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1
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0028340485
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The mesengenic process
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Caplan AI: The mesengenic process. Clin Plast Surg 1994, 21:429-435.
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Clin Plast Surg
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Caplan, A.I.1
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2
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0026578530
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Characterization of cells with osteogenic potential from human marrow
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Haynesworth SE, Goshima J, Goldberg VM, Caplan AI: Characterization of cells with osteogenic potential from human marrow. Bone 1992, 13:81-88.
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Bone
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Haynesworth, S.E.1
Goshima, J.2
Goldberg, V.M.3
Caplan, A.I.4
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3
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0026228558
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Mesenchymal stem cells
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Caplan AI: Mesenchymal stem cells. J Orthop Res 1991, 9:641-650.
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J Orthop Res
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Caplan, A.I.1
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4
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0031012411
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Osteogenic differentiation of purified, culture-expanded human mesenchymal stem cells in vitro
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Jaiswal N, Haynesworth SE, Caplan AI, Bruder SP: Osteogenic differentiation of purified, culture-expanded human mesenchymal stem cells in vitro. J Cell Biochem 1997, 64:295-312.
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J Cell Biochem
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Jaiswal, N.1
Haynesworth, S.E.2
Caplan, A.I.3
Bruder, S.P.4
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5
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0030947661
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Culture-expanded, bone marrow-derived mesenchymal stem cells can regenerate a critical-sized segmental bone defect
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Kadiyala S, Jaiswal N, Bruder SP: Culture-expanded, bone marrow-derived mesenchymal stem cells can regenerate a critical-sized segmental bone defect. Tissue Engineering 1997, 3:173-185. An elegant study describing the use of bone marrow-derived mesenchymal stem cells in the repair of bone defects.
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Tissue Engineering
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Kadiyala, S.1
Jaiswal, N.2
Bruder, S.P.3
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6
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Dexamethasone induction of osteoblast mRNAs in rat marrow stromal cell cultures
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Leboy PS, Beresford JN, Devlin C, Owen ME: Dexamethasone induction of osteoblast mRNAs in rat marrow stromal cell cultures. J Cell Physiol 1991, 146:370-378.
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J Cell Physiol
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Leboy, P.S.1
Beresford, J.N.2
Devlin, C.3
Owen, M.E.4
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7
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0028075092
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Bone morphogenetic protein 2 stimulates osteogenesis but does not affect chondrogenesis in osteochondrogenic differentiation of periosteum-derived cells
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Iwasaki M, Nakahara H, Nakase T, Kimura T, Takoka K, Caplan AI, Ono K: Bone morphogenetic protein 2 stimulates osteogenesis but does not affect chondrogenesis in osteochondrogenic differentiation of periosteum-derived cells. J Bone Miner Res 1994, 9:1195-1204.
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J Bone Miner Res
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Iwasaki, M.1
Nakahara, H.2
Nakase, T.3
Kimura, T.4
Takoka, K.5
Caplan, A.I.6
Ono, K.7
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8
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0025027290
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In vivo osteochondrogenic potential of cultured cells derived from the periosteum
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Nakahara H, Bruder SP, Goldberg VM, Caplan AI. In vivo osteochondrogenic potential of cultured cells derived from the periosteum. Clin Orthop 1990, 259:223-232.
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Clin Orthop
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Nakahara, H.1
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Goldberg, V.M.3
Caplan, A.I.4
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9
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0031939414
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Tissue engineered bone repair of calvarial defects using cultured periosteal cells
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Breitbart AS, Grande DA, Kessler R, Ryaby JT, Fitzsimmons RJ, Grant RT: Tissue engineered bone repair of calvarial defects using cultured periosteal cells. Plast Reconstr Surg 1998, 101:567-574. An important study demonstrating the osteogenic potential of cultured periosteal cells and their successful use in the repair of bone defects.
