Skip to main content
Top
Published in: Child's Nervous System 9/2006

01-09-2006 | Original Paper

Osteogenesis induced by autologous bone marrow cells transplant in the pediatric skull

Authors: Francesco Velardi, Paolina R. Amante, Maurizio Caniglia, Giulio De Rossi, PierPaolo Gaglini, Giancarlo Isacchi, Paolo Palma, Emidio Procaccini, Francesco Zinno

Published in: Child's Nervous System | Issue 9/2006

Login to get access

Abstract

Background and purpose

The ability of cranial bone to repair defects of continuity is limited and it is mostly dependent on the age of the patient. In infancy and in early pediatric age, the scarce thickness of the calvarial bones and the need for a harmonic development of the child’s skull limit the application of most of the surgical procedures usually utilized in older patients. We tested the ability of mononucleated cells, derived from the patient’s bone marrow and transplanted on the site of the cranial bone defect, to increase the rate of mineralization of the autologous osteogenesis to obtain the complete restoration of the skull continuity.

Method

Four children, aged 26, 28, 37, and 79 months, respectively, affected by a stabilized and persistent cranial bone defect of posttraumatic or postsurgical origin, were treated. A sandwich-shaped shell, made of extrused absorbable polylactic copolymers material, was used to hold in place a freeze-dried mineralized collagen matrix associated with a nonceramic hydroxyapatite scaffold, where autologous bone marrow mononucleated cells were inseminated.

Results

In all patients, a rapid autologous bone osteogenesis was observed with a clear dimensional reduction of the bone defect few months after the autologous bone marrow cells seeding.

