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Endogenous CCN family member WISP1 inhibits trauma-induced heterotopic ossification
Ginny Ching-Yun Hsu, Simone Marini, Stefano Negri, Yiyun Wang, Jiajia Xu, Chase Pagani, Charles Hwang, David Stepien, Carolyn A. Meyers, Sarah Miller, Edward McCarthy, Karen M. Lyons, Benjamin Levi, Aaron W. James
Ginny Ching-Yun Hsu, Simone Marini, Stefano Negri, Yiyun Wang, Jiajia Xu, Chase Pagani, Charles Hwang, David Stepien, Carolyn A. Meyers, Sarah Miller, Edward McCarthy, Karen M. Lyons, Benjamin Levi, Aaron W. James
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Research Article Bone biology Stem cells

Endogenous CCN family member WISP1 inhibits trauma-induced heterotopic ossification

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Abstract

Heterotopic ossification (HO) is defined as abnormal differentiation of local stromal cells of mesenchymal origin, resulting in pathologic cartilage and bone matrix deposition. Cyr61, CTGF, Nov (CCN) family members are matricellular proteins that have diverse regulatory functions on cell proliferation and differentiation, including the regulation of chondrogenesis. However, little is known regarding CCN family member expression or function in HO. Here, a combination of bulk and single-cell RNA sequencing defined the dynamic temporospatial pattern of CCN family member induction within a mouse model of trauma-induced HO. Among CCN family proteins, Wisp1 (also known as Ccn4) was most upregulated during the evolution of HO, and Wisp1 expression corresponded with chondrogenic gene profile. Immunohistochemistry confirmed WISP1 expression across traumatic and genetic HO mouse models as well as in human HO samples. Transgenic Wisp1LacZ/LacZ knockin animals showed an increase in endochondral ossification in HO after trauma. Finally, the transcriptome of Wisp1-null tenocytes revealed enrichment in signaling pathways, such as the STAT3 and PCP signaling pathways, that may explain increased HO in the context of Wisp1 deficiency. In sum, CCN family members, and in particular Wisp1, are spatiotemporally associated with and negatively regulate trauma-induced HO formation.

Authors

Ginny Ching-Yun Hsu, Simone Marini, Stefano Negri, Yiyun Wang, Jiajia Xu, Chase Pagani, Charles Hwang, David Stepien, Carolyn A. Meyers, Sarah Miller, Edward McCarthy, Karen M. Lyons, Benjamin Levi, Aaron W. James

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Figure 3

WISP1 immunohistochemistry corresponds with osteochondral cells in heterotopic ossification mouse models.

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WISP1 immunohistochemistry corresponds with osteochondral cells in heter...
(A–F) WISP1 immunohistochemical staining in a posttraumatic model of mouse heterotopic ossification (HO). Images of H&E-stained sections and corresponding IHC are shown. (A and B) At days 3 after HO induction, WISP1 immunoreactivity is observed among reactive fibroblastic cells in early HO (asterisk). (C and D) At 3 weeks after HO induction, strong WISP1 immunoreactivity is present in cartilaginous areas in developing HO. (E and F) At 9 weeks after induction, WISP1 immunohistochemical staining is present in bone-lining cells, scattered osteocytes, and multinucleated giant cells (arrowhead). The asterisk indicates woven bone matrix. (G and H) WISP1 immunohistochemical staining in ACVR1-transgenic animals (fibrodysplasia ossificans progressiva [FOP] mouse model, Nfatc1-Cre; ca-Acvr1fl/WT), in which spontaneous bone formation occurs in the early postnatal period. Images are taken from animals at 2 weeks of age, with immunostaining in bone-lining cells (arrowheads), and in multinucleated osteoclasts. The asterisk indicates woven bone matrix. Scale bar: 100 μm.

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