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Plast Reconstr Surg
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Breitbart, A.S.1
Grande, D.A.2
Kessler, R.3
Ryaby, J.T.4
Fitzsimmons, R.J.5
Grant, R.T.6
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10
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The repair of bone defects using periosteal tissue constructs
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Grande DA, Breitbart AS, Manji R, Khalfan S, Paulino C, Ryaby JT, et al.: The repair of bone defects using periosteal tissue constructs. Trans Orthop Res Soc 1996, 21:616.
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Trans Orthop Res Soc
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Grande, D.A.1
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Manji, R.3
Khalfan, S.4
Paulino, C.5
Ryaby, J.T.6
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11
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0024634654
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The repair of experimentally produced defects in rabbit articular cartilage by autologous chondrocyte transplantation
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Grande DA, Pitman MI, Peterson L, Menche D, Klein M: The repair of experimentally produced defects in rabbit articular cartilage by autologous chondrocyte transplantation. J Orthop Rel Res 1989, 7:208-218,
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J Orthop Rel Res
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Grande, D.A.1
Pitman, M.I.2
Peterson, L.3
Menche, D.4
Klein, M.5
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12
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0028128830
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Cartilage engineered in predetermined shapes employing cell transplantation on synthetic biodegradable polymers
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2. Kim WS, Vacanti CA, Cima LG, Mooney D, Upton J, Puelacher WC, Vacanti JP: Cartilage engineered in predetermined shapes employing cell transplantation on synthetic biodegradable polymers. Plast Reconstr Surg 1994, 94:233-237.
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Plast Reconstr Surg
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Kim, W.S.1
Vacanti, C.A.2
Cima, L.G.3
Mooney, D.4
Upton, J.5
Puelacher, W.C.6
Vacanti, J.P.7
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13
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Experimental tracheal replacement using tissue-engineered cartilage
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Vacanti CA, Paige KT, Kim WS, Sakata J, Upton J, Vacanti JP: Experimental tracheal replacement using tissue-engineered cartilage. J Pediatr Surg 1994, 29:201-205.
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J Pediatr Surg
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Vacanti, C.A.1
Paige, K.T.2
Kim, W.S.3
Sakata, J.4
Upton, J.5
Vacanti, J.P.6
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14
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0027971334
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Temporomandibular joint disc replacement made by tissue-engineered growth of cartilage
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Puelacher WC, Wisser J, Vacanti CA, Ferraro NF, Jaramillo D, Vacanti JP: Temporomandibular joint disc replacement made by tissue-engineered growth of cartilage. J Oral Maxillofac Surg 1994, 52:1172-1177.
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J Oral Maxillofac Surg
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Puelacher, W.C.1
Wisser, J.2
Vacanti, C.A.3
Ferraro, N.F.4
Jaramillo, D.5
Vacanti, J.P.6
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15
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0030726664
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Transplantation of chondrocytes utilizing a polymer-cell construct to produce tissue-engineered cartilage in the shape of a human ear
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Cao Y, Vacanti JP, Paige KT, Upton J, Vacanti CA: Transplantation of chondrocytes utilizing a polymer-cell construct to produce tissue-engineered cartilage in the shape of a human ear. Plast Reconstr Surg 1997, 100:297-302. An interesting study showing the feasibility of engineering complex cartilage shapes using cultured chondrocytes.
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Plast Reconstr Surg
, vol.100
, pp. 297-302
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Cao, Y.1
Vacanti, J.P.2
Paige, K.T.3
Upton, J.4
Vacanti, C.A.5
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16
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Injectable cartilage
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Paige KT, Cima LG, Yaremchuk MJ, Vacanti JP, Vacanti CA: Injectable cartilage. Plast Reconstr Surg 1995, 96:1390-1398.
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Plast Reconstr Surg
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Paige, K.T.1
Cima, L.G.2
Yaremchuk, M.J.3
Vacanti, J.P.4
Vacanti, C.A.5
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17
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0028236527
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Mesenchymal cell-based repair of large full-thickness defects of articular cartilage
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Wakitani S, Goto T, Pineda SJ, Young RG, Mansour JM, Caplan AI, Goldberg VM: Mesenchymal cell-based repair of large full-thickness defects of articular cartilage. J Bone Joint Surg Am 1994, 76:579-592.
