Non Union Fracture Clinical Trial
— AMSCOfficial title:
Potency of Allogenic Bone Marrow, Umbilical Cord, Adipose Mesenchymal Stem Cell for Non Union Fracture and Long Bone Defect, Directly and Cryopreserved
Mesenchymal stem cell (MSC) is one kind of stem cell which is gained form adult tissue.
Although MSC derived from autogenic bone marrow are proven to help regeneration in non union
fracture and long bone defect, the aspiration process through iliac crest is invasive and
painful.
Therefore, alternative source of MSC which is less invasive is needed. Adipose and umbilical
cord is a "waste product" that proven to contain enormous MSC. Furthermore adipose and
umbilical cord as an allogenic source is more abundant in number compares to autogenic bone
marrow. This enormous source need and adequate preservation technique before applied to the
patient. According to that, researchers want to explore the potency of MSC from bone marrow,
umbilical cord and adipose as the source of allogenic MSC and the effect of cryopreservation
technique to the viability and quality of MSC. We will also compare the effectivity of MSC
implantation from bone marrow, umbilical cord and adipose applied to non union fracture and
long bone defect.
Samples from bone marrow, umbilical cord and adipose are cultured and the viability of the
cells are observed. Some of the cells are implanted directly to the patient with non union
fractures and long bone defect while some are cryopreserved in liquid nitrogen -190 degree
Celsius in three months. All samples are thawed and the viability of the cells are observed.
Patient who are implanted by MSC allogenic will undergo clinical and radiological
examination in the third, sixth and twenty second month after implantation.
Status | Recruiting |
Enrollment | 9 |
Est. completion date | December 2017 |
Est. primary completion date | December 2017 |
Accepts healthy volunteers | Accepts Healthy Volunteers |
Gender | Both |
Age group | 19 Years to 30 Years |
Eligibility |
Inclusion criteria for MSC donor - Bone marrow donor : Male/female aged 19-30 year without any comorbiditites (Diabetes mellitus, cardiovascular and any other autoimmune disease),HIV test Hepatitis B test and Hepatitis C test are negaitve, no fungal and bacterial contamination in the bone marrow. Subjects are willing to be aspiratied in the iliac crest in order to get the bone marrow. - Adipose donor : Adipose tissue are gained from liposuction or open reduction internal fixation procedure. Samples of adipose are free from HIV, Hepatitis B, Hepatitis C and free from fungal and bacterial contamination. - Umbilical cord donor : Umbilical cord are form elective seccio caecaria from a fullterm mother without any complications and free from HIV, hepatitis B, hepatitis C and no fungal and bacterial contamination. exclusion / Drop out criteria -Patients are ruled out from this study if he/she stated to do so in the time this research are held or she/he undergoes any other threatment that are not related to this study. Patient who does not show any clinical improvement in three consecutive months is categorized as failed to threat. All drop out and failed to threat patient could get other threatment. inclusion criteria for recipient : -male/female aged 6-55 year old with bone critical defect exclusion criteria for recipient : -Patients with pathological fracture caused by malignancy, immunocompromised ( HIV AIDS, Diabetes mellitus, active Hepatitis), in a immunosuppresant therapy ( chemotherapy or steroids). |
Endpoint Classification: Safety/Efficacy Study, Intervention Model: Single Group Assignment, Masking: Open Label, Primary Purpose: Treatment
