Wnt pathway inhibition with the porcupine inhibitor LGK974 decreases trabecular bone but not fibrosis in a murine model with fibrotic bone

Author:

Lung Hsuan123456,Wentworth Kelly L1278,Moody Tania12,Zamarioli Ariane12910,Ram Apsara12,Ganesh Gauri12,Kang Misun34,Ho Sunita34,Hsiao Edward C1234

Affiliation:

1. Department of Medicine , Division of Endocrinology and Metabolism, The Institute for Human Genetics, and the Eli and Edythe Broad Institute for Regeneration Medicine, , San Francisco, CA 94143 , United States

2. University of California , Division of Endocrinology and Metabolism, The Institute for Human Genetics, and the Eli and Edythe Broad Institute for Regeneration Medicine, , San Francisco, CA 94143 , United States

3. Oral and Craniofacial Sciences Graduate Program , School of Dentistry, , San Francisco, CA 94143 , United States

4. University of California , School of Dentistry, , San Francisco, CA 94143 , United States

5. Department of Dentistry, Kaohsiung Chang Gung Memorial Hospital and Chang Gung University College of Medicine , Kaohsiung 833 , Taiwan

6. School of Dentistry, Institute of Oral Medicine, College of Medicine, National Cheng Kung University , Tainan 701 , Taiwan

7. Department of Medicine , Division of Endocrinology and Metabolism, , San Francisco, CA 94143 , United States

8. University of California, Zuckerberg San Francisco General Hospital , Division of Endocrinology and Metabolism, , San Francisco, CA 94143 , United States

9. Department of Orthopaedics and Anesthesiology , Ribeirao Preto Medical School, , Sao Paulo (SP) 14049-900 , Brazil

10. University of Sao Paulo , Ribeirao Preto Medical School, , Sao Paulo (SP) 14049-900 , Brazil

Abstract

Abstract G protein-coupled receptors (GPCRs) mediate a wide spectrum of physiological functions, including the development, remodeling, and repair of the skeleton. Fibrous dysplasia (FD) of the bone is characterized by fibrotic, expansile bone lesions caused by activating mutations in GNAS. There are no effective therapies for FD. We previously showed that ColI(2.3)+/Rs1+ mice, in which Gs-GPCR signaling was hyper-activated in osteoblastic cell lineages using an engineered receptor strategy, developed a fibrotic bone phenotype with trabecularization that could be reversed by normalizing Gs-GPCR signaling, suggesting that targeting the Gs-GPCR or components of the downstream signaling pathway could serve as a promising therapeutic strategy for FD. The Wnt signaling pathway has been implicated in the pathogenesis of FD-like bone, but the specific Wnts and which cells produce them remain largely unknown. Single-cell RNA sequencing on long-bone stromal cells of 9-wk-old male ColI(2.3)+/Rs1+ mice and littermate controls showed that fibroblastic stromal cells in ColI(2.3)+/Rs1+ mice were expanded. Multiple Wnt ligands were up- or downregulated in different cellular populations, including in non-osteoblastic cells. Treatment with the porcupine inhibitor LGK974, which blocks Wnt signaling broadly, induced partial resorption of the trabecular bone in the femurs of ColI(2.3)+/Rs1+ mice, but no significant changes in the craniofacial skeleton. Bone fibrosis remained evident after treatment. Notably, LGK974 caused significant bone loss in control mice. These results provide new insights into the role of Wnt and Gs-signaling in fibrosis and bone formation in a mouse model of Gs-GPCR pathway overactivation.

Funder

University of California Department of Medicine Robert L. Kroc Chair of Rheumatic and Connective Tissue Diseases III

Kaohsiung Chang Gung Memorial Hospital

Chang Gung University College of Medicine Doctoral Training Fellowship

National Institutes of Health

NIDCR K08 Career Development Award

NIH Loan Repayment Award

University of Pennsylvania Million Dollar Bike Ride

UCSF Core Center for Musculoskeletal Biology and Medicine

Publisher

Oxford University Press (OUP)

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