자가기질혈관분획을 이용한 수지골 결손 환자의 치료

Treatment of Phalangeal Bone Defect Using Autologous Stromal Vascular Fraction from Lipoaspirated Tissue

  • 정태원 (고려대학교 의과대학 성형외과학교실) ;
  • 지이화 (고려대학교 의과대학 성형외과학교실) ;
  • 김덕우 (고려대학교 의과대학 성형외과학교실) ;
  • 동은상 (고려대학교 의과대학 성형외과학교실) ;
  • 윤을식 (고려대학교 의과대학 성형외과학교실)
  • Jeong, Tae-Won (Department of Plastic Surgery and Reconstructive Surgery, Korea University College of Medicine) ;
  • Ji, Yi-Hwa (Department of Plastic Surgery and Reconstructive Surgery, Korea University College of Medicine) ;
  • Kim, Deok-Woo (Department of Plastic Surgery and Reconstructive Surgery, Korea University College of Medicine) ;
  • Dhong, Eun-Sang (Department of Plastic Surgery and Reconstructive Surgery, Korea University College of Medicine) ;
  • Yoon, Eul-Sik (Department of Plastic Surgery and Reconstructive Surgery, Korea University College of Medicine)
  • 투고 : 2011.03.23
  • 심사 : 2011.05.23
  • 발행 : 2011.07.10

초록

Purpose: Adipose-derived stromal cells (ASCs) are readily harvested from lipoaspirated tissue or subcutaneous adipose tissue fragments. The stromal vascular fraction (SVF) is a heterogeneous set of cell populations that surround and support adipose tissue, which includes the stromal cells, ASCs, that have the ability to differentiate into cells of several lineages and contains cells from the microvasculature. The mechanisms that drive the ASCs into the osteoblast lineage are still not clear, but the process has been more extensively studied in bone marrow stromal cells. The purpose of this study was to investigate the osteogenic capacity of adipose derived SVF cells and evaluate bone formation following implantation of SVF cells into the bone defect of human phalanx. Methods: Case 1 a 43-year-old male was wounded while using a press machine. After first operation, segmental bone defects of the left 3rd and 4th middle phalanx occurred. At first we injected the SVF cells combined with demineralized bone matrix (DBM) to defected 4th middle phalangeal bone lesion. We used P (L/DL)LA [Poly (70L-lactide-co-30DL-lactide) Co Polymer P (L/DL)LA] as a scaffold. Next, we implanted the SVF cells combined with DBM to repair left 3rd middle phalangeal bone defect in sequence. Case 2 was a 25-year-old man with crushing hand injury. Three months after the previous surgery, we implanted the SVF cells combined with DBM to restore right 3rd middle phalangeal bone defect by syringe injection. Radiographic images were taken at follow-up hospital visits and evaluated radiographically by means of computerized analysis of digital images. Results: The phalangeal bone defect was treated with autologous SVF cells isolated and applied in a single operative procedure in combination with DBM. The SVF cells were supported in place with mechanical fixation with a resorbable macroporous sheets acting as a soft tissue barrier. The radiographic appearance of the defect revealed a restoration to average bone density and stable position of pharyngeal bone. Densitometric evaluations for digital X-ray revealed improved bone densities in two cases with pharyngeal bone defects, that is, 65.2% for 4th finger of the case 1, 60.5% for 3rd finger of the case 1 and 60.1% for the case 2. Conclusion: This study demonstrated that adipose derived stromal vascular fraction cells have osteogenic potential in two clinical case studies. Thus, these reports show that cells from the SVF cells have potential in many areas of clinical cell therapy and regenerative medicine, albeit a lot of work is yet to be done.