Country | Name | City | State |
---|---|---|---|
Indonesia | University of Indonesia | Jakarta Pusat | Jakarta |
Indonesia | Faculty of Medicine, University of Indonesia | Propinsi DKI Jakarta | Jakarta |
Lead Sponsor | Collaborator |
---|---|
Indonesia University |
Indonesia,
Angelo PC, Ferreira AC, Fonseca VD, Frade SP, Ferreira CS, Malta FS, Pereira AK, Leite HV, Brum AP, Pardini VC, Gomes KB, Cabral AC. Cryopreservation does not alter karyotype, multipotency, or NANOG/SOX2 gene expression of amniotic fluid mesenchymal stem — View Citation
Arinzeh TL, Peter SJ, Archambault MP, van den Bos C, Gordon S, Kraus K, Smith A, Kadiyala S. Allogeneic mesenchymal stem cells regenerate bone in a critical-sized canine segmental defect. J Bone Joint Surg Am. 2003 Oct;85-A(10):1927-35. — View Citation
Bernardo ME, Emons JA, Karperien M, Nauta AJ, Willemze R, Roelofs H, Romeo S, Marchini A, Rappold GA, Vukicevic S, Locatelli F, Fibbe WE. Human mesenchymal stem cells derived from bone marrow display a better chondrogenic differentiation compared with oth — View Citation
Bocelli-Tyndall C, Bracci L, Spagnoli G, Braccini A, Bouchenaki M, Ceredig R, Pistoia V, Martin I, Tyndall A. Bone marrow mesenchymal stromal cells (BM-MSCs) from healthy donors and auto-immune disease patients reduce the proliferation of autologous- and allogeneic-stimulated lymphocytes in vitro. Rheumatology (Oxford). 2007 Mar;46(3):403-8. Epub 2006 Aug 18. — View Citation
Brinker MR, O'Connor DP. The incidence of fractures and dislocations referred for orthopaedic services in a capitated population. J Bone Joint Surg Am. 2004 Feb;86-A(2):290-7. — View Citation
Bruder SP, Kraus KH, Goldberg VM, Kadiyala S. The effect of implants loaded with autologous mesenchymal stem cells on the healing of canine segmental bone defects. J Bone Joint Surg Am. 1998 Jul;80(7):985-96. — View Citation
Cavallo C, Cuomo C, Fantini S, Ricci F, Tazzari PL, Lucarelli E, Donati D, Facchini A, Lisignoli G, Fornasari PM, Grigolo B, Moroni L. Comparison of alternative mesenchymal stem cell sources for cell banking and musculoskeletal advanced therapies. J Cell — View Citation
Dariolli R, Bassaneze V, Nakamuta JS, Omae SV, Campos LC, Krieger JE. Porcine adipose tissue-derived mesenchymal stem cells retain their proliferative characteristics, senescence, karyotype and plasticity after long-term cryopreservation. PLoS One. 2013 J — View Citation
Goulet JA, Senunas LE, DeSilva GL, Greenfield ML. Autogenous iliac crest bone graft. Complications and functional assessment. Clin Orthop Relat Res. 1997 Jun;(339):76-81. — View Citation
Han ZX, Shi Q, Wang DK, Li D, Lyu M. [Basic biological characteristics of mesenchymal stem cells derived from bone marrow and human umbilical cord]. Zhongguo Shi Yan Xue Ye Xue Za Zhi. 2013 Oct;21(5):1248-55. doi: 10.7534/j.issn.1009-2137.2013.05.033. Chi — View Citation
Hee HT, Ismail HD, Lim CT, Goh JC, Wong HK. Effects of implantation of bone marrow mesenchymal stem cells, disc distraction and combined therapy on reversing degeneration of the intervertebral disc. J Bone Joint Surg Br. 2010 May;92(5):726-36. doi: 10.1302/0301-620X.92B5.23015. — View Citation
Hou ZL, Liu Y, Mao XH, Wei CY, Meng MY, Liu YH, Zhuyun Yang Z, Zhu H, Short M, Bernard C, Xiao ZC. Transplantation of umbilical cord and bone marrow-derived mesenchymal stem cells in a patient with relapsing-remitting multiple sclerosis. Cell Adh Migr. 20 — View Citation
