Cardiovasc. Res. (2005) 65(1):52-63.
  • ZHANG S, WANG D, ESTROV Z et al.: Both cell fusion and transdifferentiation account for the transformation of human peripheral blood CD34-positive cells into cardiomyocytes in vivo. Circulation (2004) 110(25):3803-3807.
  • YEH ET, ZHANG S, WU HD et al.: Transdifferentiation of human peripheral blood CD34+-enriched cell population into cardiomyocytes, endothelial cells, and smooth muscle cells in vivo. Circulation (2003) 108(17):2070-2073.
  • GRUH I, BEILNER J, BLOMER U et al.: No evidence of transdifferentiation of human endothelial progenitor cells into cardiomyocytes after coculture with neonatal rat cardiomyocytes. Circulation (2006) 113(10):1326-1334.
  • IWASAKI H, KAWAMOTO A, ISHIKAWA M et al.: Dose-dependent contribution of CD34-positive cell transplantation to concurrent vasculogenesis and cardiomyogenesis for functional regenerative recovery after myocardial infarction. Circulation (2006) 113(10):1311-1325.
  • OZBARAN M, OMAY SB, NALBANTGIL S et al.: Autologous peripheral stem cell transplantation in patients with congestive heart failure due to ischemic heart disease. Eur. J. Cardiothorac. Surg. (2004) 25(3):342-350; discussion 350-341.
  • POMPILIO G, CANNATA A, PECCATORI F et al.: Autologous peripheral blood stem cell transplantation for myocardial regeneration: a novel strategy for cell collection and surgical injection. Ann. Thorac. Surg. (2004) 78(5):1808-1812.
  • ARGUERO R, CAREAGA-REYNA G, CASTANO-GUERRA R et al.: Cellular autotransplantation for ischemic and idiopathic dilated cardiomyopathy. Preliminary report. Arch. Med. Res. (2006) 37(8):1010-1014.
  • BHATTACHARYA V, MCSWEENEY PA, SHI Q et al.: Enhanced endothelialization and microvessel formation in polyester grafts seeded with CD34(+) bone marrow cells. Blood (2000) 95(2):581-585.
  • KOCHER AA, SCHUSTER MD, SZABOLCS MJ et al.: Neovascularization of ischemic myocardium by human bone-marrow-derived angioblasts prevents cardiomyocyte apoptosis, reduces remodeling and improves cardiac function. Nat. Med. (2001) 7(4):430-436.
  • YIN AH, MIRAGLIA S, ZANJANI ED et al.: AC133, a novel marker for human hematopoietic stem and progenitor cells. Blood (1997) 90(12):5002-5012.
  • KAWAMOTO A, GWON HC, IWAGURO H et al.: Therapeutic potential of ex vivo expanded endothelial progenitor cells for myocardial ischemia. Circulation (2001) 103(5):634-637.
  • KAMIHATA H, MATSUBARA H, NISHIUE T et al.: Implantation ofbone marrow mononuclear cells into ischemic myocardium enhances collateral perfusion and regional function via side supply of angioblasts, angiogenic ligands, and cytokines. Circulation (2001) 104(9):1046-1052.
  • 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.
  • 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.
  • CHARRIERE G, COUSIN B,ARNAUD E et al.: Preadipocyte conversion to macrophage. Evidence of plasticity. J. Biol. Chem. (2003) 278(11):9850-9855.
  • 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.
  • 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.
  • 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.
  • RODRIGUEZ LV, ALFONSO Z, ZHANG R et al.: Clonogenic multipotent stem cells in human adipose tissue differentiate into functional smooth muscle cells. Proc. Natl. Acad. Sci. USA (2006) 103(32):12167-12172.
  • 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.
  • BOQUEST AC, SHAHDADFAR A, FRONSDAL K et al.: Isolation and transcription profiling of purified uncultured human stromal stem cells: alteration of gene expression after in vitro cell culture. Mol. Biol. Cell (2005) 16(3):1131-1141.
  • GUILAK F, LOTT KE, AWAD HA et al.: Clonal analysis of the differentiation potential of human adipose-derived adult stem cells. J. Cell Physiol. (2006) 206(1):229-237.
  • RANGAPPA S, FEN C, LEE EH, BONGSO A, SIM EK: Transformationof adult mesenchymal stem cells isolated from the fatty tissue into cardiomyocytes. Ann. Thorac. Surg.(2003) 75(3):775-779.
  • 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.
  • 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.
  • PLANAT-BENARD V, MENARD C, ANDRE M et al.: Spontaneous cardiomyocyte differentiation from adipose tissue stroma cells.Circ. Res. (2004) 94(2):223-229.
  • 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.
  • STREM BM, ZHU M, ALFONSO Z 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.
  • YAMADA Y, WANG XD, YOKOYAMA S, FUKUDA N, TAKAKURA N: Cardiac progenitor cells in brown adipose tissue repaired damaged myocardium. Biochem. Biophys. Res. Commun. (2006) 342(2):662-670.
  • MIYAHARA Y, NAGAYA N, KATAOKA M et al.: Monolayered mesenchymal stem cells repair scarred myocardium after myocardial infarction. Nat. Med. (2006) 12(4):459-465.
  • WASSERMANN P: The development of adipose tissue. In: Handbook of Physiology. Wahington, DC: American Physiological Society (1965):87-107.
  • RUPNICK MA, PANIGRAHY D, ZHANG CY et al.: Adipose tissue masscan be regulated through the vasculature. Proc. Natl. Acad. Sci. USA (2002) 99(16):10730-10735.
  • KOLONIN MG, SAHA PK, CHAN L, PASQUALINI R, ARAP W: Reversal of obesity by targeted ablation of adipose tissue. Nat. Med. (2004) 10(6):625-632.
  • BOULOUMIE A, LOLMEDE K, SENGENES C, GALITZKY J, LAFONTAN M: Angiogenesis in adipose tissue. Ann. Endocrinol. (Paris) (2002) 63(2 Pt 1):91-95.
  • OUCHI N, KOBAYASHI H, KIHARA S et al.: Adiponectin stimulates angiogenesis by promoting cross-talk between AMP-activated protein kinase and Akt signaling in endothelial cells. J. Biol. Chem. (2004) 279(2):1304-1309.
  • FESTY F, HOAREAU L, BES-HOUTMANN S et al.: Surface protein expression between human adipose tissue-derived stromal cells and mature adipocytes. Histochem. Cell Biol. (2005) 124(2):113-121.
  • YOSHIMURA K, SHIGEURA T, MATSUMOTO D et al.: Characterization of freshly isolated and cultured cells derived from the fatty and fluid portions of liposuction aspirates. J. Cell Physiol. (2006) 208(1):64-76.
  • SENGENES C, LOLMEDE K, ZAKAROFF-GIRARD A, BUSSE R, BOULOUMIE A: Preadipocytes in the human subcutaneous adipose tissue display distinct features from the adult mesenchymal and hematopoietic stem cells. J. Cell Physiol. (2005) 205(1):114-122.
  • BOQUEST AC, NOER A, SORENSEN AL, VEKTERUD K, COLLAS P: CpG methylation profiles of endothelial cell-specific gene promoter regions in adipose tissue stem cells suggest limited differentiation potential toward the endothelial cell lineage. Stem Cells (2007) 25(4):852-861.
  • RUBIO D, GARCIA-CASTRO J, MARTIN MC et al.: Spontaneous human adult stem cell transformation. Cancer Res. (2005) 65(8):3035-3039.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.