4.2 Article

Isolation and Characterization of Multipotential Mesenchymal Stromal Cells from Congenital Pseudoarthrosis of the Tibia: Case Report

Related references

Note: Only part of the references are listed.
Article Engineering, Biomedical

Human fibroblast-derived ECM as a scaffold for vascular tissue engineering

Jean-Michel Bourget et al.

BIOMATERIALS (2012)

Review Orthopedics

Congenital pseudarthrosis of the tibia: Management and complications

Hitesh Shah et al.

INDIAN JOURNAL OF ORTHOPAEDICS (2012)

Review Orthopedics

Congenital pseudarthrosis of the tibia

Kelly L. Vander Have et al.

JOURNAL OF THE AMERICAN ACADEMY OF ORTHOPAEDIC SURGEONS (2008)

Article Pathology

Vascular changes in the periosteum of congenital pseudarthrosis of the tibia

B Hermanns-Sachweh et al.

PATHOLOGY RESEARCH AND PRACTICE (2005)

Article Biochemistry & Molecular Biology

Osteoblast recruitment from stem cells does not decrease by age at late adulthood

HV Leskelä et al.

BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS (2003)

Review Biochemistry & Molecular Biology

Mesenchymal stem cells: building blocks for molecular medicine in the 21st century

AI Caplan et al.

TRENDS IN MOLECULAR MEDICINE (2001)

Review Orthopedics

Treatment approaches for congenital pseudarthrosis of tibia: Results of the EPOS Multicenter Study

F Grill et al.

JOURNAL OF PEDIATRIC ORTHOPAEDICS-PART B (2000)

Article Orthopedics

Pathology of bone lesions associated with congenital pseudarthrosis of the leg

E Ippolito et al.

JOURNAL OF PEDIATRIC ORTHOPAEDICS-PART B (2000)

Article Orthopedics

Congenital pseudarthrosis of the tibia: History, etiology, classification, and epidemiologic data

F Hefti et al.

JOURNAL OF PEDIATRIC ORTHOPAEDICS-PART B (2000)