Conclusions

The preliminary results of this research suggest the use of autologous bone marrow cells to increase the autologous osteogenesis in early pediatric age in cases in which correction of skull bone defects is best realized with autologous bone.
Literature
1.
go back to reference Ashammakhi N, Mäkelä EA, Vihtonen K (1995) Repair of bone defects with absorbable membranes: an experimental study on rabbits. Ann Chir Gynaecol 84:309–315PubMed Ashammakhi N, Mäkelä EA, Vihtonen K (1995) Repair of bone defects with absorbable membranes: an experimental study on rabbits. Ann Chir Gynaecol 84:309–315PubMed
2.
go back to reference Ashammakhi N, Mäkelä EA, Vihtonen K (1994) The effect of self-reinforced polyglycolide membrane on metaphyseal bone: an experimental study on rats. Ann Chir Gynaecol 83:228–234 Ashammakhi N, Mäkelä EA, Vihtonen K (1994) The effect of self-reinforced polyglycolide membrane on metaphyseal bone: an experimental study on rats. Ann Chir Gynaecol 83:228–234
3.
go back to reference Bruder SP, Jaiswal N (1996) The osteogenic potential of human mesenchymal stem cells is not diminished after one billion-fold expansion in vitro. Trans Orthop Res Soc 21:580 Bruder SP, Jaiswal N (1996) The osteogenic potential of human mesenchymal stem cells is not diminished after one billion-fold expansion in vitro. Trans Orthop Res Soc 21:580
4.
go back to reference Bruder SP, Jaiswal N, Haynesworth SE (1997) Growth kinetics, self renewed and osteogenic potential of purified human mesenchymal stem cells during extensive subcultivation and following cryopreservation. J Cell Biochem 64:278–294PubMedCrossRef Bruder SP, Jaiswal N, Haynesworth SE (1997) Growth kinetics, self renewed and osteogenic potential of purified human mesenchymal stem cells during extensive subcultivation and following cryopreservation. J Cell Biochem 64:278–294PubMedCrossRef
5.
go back to reference Bruder SP, Kurth AA, Shea M (1998) Bone regeneration by implantation of purified culture expanded human mesenchymal stem cells. J Orthop Res 16:155–162PubMedCrossRef Bruder SP, Kurth AA, Shea M (1998) Bone regeneration by implantation of purified culture expanded human mesenchymal stem cells. J Orthop Res 16:155–162PubMedCrossRef
6.
go back to reference Bruder SP, Jaiswal N, Ricalton NS (1998) Mesenchymal stem cells in osteobiology and applied bone regeneration. Clin Orthop Relat Res 355S:S247–S256CrossRef Bruder SP, Jaiswal N, Ricalton NS (1998) Mesenchymal stem cells in osteobiology and applied bone regeneration. Clin Orthop Relat Res 355S:S247–S256CrossRef
7.
go back to reference Buser D, Dula K, Belser UC, Hirt HP, Berthold H (1996) Lateral ridge augmentation using autografts and barrier membranes: a clinical study with 40 partially edentulous patients. J Oral Maxillofac Surg 54:430–432CrossRef Buser D, Dula K, Belser UC, Hirt HP, Berthold H (1996) Lateral ridge augmentation using autografts and barrier membranes: a clinical study with 40 partially edentulous patients. J Oral Maxillofac Surg 54:430–432CrossRef
8.
go back to reference Caplan AI, Bruder SP (1997) In: Lanza RP, Langer R, Chick WL (eds) Cell and molecular engineering of bone regeneration. Principles of tissue engineering. Academic, New York, pp 603–618 Caplan AI, Bruder SP (1997) In: Lanza RP, Langer R, Chick WL (eds) Cell and molecular engineering of bone regeneration. Principles of tissue engineering. Academic, New York, pp 603–618
9.
go back to reference Cohen AJ, Dickerman RD, Schneider SJ (2004) New method of pediatric cranioplasty for skull defect utilizing polylactic acid absorbable plates and carbonated apatite bone cement. J Craniofac Surg 15(3):469–472 (May)PubMedCrossRef Cohen AJ, Dickerman RD, Schneider SJ (2004) New method of pediatric cranioplasty for skull defect utilizing polylactic acid absorbable plates and carbonated apatite bone cement. J Craniofac Surg 15(3):469–472 (May)PubMedCrossRef
10.
go back to reference Fiorellini J, EngebretsonS, Donath K, Weber H (1998) Guided bone regeneration utilizing expanded polytetrafluoroethylene membranes in combination with submerged and nonsubmerged dental implants in beagle dogs. J Periodontol 69:528–535PubMed Fiorellini J, EngebretsonS, Donath K, Weber H (1998) Guided bone regeneration utilizing expanded polytetrafluoroethylene membranes in combination with submerged and nonsubmerged dental implants in beagle dogs. J Periodontol 69:528–535PubMed
11.
go back to reference Friedenstein AJ, Piatetzky-Shapiro IJ, Petrakova KV (1966) Osteogenesis in transplants of bone marrow cells. PubMed Friedenstein AJ, Piatetzky-Shapiro IJ, Petrakova KV (1966) Osteogenesis in transplants of bone marrow cells. PubMed
12.
go back to reference Hämmerle CHF, Chiantella GC, Karring T, Lang NP (1998) The effect of a deproteinized bovine bone mineral on bone regeneration around titanium dental implants. Clin Oral Implants Res 9:151–162PubMedCrossRef Hämmerle CHF, Chiantella GC, Karring T, Lang NP (1998) The effect of a deproteinized bovine bone mineral on bone regeneration around titanium dental implants. Clin Oral Implants Res 9:151–162PubMedCrossRef