Hu L, Hu J, Zhao J, Liu J, Ouyang W, Yang C, Gong N, Du L, Khanal A, Chen L. Side-by-side comparison of the biological characteristics of human umbilical cord and adipose tissue-derived mesenchymal stem cells. Biomed Res Int. 2013;2013:438243. doi: 10.115 — View Citation
Im GI, Shin YW, Lee KB. Do adipose tissue-derived mesenchymal stem cells have the same osteogenic and chondrogenic potential as bone marrow-derived cells? Osteoarthritis Cartilage. 2005 Oct;13(10):845-53. — View Citation
Jin HJ, Bae YK, Kim M, Kwon SJ, Jeon HB, Choi SJ, Kim SW, Yang YS, Oh W, Chang JW. Comparative analysis of human mesenchymal stem cells from bone marrow, adipose tissue, and umbilical cord blood as sources of cell therapy. Int J Mol Sci. 2013 Sep 3;14(9): — View Citation
Jurgens WJ, Oedayrajsingh-Varma MJ, Helder MN, Zandiehdoulabi B, Schouten TE, Kuik DJ, Ritt MJ, van Milligen FJ. Effect of tissue-harvesting site on yield of stem cells derived from adipose tissue: implications for cell-based therapies. Cell Tissue Res. 2 — View Citation
Kern S, Eichler H, Stoeve J, Klüter H, Bieback K. Comparative analysis of mesenchymal stem cells from bone marrow, umbilical cord blood, or adipose tissue. Stem Cells. 2006 May;24(5):1294-301. Epub 2006 Jan 12. — View Citation
Kon E, Muraglia A, Corsi A, Bianco P, Marcacci M, Martin I, Boyde A, Ruspantini I, Chistolini P, Rocca M, Giardino R, Cancedda R, Quarto R. Autologous bone marrow stromal cells loaded onto porous hydroxyapatite ceramic accelerate bone repair in critical-size defects of sheep long bones. J Biomed Mater Res. 2000 Mar 5;49(3):328-37. — View Citation
Liebergall M, Schroeder J, Mosheiff R, Gazit Z, Yoram Z, Rasooly L, Daskal A, Khoury A, Weil Y, Beyth S. Stem cell-based therapy for prevention of delayed fracture union: a randomized and prospective preliminary study. Mol Ther. 2013 Aug;21(8):1631-8. doi — View Citation
Liu LY, Chai JK, Duan HJ, Hou YS, Yin HN, Yu YH, Hu Q, Hao DF, Feng G, Li T, Du JD. [Comparison of different methods for the isolation of human umbilical cord mesenchymal stem cells]. Zhonghua Yi Xue Za Zhi. 2013 Aug 27;93(32):2592-6. Chinese. — View Citation
Lu Z, Wang G, Dunstan CR, Chen Y, Lu WY, Davies B, Zreiqat H. Activation and promotion of adipose stem cells by tumour necrosis factor-a preconditioning for bone regeneration. J Cell Physiol. 2013 Aug;228(8):1737-44. doi: 10.1002/jcp.24330. — View Citation
Matsumura K, Hayashi F, Nagashima T, Hyon SH. Long-term cryopreservation of human mesenchymal stem cells using carboxylated poly-l-lysine without the addition of proteins or dimethyl sulfoxide. J Biomater Sci Polym Ed. 2013;24(12):1484-97. doi: 10.1080/09 — View Citation
Mauney JR, Volloch V, Kaplan DL. Role of adult mesenchymal stem cells in bone tissue engineering applications: current status and future prospects. Tissue Eng. 2005 May-Jun;11(5-6):787-802. Review. — View Citation
Miao Z, Jin J, Chen L, Zhu J, Huang W, Zhao J, Qian H, Zhang X. Isolation of mesenchymal stem cells from human placenta: comparison with human bone marrow mesenchymal stem cells. Cell Biol Int. 2006 Sep;30(9):681-7. Epub 2006 Apr 22. — View Citation
Park M, Seo JJ. Role of HLA in Hematopoietic Stem Cell Transplantation. Bone Marrow Res. 2012;2012:680841. doi: 10.1155/2012/680841. Epub 2012 Oct 2. — View Citation
Parolini O, Alviano F, Bagnara GP, Bilic G, Bühring HJ, Evangelista M, Hennerbichler S, Liu B, Magatti M, Mao N, Miki T, Marongiu F, Nakajima H, Nikaido T, Portmann-Lanz CB, Sankar V, Soncini M, Stadler G, Surbek D, Takahashi TA, Redl H, Sakuragawa N, Wol — View Citation
Pittenger MF, Mackay AM, Beck SC, Jaiswal RK, Douglas R, Mosca JD, Moorman MA, Simonetti DW, Craig S, Marshak DR. Multilineage potential of adult human mesenchymal stem cells. Science. 1999 Apr 2;284(5411):143-7. — View Citation