키워드

참고문헌

  1. Yoon E, Dhar S, Chun DE, Gharibjanian NA, Evans GR: In vivo osteogenic potential of human adipose-derived stem cells/poly lactide-co-glycolic acid constructs for bone regeneration in a rat critical-sized calvarial defect model. Tissue Eng 13: 619, 2007 https://doi.org/10.1089/ten.2006.0102
  2. 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 7: 211, 2001 https://doi.org/10.1089/107632701300062859
  3. Dhar S, Yoon ES, Kachgal S, Evans GR: Long-term maintenance of neuronally differentiated human adipose tissue-derived stem cells. Tissue Eng 13: 2625, 2007 https://doi.org/10.1089/ten.2007.0017
  4. Dragoo JL, Lieberman JR, Lee RS, Deugarte DA, Lee Y, Zuk PA, Hedrick MH, Benhaim P: Tissue-engineered bone from BMP2-transduced stem cells derived from human fat. Plast Reconstr Surg 115: 1665, 2005 https://doi.org/10.1097/01.PRS.0000161459.90856.AB
  5. Rigotti G, Marchi A, Galie M, Baroni G, Benati D, Krampera M, Pasini A, Sbarbati A: Clinical treatment of radiotherapy tissue damage by lipoaspirate transplant: a healing process mediated by adipose-derived adult stem cells. Plast Reconstr Surg 119: 1409, 2007 https://doi.org/10.1097/01.prs.0000256047.47909.71
  6. Gonda K, Shigeura T, Sato T, Matsumoto D, Suga H, Inoue K, Aoi N, Kato H, Sato K, Murase S, Koshima I, Yoshimura K: Preserved proliferative capacity and multipotency of human adipose-derived stem cells after long-term cryopreservation. Plast Reconstr Surg 121: 401, 2008 https://doi.org/10.1097/01.prs.0000298322.70032.bc
  7. Lendeckel S, Jodicke A, Christophis P, Heidinger K, Wolff J, Fraser JK, Hedrick MH, Berthold L, Howaldt HP: Autologous stem cells (adipose) and fibrin glue used to treat widespread traumatic calvarial defects: case report. J Craniomaxillofac Surg 32: 370, 2004 https://doi.org/10.1016/j.jcms.2004.06.002
  8. Al-Sukhun J, Tornwall J, Lindqvist C, Kontio R: Bioresorbable poly-L/DL-lactide (P[L/DL]LA70/30) plates are reliable for repairing large inferior orbital wall bony defects:a pilot study. J Oral Maxillofac Surg 64: 47, 2006
  9. Hattori H, Sato M, Masuoka K, Ishihara M, Kikuchi T, Matsui T, Takase B, Ishizuka T, Kikuchi M, Fujikawa K, Ishihara M: Osteogenic potential of human adipose tissue-derived stromal cells as an alternative stem cell source. Cells Tissues Organs 178: 2, 2004 https://doi.org/10.1159/000081088
  10. Leupold JA, Barfield WR, An YH, Hartsock LA: Acomparison of ProOsteon, DBX, and collagraft in a rabbit model. J Biomed Mater Res B Appl Biomater 79: 292, 2006
  11. Landes CA, Ballon A, Roth C: Maxillary and mandibular osteosyntheses with PLGA and P (L/DL)LA implants: a 5-year inpatient biocompatibility and degradation experience. Plast Reconstr Surg 117: 2347, 2006 https://doi.org/10.1097/01.prs.0000218787.49887.73
  12. Morea C, Dominguez GC, Coutinho A, Chilvarquer I: Quantitative analysis of bone density in direct digital radiographs evaluated by means of computerized analysis of digital images. Dentomaxillofac Radiol 39: 356, 2010 https://doi.org/10.1259/dmfr/13093703
  13. Rhee SC, Ji YH, Gharibjanian NA, Dhong ES, Park SH, Yoon ES: In vivo evaluation of mixtures of uncultured freshly isolated adipose-derived stem cells and demineralized bone matrix for bone regeneration in a rat critically sized calvarial defect model. Stem Cells Dev 20: 233, 2011 https://doi.org/10.1089/scd.2009.0525