Role of stromal cells in osteoclast differentiation in bone marrow

被引:28
作者
Kondo, Y
Irie, K
Ikegame, M
Ejiri, S
Hanada, K
Ozawa, H
机构
[1] Niigata Univ, Grad Sch Med & Dent Sci, Sect Oral Life Sci, Div Anat & Cell Biol Hard Tissue, Niigata 9518514, Japan
[2] Niigata Univ, Grad Sch Med & Dent Sci, Sect Oral Life Sci, Div Orthodont, Niigata 9518514, Japan
[3] Matsumoto Dent Univ, Inst Dent Sci, Shiojiri, Japan
[4] Matsumoto Dent Univ, Dept Oral Anat, Shiojiri, Japan
关键词
bone marrow stromal cell; osteoclast; alkaline phosphatase; tartrate-resistant acid phosphatase; osteoclast differentiation factor;
D O I
10.1007/s007740170004
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Bone marrow stromal cells have been considered to play an important role in osteoclast differentiation. However, the interaction of these cells in vivo has not been clearly demonstrated. To clarify this, we examined the distribution of alkaline phosphatase (ALPase) and tartrate-resistant acid phosphatase (TRAPase) activities as markers of osteoblastic and osteoclastic cells, respectively. Rat tibiae were fixed and embedded in Technovit 8100 or paraffin. ALPase and TRAPase activities were detected simultaneously on a plastic section by the azo-dye method. ALPase activity was detected on the plasma membranes of osteoblasts and some bone marrow fibroblastic stromal cells. These ALPase-positive cells were connected to each other by cytoplasmic processes, forming a cellular network in bone marrow. The ALPase activity of fibroblastic stromal cells tended to be stronger in those cells close to the bone surface than in the cells in the center of bone marrow. Reticular fibers in bone marrow were found to form a network. The ALPase-positive fibroblastic stromal cells may be reticular cells, because the localization of those cells was in accord with the localization of reticular fibers. The TRAPase-positive mononuclear cells and osteoclasts were mostly observed to be associated with the intensely ALPase-positive fibroblastic stromal cells. Immunoreactivity of osteoclast differentiation factor (ODF) was found in the fibroblastic stromal cells. These findings suggest that the network of ALPase-positive fibroblastic stromal cells in bone marrow serves as a guide for the migration of osteoclast precursor cells toward the bone surface, and may control the differentiation and activity of osteoclasts.
引用
收藏
页码:352 / 358
页数:7
相关论文
共 50 条
[31]   Neurospheres induced from bone marrow stromal cells are multipotent for differentiation into neuron, astrocyte, and oligodendrocyte phenotypes [J].
Suzuki, H ;
Taguchi, T ;
Tanaka, H ;
Kataoka, H ;
Li, ZL ;
Muramatsu, K ;
Gondo, T ;
Kawai, S .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2004, 322 (03) :918-922
[32]   The support of bone marrow stromal cell differentiation by airbrushed nanofiber scaffolds [J].
Tutak, Wojtek ;
Sarkar, Sumona ;
Lin-Gibson, Sheng ;
Farooque, Tanya M. ;
Jyotsnendu, Giri ;
Wang, Dongbo ;
Kohn, Joachim ;
Bolikal, Durgadas ;
Simon, Carl G., Jr. .
BIOMATERIALS, 2013, 34 (10) :2389-2398
[33]   The effect of bone marrow stromal cells on neuronal differentiation of mesencephalic neural stem cells in Sprague-Dawley rats [J].
Lou, SJ ;
Gu, P ;
Chen, F ;
He, C ;
Wang, M ;
Lu, CL .
BRAIN RESEARCH, 2003, 968 (01) :114-121
[34]   Upregulated expression of RANKL on bone marrow stromal cells can stimulate osteoclast precursors to mature into functional osteoclasts and promote survival of myeloma cells [J].
Fu Jinxiang ;
Zhang Jianhua ;
Zhang Xiaohui ;
Sun Yu .
ARCHIVES OF MEDICAL SCIENCE, 2008, 4 (03) :233-241
[35]   Endothelial cells influence the osteogenic potential of bone marrow stromal cells [J].
Ying Xue ;
Zhe Xing ;
Sølve Hellem ;
Kristina Arvidson ;
Kamal Mustafa .
BioMedical Engineering OnLine, 8
[36]   Osteoprotegerin and osteoprotegerin ligand expression during human marrow stromal cell differentiation and their effect on osteoclast formation [J].
Yang Lin ;
Hai Yong ;
Zhou Jun-lin .
CHINESE MEDICAL JOURNAL, 2011, 124 (13) :2033-2037
[37]   Effects of Cryopreservation on the Cell Viability, Proliferative Capacity and Neuronal Differentiation Potential of Canine Bone Marrow Stromal Cells [J].
Edamura, Kazuya ;
Nakano, Rei ;
Fujimoto, Kyohei ;
Teshima, Kenji ;
Asano, Kazushi ;
Tanaka, Shigeo .
JOURNAL OF VETERINARY MEDICAL SCIENCE, 2014, 76 (04) :573-577
[38]   Influence of an Autologous Serum-Supplemented Medium on the Proliferation and Differentiation into Neurons of Canine Bone Marrow Stromal Cells [J].
Edamura, Kazuya ;
Kurosawa, Takashi ;
Nakano, Rei ;
Teshima, Kenji ;
Asano, Kazushi ;
Tanaka, Shigeo .
JOURNAL OF VETERINARY MEDICAL SCIENCE, 2012, 74 (06) :817-820
[39]   Inverted colloidal crystal scaffolds with laminin-derived peptides for neuronal differentiation of bone marrow stromal cells [J].
Kuo, Yung-Chih ;
Chiu, Keng-Hsien .
BIOMATERIALS, 2011, 32 (03) :819-831
[40]   Characterization of conditioned medium of cultured bone marrow stromal cells [J].
Nakano, Norihiko ;
Nakai, Yoshiyasu ;
Seo, Tae-Boem ;
Yamada, Yoshihiro ;
Ohno, Takayuki ;
Yamanaka, Atsuo ;
Nagai, Yoji ;
Fukushima, Masanori ;
Suzuki, Yoshiyuki ;
Nakatani, Toshio ;
Ide, Chizuka .
NEUROSCIENCE LETTERS, 2010, 483 (01) :57-61