The role of bone marrow-derived cells in bone fracture repair in a green fluorescent protein chimeric mouse model

K Taguchi, R Ogawa, M Migita, H Hanawa, H Ito… - Biochemical and …, 2005 - Elsevier
K Taguchi, R Ogawa, M Migita, H Hanawa, H Ito, H Orimo
Biochemical and biophysical research communications, 2005Elsevier
We investigated the role of bone marrow cells in bone fracture repair using green
fluorescent protein (GFP) chimeric model mice. First, the chimeric model mice were created:
bone marrow cells from GFP-transgenic C57BL/6 mice were injected into the tail veins of
recipient wild-type C57BL/6 mice that had been irradiated with a lethal dose of 10Gy from a
cesium source. Next, bone fracture models were created from these mice: closed transverse
fractures of the left femur were produced using a specially designed device. One, three, and …
We investigated the role of bone marrow cells in bone fracture repair using green fluorescent protein (GFP) chimeric model mice. First, the chimeric model mice were created: bone marrow cells from GFP-transgenic C57BL/6 mice were injected into the tail veins of recipient wild-type C57BL/6 mice that had been irradiated with a lethal dose of 10Gy from a cesium source. Next, bone fracture models were created from these mice: closed transverse fractures of the left femur were produced using a specially designed device. One, three, and five weeks later, fracture lesions were extirpated for histological and immunohistochemical analyses. In the specimens collected 3 and 5 weeks after operation, we confirmed calluses showing intramembranous ossification peripheral to the fracture site. The calluses consisted of GFP- and osteocalcin-positive cells at the same site, although the femur consisted of only osteocalcin-positive cells. We suggest that bone marrow cells migrated outside of the bone marrow and differentiated into osteoblasts to make up the calluses.
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