14.
go back to reference Hirano H, Urist MR (1981) Bone-forming and bone-resorbing cell lines derived from bone marrow in tissue culture. Clin Orthop 154:234PubMed Hirano H, Urist MR (1981) Bone-forming and bone-resorbing cell lines derived from bone marrow in tissue culture. Clin Orthop 154:234PubMed
15.
go back to reference Horwitz EM, Prockop DJ, Fitzpatrick LA (1999) Transplantability and therapeutic effect of bone-marrow derived mesenchymal cells in children with osteogenesis imperfecta. Nat Med 5:309–313PubMedCrossRef Horwitz EM, Prockop DJ, Fitzpatrick LA (1999) Transplantability and therapeutic effect of bone-marrow derived mesenchymal cells in children with osteogenesis imperfecta. Nat Med 5:309–313PubMedCrossRef
16.
go back to reference Imai S, Kaksonen M, Raulo E (1998) Osteoblast recruitment and bone formation enhanced by cell matrix-associated heparin-binding growth-associated molecule (HB-GAM). J Cell Biol 143:1113–1128PubMedCrossRef Imai S, Kaksonen M, Raulo E (1998) Osteoblast recruitment and bone formation enhanced by cell matrix-associated heparin-binding growth-associated molecule (HB-GAM). J Cell Biol 143:1113–1128PubMedCrossRef
17.
go back to reference Itoh S, Kikuchi M, Koyama Y (2002) Development of an artificial vertebral body using a novel biomaterial, hydroxyapatite/collagen composite. Biomaterials 23:3919–3926PubMedCrossRef Itoh S, Kikuchi M, Koyama Y (2002) Development of an artificial vertebral body using a novel biomaterial, hydroxyapatite/collagen composite. Biomaterials 23:3919–3926PubMedCrossRef
18.
go back to reference Kassem M, Risteli L, Mosekilde L (1991) Formation of osteoblast-like cells from human mononuclear bone marrow cultures. APMIS 99:269–274PubMedCrossRef Kassem M, Risteli L, Mosekilde L (1991) Formation of osteoblast-like cells from human mononuclear bone marrow cultures. APMIS 99:269–274PubMedCrossRef
19.
go back to reference Kim Th, Jannetta C, Vacanti JP (1995) Engineered bone from polyglycolic acid polymer scaffold and periosteum. Mater Res Soc Symp Proc 394:91–97 Kim Th, Jannetta C, Vacanti JP (1995) Engineered bone from polyglycolic acid polymer scaffold and periosteum. Mater Res Soc Symp Proc 394:91–97
20.
go back to reference Kuboki Y, Jin Q, Takita H (2001) Geometry of carriers controlling phenotypic Expression in BMP-induced osteogenesis and chondrogenesis. J Bone Jt Surg 83-A(Suppl 1):S1105–S1115 Kuboki Y, Jin Q, Takita H (2001) Geometry of carriers controlling phenotypic Expression in BMP-induced osteogenesis and chondrogenesis. J Bone Jt Surg 83-A(Suppl 1):S1105–S1115
21.
go back to reference Kuznetsov SA, Krebsbach PH, Satomura K (1997) Single-colony-derived strains of human marrow stromal fibroblasts from bone alter transplantation in vivo. J Bone Miner Res 12:1335–1347PubMedCrossRef Kuznetsov SA, Krebsbach PH, Satomura K (1997) Single-colony-derived strains of human marrow stromal fibroblasts from bone alter transplantation in vivo. J Bone Miner Res 12:1335–1347PubMedCrossRef
22.
go back to reference Locoeur L, Ouhayoun JP (1997) In vivo induction of osteogenic differentiation from non-osteogenic mesenchymal cells. Biomaterials 18:989–993CrossRef Locoeur L, Ouhayoun JP (1997) In vivo induction of osteogenic differentiation from non-osteogenic mesenchymal cells. Biomaterials 18:989–993CrossRef
23.
go back to reference Owen M (1988) Marrow stromal stem cells. J Cell Sci 10(Suppl):63–76 Owen M (1988) Marrow stromal stem cells. J Cell Sci 10(Suppl):63–76
24.
go back to reference Partridge K, Yang X, Clarke N (2002) Adenoviral BMP-2 gene transfer in mesenchymal stem cells: in vitro and in vivo bone formation on biodegradable polymer scaffolds. Biochem Biophys Res Comm 292:144–152PubMedCrossRef Partridge K, Yang X, Clarke N (2002) Adenoviral BMP-2 gene transfer in mesenchymal stem cells: in vitro and in vivo bone formation on biodegradable polymer scaffolds. Biochem Biophys Res Comm 292:144–152PubMedCrossRef
25.
go back to reference Pittenger MF, Mackay AM, Beck SC (1999) Multilineage potential of adult human mesenchymal stem cells. Science 284:143–147PubMedCrossRef Pittenger MF, Mackay AM, Beck SC (1999) Multilineage potential of adult human mesenchymal stem cells. Science 284:143–147PubMedCrossRef
26.
go back to reference Puelacher WC, Vacanti JP, Ferraro NF (1996) Femoral shaft reconstruction using tissue-engineered growth of bone. Int J Oral Maxillofac Surg 25:223–228PubMedCrossRef Puelacher WC, Vacanti JP, Ferraro NF (1996) Femoral shaft reconstruction using tissue-engineered growth of bone. Int J Oral Maxillofac Surg 25:223–228PubMedCrossRef
27.
go back to reference Reedy BK, Pan F, Kim WS, Gannon FH, Krasinskas A, Bartlett SP (1999) Properties of coralline hydroxyapatite and expanded polytetrafluoroethylene membrane in the immature craniofacial skeleton. Plast Reconstr Surg 103:20PubMedCrossRef Reedy BK, Pan F, Kim WS, Gannon FH, Krasinskas A, Bartlett SP (1999) Properties of coralline hydroxyapatite and expanded polytetrafluoroethylene membrane in the immature craniofacial skeleton. Plast Reconstr Surg 103:20PubMedCrossRef
