Chordoma cells possess bone-dissolving activity at the bone invasion front
Katsuhiro Kawaai1, Yumiko Oishi2, Yukiko Kuroda1
1Laboratory of Cell and Tissue Biology, Keio University School of Medicine, 35 Shinanomachi, Shinjuku-ku, 160-8582, Tokyo, Japan.
Purpose:
Chordomas are malignant tumors that destroy bones, compress surrounding nerve tissues and exhibit phenotypes that recapitulate notochordal differentiation in the axial skeleton. Chordomas recur frequently, as they resist radio-chemotherapy and are difficult to completely resect, leading to repeated bone destruction and local expansion via unknown mechanisms. Here, using chordoma specimens and JHC7 chordoma cells, we asked whether chordoma cells possess bone-dissolving activity.
Methods:
CT imaging and histological analysis were performed to evaluate the structure and mineral density of chordoma-invaded bone and osteolytic marker expression. JHC7 cells were subjected to immunocytochemistry, imaging of cell fusion, calcium dynamics and acidic vacuoles, and bone lysis assays.
Results:
In patients, we found that the skull base invaded by chordoma was highly porous, showed low mineral density and contained brachyury-positive chordoma cells and conventional osteoclasts both expressing the osteolytic markers tartrate-resistant acid phosphatase (TRAP) and collagenases. JHC7 cells expressed TRAP and cathepsin K, became multinucleated via cell-cell fusion, showed spontaneous calcium oscillation, and were partly responsive to the osteoclastogenic cytokine RANKL. JHC7 cells exhibited large acidic vacuoles, and nonregulatory bone degradation without forming actin rings. Finally, bone-derived factors, calcium ions, TGF-β1, and IGF-1 enhanced JHC7 cell proliferation.
Conclusion:
In chordoma, we propose that in addition to conventional bone resorption by osteoclasts, chordoma cells possess bone-dissolving activity at the tumor-bone boundary. Furthermore, bone destruction and tumor expansion may occur in a positive feedback loop.
Insights
Chordoma cells, in addition to osteoclasts, can dissolve bone, contributing to tumor expansion. This bone destruction may create a positive feedback loop, driving further tumor growth and recurrence in patients.
Area of Science:
- Oncology
- Skeletal Biology
- Cell Biology
Background:
- Chordomas are malignant bone tumors resisting conventional therapies.
- Recurrent chordomas cause significant bone destruction and local expansion through poorly understood mechanisms.
Purpose of the Study:
- To investigate whether chordoma cells possess intrinsic bone-dissolving activity.
- To explore the mechanisms underlying chordoma-associated bone destruction.
Main Methods:
- Histological and CT imaging analysis of chordoma-invaded bone.
- In vitro studies on JHC7 chordoma cells, including immunocytochemistry, cell fusion imaging, calcium dynamics, and bone lysis assays.
- Assessment of factors influencing JHC7 cell proliferation.
Main Results:
- Chordoma-invaded bone exhibits porosity, low mineral density, and expression of osteolytic markers by both chordoma cells and osteoclasts.
- JHC7 chordoma cells express tartrate-resistant acid phosphatase (TRAP) and cathepsin K, undergo cell fusion, exhibit calcium oscillations, and degrade bone independently of actin rings.
- Bone-derived factors, calcium ions, TGF-β1, and IGF-1 promote JHC7 cell proliferation.
Conclusions:
- Chordoma cells contribute to bone destruction at the tumor-bone interface, complementing osteoclast activity.
- A positive feedback loop between bone destruction and tumor expansion is proposed as a mechanism for chordoma progression.
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