A mouse model of Jansen’s metaphyseal chondrodysplasia for investigating disease mechanisms and candidate therapeutics

J Jakob Höppner D Damla Firat (Endocrine Unit, Massachusetts General Hospital and Harvard Medical School) M Mohd Parvez-Khan (Department of Orthopedic Surgery, University of Pennsylvania, Perelman Medical School) M Monica Reyes (Endocrine Unit, Massachusetts General Hospital and Harvard Medical School) P Patrick Hanna (Endocrine Unit, Massachusetts General Hospital and Harvard Medical School) P Prem Swaroop Yadav (Endocrine Unit, Massachusetts General Hospital and Harvard Medical School) T Thomas Dean (Endocrine Unit, Massachusetts General Hospital and Harvard Medical School) K Karla M. Ramos-Torres (Department of Radiology, Massachusetts General Hospital and Harvard Medical School) P Pedro Brugarolas M Michael T. Collins (Department of Health and Human Services, National Institute of Dental and Craniofacial Research, NIH) M Marc N. Wein S Shi Liu (Department of Chemistry, School of Science and Research Center for Industries of the Future) S Samuel H. Gellman (Department of Chemistry) E Ernestina Schipani (Department of Orthopaedic Surgery, University of Pennsylvania) H Henry M. Kronenberg (Endocrine Unit, Massachusetts General Hospital and Harvard Medical School) T Thomas J. Gardella (Endocrine Unit) H Harald Jüppner

Abstract

Jansen’s metaphyseal chondrodysplasia (JMC) is a rare disorder caused by activating mutations in the parathyroid hormone (PTH)/PTH-related peptide (PTHrP) receptor (PTH1R). Patients exhibit short stature, dysmorphic bones, and severe growth plate abnormalities, as well as hypercalcemia, hypercalciuria, hypophosphatemia, and reduced plasma PTH levels. Humanized PTH1R (hPTH1R) mice expressing the H223R-hPTH1R JMC mutation die early without breeding. We therefore generated and characterized a stable mouse line expressing the T410R-hPTH1R allele, which confers a milder disease phenotype in patients. Mutant mice show near-normal longevity and reproductive capacity yet exhibit a profound skeletal phenotype characteristic of the disease. The long bones of T410R mice are markedly misshapen and have expanded metaphyses with disarrayed chondrocyte zones in growth plates and reduced primary spongiosa. PET/CT scanning revealed diminished uptake of [ 18 F]-sodium fluoride in the growth plate area, consistent with reduced mineralization and vascularization. Genetic ablation of Hdac4 rescued the growth plate abnormalities in T410R mice, thereby establishing the PTH1R-Gαs-cAMP-PKA-SIK3-HDAC4/5 pathway as the main mediator of growth plate abnormalities in JMC. Serum calcium was elevated and endogenous PTH was suppressed in T410R mice, and both parameters could be normalized by acute injection of an optimized PTH inverse agonist peptide. The T410R mouse thus represents a stable animal model of JMC that recapitulates the abnormalities in skeletal development and mineral ion homeostasis which characterize this disease. The mice should help efforts to further define the cellular and molecular mechanisms underlying the JMC phenotype and to develop a potential mode of therapy.

Article Details

Volume / Issue Vol. 122, Issue 23
Published June 10, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (17)

J

Jakob Höppner

D

Damla Firat

Endocrine Unit, Massachusetts General Hospital and Harvard Medical School

M

Mohd Parvez-Khan

Department of Orthopedic Surgery, University of Pennsylvania, Perelman Medical School

M

Monica Reyes

Endocrine Unit, Massachusetts General Hospital and Harvard Medical School

P

Patrick Hanna

Endocrine Unit, Massachusetts General Hospital and Harvard Medical School

P

Prem Swaroop Yadav

Endocrine Unit, Massachusetts General Hospital and Harvard Medical School

T

Thomas Dean

Endocrine Unit, Massachusetts General Hospital and Harvard Medical School

K

Karla M. Ramos-Torres

Department of Radiology, Massachusetts General Hospital and Harvard Medical School

P

Pedro Brugarolas

M

Michael T. Collins

Department of Health and Human Services, National Institute of Dental and Craniofacial Research, NIH

M

Marc N. Wein

S

Shi Liu

Department of Chemistry, School of Science and Research Center for Industries of the Future

S

Samuel H. Gellman

Department of Chemistry

E

Ernestina Schipani

Department of Orthopaedic Surgery, University of Pennsylvania

H

Henry M. Kronenberg

Endocrine Unit, Massachusetts General Hospital and Harvard Medical School

T

Thomas J. Gardella

Endocrine Unit

H

Harald Jüppner