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J Bone Joint Surg Am
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Wakitani, S.1
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Pineda, S.J.3
Young, R.G.4
Mansour, J.M.5
Caplan, A.I.6
Goldberg, V.M.7
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18
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Repair of articular cartilage using mesenchymal stem cells
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Grande DA, Southerland SS, Manji R, Pate DW, Schwartz RE, Lucas PA: Repair of articular cartilage using mesenchymal stem cells. Tissue Eng 1995, 1:345-353.
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Tissue Eng
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Grande, D.A.1
Southerland, S.S.2
Manji, R.3
Pate, D.W.4
Schwartz, R.E.5
Lucas, P.A.6
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19
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0027480320
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Transforming growth factor-β 1 stimulates chondrogenesis and inhibits osteogenesis in high density cultures of periosteum-derived cells
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Iwasaki M, Nakata K, Nakahara H, Nakase T, Kimura T, Kimata K, Caplan AI, Ono K: Transforming growth factor-β 1 stimulates chondrogenesis and inhibits osteogenesis in high density cultures of periosteum-derived cells. Endocrinology 1993, 132:1603-1608.
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Endocrinology
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Iwasaki, M.1
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Kimura, T.5
Kimata, K.6
Caplan, A.I.7
Ono, K.8
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20
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The use of periosteal cell/polymer tissue constructs for the repair of articular cartilage defects
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Rich D, Johnson E, Zhou L, Grande D: The use of periosteal cell/polymer tissue constructs for the repair of articular cartilage defects. Trans Orthop Res Soc 1994, 19:241.
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Trans Orthop Res Soc
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Rich, D.1
Johnson, E.2
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21
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0012483281
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Growth of cultured human epidermal cells into multiple epithelia suitable for grafting
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Green H, Kehinde O, Thomas J: Growth of cultured human epidermal cells into multiple epithelia suitable for grafting. Proc Natl Acad Sci U S A 1979, 76:5665-5668.
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Current concepts in the development of cultured skin replacements
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Rennekampff HO, Kiessig V, Hansbrough JF: Current concepts in the development of cultured skin replacements. J Surg Res 1996, 288-295. An excellent review of the history and current status of cultured skin substitutes.
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J Surg Res
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Rennekampff, H.O.1
Kiessig, V.2
Hansbrough, J.F.3
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0029053696
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Use of an acellular allograft dermal matrix (AlloDerm) in the management of full-thickness bums
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Wainwright DJ: Use of an acellular allograft dermal matrix (AlloDerm) in the management of full-thickness bums. Burns 1995, 21:243-248.
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Burns
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Burn wound closure with cultured autologous keratinocytes and fibroblasts attached to a collagen-glycosaminoglycan substrate
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Hansbrough JF, Boyce ST, Cooper ML, Foreman TJ: Burn wound closure with cultured autologous keratinocytes and fibroblasts attached to a collagen-glycosaminoglycan substrate. JAMA 1989, 262:2125-2130.
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Hansbrough, J.F.1
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25
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0026650508
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Evaluation of a biodegradable matrix containing cultured human fibroblasts as a dermal replacement beneath meshed skin grafts on athymic mice
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Hansbrough JF, Cooper ML, Cohen R, Spielvogel R, Greenleaf G, Bartel RL, Naughton G: Evaluation of a biodegradable matrix containing cultured human fibroblasts as a dermal replacement beneath meshed skin grafts on athymic mice. Surgery 1992, 111:438-446.
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Surgery
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Hansbrough, J.F.1
Cooper, M.L.2
Cohen, R.3
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Greenleaf, G.5
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Naughton, G.7
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26
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0026781128
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Clinical trials of a living dermal tissue replacement placed beneath meshed, split-thickness skin grafts on excised burn wounds
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Hansbrough JF, Dore C, Hansbrough WB: Clinical trials of a living dermal tissue replacement placed beneath meshed, split-thickness skin grafts on excised burn wounds. J Burn Care Rehabil 1992, 13:519-529.
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Hansbrough, J.F.1
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