28.
go back to reference Rickard DJ, Kassem M, Hefferan TE (1996) Isolation and characterization of osteoblast precursor cells from human bone marrow. J Bone Miner Res 11:312–332PubMedCrossRef Rickard DJ, Kassem M, Hefferan TE (1996) Isolation and characterization of osteoblast precursor cells from human bone marrow. J Bone Miner Res 11:312–332PubMedCrossRef
29.
go back to reference Ripamonti U, Crooks J, Rueger D (2001) Induction of bone formation by recombinant human osteogenic protein-1 and sintered porous hydroxyapatite in adult pimates. Plast Reconstr Surg 107:977–988PubMedCrossRef Ripamonti U, Crooks J, Rueger D (2001) Induction of bone formation by recombinant human osteogenic protein-1 and sintered porous hydroxyapatite in adult pimates. Plast Reconstr Surg 107:977–988PubMedCrossRef
30.
go back to reference Sirola K (1960) Regeneration of defects in the calvaria. Ann Med Exp Biol Fenn 38(Suppl 2):1PubMed Sirola K (1960) Regeneration of defects in the calvaria. Ann Med Exp Biol Fenn 38(Suppl 2):1PubMed
31.
go back to reference Tabata Y, Yamada K, Miyamoto S (1998) Bone regeneration by basic fibroblast growth factor complexed with biodegradable hydrogels. Biomaterials 19:807–815PubMedCrossRef Tabata Y, Yamada K, Miyamoto S (1998) Bone regeneration by basic fibroblast growth factor complexed with biodegradable hydrogels. Biomaterials 19:807–815PubMedCrossRef
32.
go back to reference Thomson RC, Mikos AG, Beahm E (1999) Guided tissue fabrication from periosteum using preformed biodegradable polymer scaffolds. Biomaterials 20:2007–2018PubMedCrossRef Thomson RC, Mikos AG, Beahm E (1999) Guided tissue fabrication from periosteum using preformed biodegradable polymer scaffolds. Biomaterials 20:2007–2018PubMedCrossRef
33.
go back to reference Uemura T, Dong J, Wang Y (2003) Transplantation of cultured bone cells using combinations of scaffolds and culture techniques. Biomaterials 24:2277–2286PubMedCrossRef Uemura T, Dong J, Wang Y (2003) Transplantation of cultured bone cells using combinations of scaffolds and culture techniques. Biomaterials 24:2277–2286PubMedCrossRef
34.
go back to reference Urist MR, Grant TT, Lindholm ST (1979) Induction of new bone formation in the host bed by human bone-tumor transplant in athymic nude mice. J Bone Jt Surg 61A:1207 Urist MR, Grant TT, Lindholm ST (1979) Induction of new bone formation in the host bed by human bone-tumor transplant in athymic nude mice. J Bone Jt Surg 61A:1207
35.
go back to reference Vacanti JP, Langer R (1999) Tissue engineering: the design and fabrication of living replacement devices for surgical reconstruction and transplantation. Lancet 354(Suppl):S131–S134 Vacanti JP, Langer R (1999) Tissue engineering: the design and fabrication of living replacement devices for surgical reconstruction and transplantation. Lancet 354(Suppl):S131–S134
36.
go back to reference Vesala AL, Kallioinen MJ, Vithonen K (2000) Poly-l-lactic acid plate for covering of small cranial bone holes: an experimental study in rabbits. Eur J Plast Surg 23:36–38CrossRef Vesala AL, Kallioinen MJ, Vithonen K (2000) Poly-l-lactic acid plate for covering of small cranial bone holes: an experimental study in rabbits. Eur J Plast Surg 23:36–38CrossRef
37.
go back to reference Vesala AL, Kallioinen MJ, Törmälä P (2002) Bone tissue engineering: treatment of cranial bone defects in rabbits using self-reinforced poly-l,d-lactide 96/4 sheets. J Craniofac Surg 13:607–613PubMedCrossRef Vesala AL, Kallioinen MJ, Törmälä P (2002) Bone tissue engineering: treatment of cranial bone defects in rabbits using self-reinforced poly-l,d-lactide 96/4 sheets. J Craniofac Surg 13:607–613PubMedCrossRef
38.
go back to reference Vuola J, Göransson H, Böhling T, Asko-Seljavaara S (1996) Bone marrow induced osteogenesis in hydroxiapatite and calcium carbonate implants. Biomaterials 17:1761–1766PubMedCrossRef Vuola J, Göransson H, Böhling T, Asko-Seljavaara S (1996) Bone marrow induced osteogenesis in hydroxiapatite and calcium carbonate implants. Biomaterials 17:1761–1766PubMedCrossRef
39.
go back to reference Woo BH, Fink BF, Page R (2001) Enhancement of bone growth by sustained delivery of recombinant human bone morphogenetic protein-2 in a polymeric matrix. Pharm Res 18:1747–1753PubMedCrossRef Woo BH, Fink BF, Page R (2001) Enhancement of bone growth by sustained delivery of recombinant human bone morphogenetic protein-2 in a polymeric matrix. Pharm Res 18:1747–1753PubMedCrossRef
Metadata
Title
Osteogenesis induced by autologous bone marrow cells transplant in the pediatric skull
Authors
Francesco Velardi
Paolina R. Amante
Maurizio Caniglia
Giulio De Rossi
PierPaolo Gaglini
Giancarlo Isacchi
Paolo Palma
Emidio Procaccini
Francesco Zinno
Publication date
01-09-2006
Publisher
Springer-Verlag
Published in
Child's Nervous System / Issue 9/2006
Print ISSN: 0256-7040
Electronic ISSN: 1433-0350
DOI
https://doi.org/10.1007/s00381-006-0100-0

Other articles of this Issue 9/2006

Child's Nervous System 9/2006 Go to the issue