Schubert T, Lafont S, Beaurin G, Grisay G, Behets C, Gianello P, Dufrane D. Critical size bone defect reconstruction by an autologous 3D osteogenic-like tissue derived from differentiated adipose MSCs. Biomaterials. 2013 Jun;34(18):4428-38. doi: 10.1016/j — View Citation
Sen MK, Miclau T. Autologous iliac crest bone graft: should it still be the gold standard for treating nonunions? Injury. 2007 Mar;38 Suppl 1:S75-80. Review. — View Citation
Shafiee A, Seyedjafari E, Soleimani M, Ahmadbeigi N, Dinarvand P, Ghaemi N. A comparison between osteogenic differentiation of human unrestricted somatic stem cells and mesenchymal stem cells from bone marrow and adipose tissue. Biotechnol Lett. 2011 Jun; — View Citation
Shoji T, Ii M, Mifune Y, Matsumoto T, Kawamoto A, Kwon SM, Kuroda T, Kuroda R, Kurosaka M, Asahara T. Local transplantation of human multipotent adipose-derived stem cells accelerates fracture healing via enhanced osteogenesis and angiogenesis. Lab Invest — View Citation
Thirumala S, Goebel WS, Woods EJ. Clinical grade adult stem cell banking. Organogenesis. 2009 Jul;5(3):143-54. — View Citation
Tipnis S, Viswanathan C, Majumdar AS. Immunosuppressive properties of human umbilical cord-derived mesenchymal stem cells: role of B7-H1 and IDO. Immunol Cell Biol. 2010 Nov-Dec;88(8):795-806. doi: 10.1038/icb.2010.47. Epub 2010 Apr 13. — View Citation
Toupadakis CA, Wong A, Genetos DC, Cheung WK, Borjesson DL, Ferraro GL, Galuppo LD, Leach JK, Owens SD, Yellowley CE. Comparison of the osteogenic potential of equine mesenchymal stem cells from bone marrow, adipose tissue, umbilical cord blood, and umbil — View Citation
Troyer DL, Weiss ML. Wharton's jelly-derived cells are a primitive stromal cell population. Stem Cells. 2008 Mar;26(3):591-9. Epub 2007 Dec 6. Review. — View Citation
Viateau V, Guillemin G, Bousson V, Oudina K, Hannouche D, Sedel L, Logeart-Avramoglou D, Petite H. Long-bone critical-size defects treated with tissue-engineered grafts: a study on sheep. J Orthop Res. 2007 Jun;25(6):741-9. — View Citation
Yañez R, Lamana ML, García-Castro J, Colmenero I, Ramírez M, Bueren JA. Adipose tissue-derived mesenchymal stem cells have in vivo immunosuppressive properties applicable for the control of the graft-versus-host disease. Stem Cells. 2006 Nov;24(11):2582-91. Epub 2006 Jul 27. — View Citation
Ye Z, Wang Y, Xie HY, Zheng SS. Immunosuppressive effects of rat mesenchymal stem cells: involvement of CD4+CD25+ regulatory T cells. Hepatobiliary Pancreat Dis Int. 2008 Dec;7(6):608-14. — View Citation
* Note: There are 38 references in all — Click here to view all references
Type | Measure | Description | Time frame | Safety issue |
---|---|---|---|---|
Primary | cell viability | percentage of cells that live divided by total cell | 3 months | Yes |
Secondary | lower extremity functional score | lower extremities functional score sheet | 3 months | Yes |
Secondary | disabilities of arm shoulder and hand | disabilities of arm shoulder and hand score | 3 months | Yes |
Status | Clinical Trial | Phase | |
---|---|---|---|
Active, not recruiting |
NCT03325504 -
A Comparative Study of 2 Doses of BM Autologous H-MSC+Biomaterial vs Iliac Crest AutoGraft for Bone Healing in Non-Union
|
Phase 3 | |
Enrolling by invitation |
NCT06103396 -
Treatment of Nonunion Fractures With Mesenchymal Stromal Cells (MSCs)
|
Phase 1/Phase 2 | |
Enrolling by invitation |
NCT04705857 -
Comparative Study of Gene-activated Bone Substitute and Autobone in Treatment of Long Bone Nonunions
|