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Updated: Jul 18, 2026

A Mouse Model of Ankle-Subtalar Complex Joint Instability
Published on: October 28, 2022
Biochemical and genetic analysis of ANK in arthritis and bone disease
Kyle A Gurley1, Richard J Reimer, David M Kingsley
1Department of Developmental Biology, Stanford University School of Medicine, Stanford, CA 94305, USA.
Abstract:
Mutations in the progressive ankylosis gene (Ank/ANKH) cause surprisingly different skeletal phenotypes in mice and humans. In mice, recessive loss-of-function mutations cause arthritis, ectopic crystal formation, and joint fusion throughout the body. In humans, some dominant mutations cause chondrocalcinosis, an adult-onset disease characterized by the deposition of ectopic joint crystals. Other dominant mutations cause craniometaphyseal dysplasia, a childhood disease characterized by sclerosis of the skull and abnormal modeling of the long bones, with little or no joint pathology. Ank encodes a multiple-pass transmembrane protein that regulates pyrophosphate levels inside and outside tissue culture cells in vitro, but its mechanism of action is not yet clear, and conflicting models have been proposed to explain the effects of the human mutations. Here, we test wild-type and mutant forms of ANK for radiolabeled pyrophosphate-transport activity in frog oocytes. We also reconstruct two human mutations in a bacterial artificial chromosome and test them in transgenic mice for rescue of the Ank null phenotype and for induction of new skeletal phenotypes. Wild-type ANK stimulates saturable transport of pyrophosphate ions across the plasma membrane, with half maximal rates attained at physiological levels of pyrophosphate. Chondrocalcinosis mutations retain apparently wild-type transport activity and can rescue the joint-fusion phenotype of Ank null mice. Craniometaphyseal dysplasia mutations do not transport pyrophosphate and cannot rescue the defects of Ank null mice. Furthermore, microcomputed tomography revealed previously unappreciated phenotypes in Ank null mice that are reminiscent of craniometaphyseal dysplasia. The combination of biochemical and genetic analyses presented here provides insight into how mutations in ANKH cause human skeletal disease.
Insights
Mutations in the progressive ankylosis gene (Ank/ANKH) cause distinct skeletal diseases. Chondrocalcinosis mutations retain pyrophosphate transport, while craniometaphyseal dysplasia mutations do not, explaining varied human phenotypes.
Area of Science:
- Genetics
- Biochemistry
- Skeletal Biology
Background:
- Mutations in the progressive ankylosis gene (Ank/ANKH) lead to diverse skeletal disorders in mice and humans.
- Human conditions include chondrocalcinosis (adult-onset, joint crystal deposition) and craniometaphyseal dysplasia (childhood, skull/bone abnormalities).
- The exact mechanism of ANKH protein function and how mutations cause these distinct diseases remain unclear.
Purpose of the Study:
- To investigate the pyrophosphate transport activity of wild-type and mutant ANKH proteins.
- To determine how specific human ANKH mutations affect ANKH function and skeletal phenotypes in vivo.
- To elucidate the molecular basis for the different skeletal diseases caused by ANKH mutations.
Main Methods:
- Assessed radiolabeled pyrophosphate transport activity of wild-type and mutant ANKH in frog oocytes.
- Reconstructed human ANKH mutations in bacterial artificial chromosomes for transgenic mouse studies.
- Utilized microcomputed tomography to analyze skeletal phenotypes in transgenic mice.
Main Results:
- Wild-type ANKH facilitated saturable pyrophosphate transport across the plasma membrane.
- ANKH mutations causing chondrocalcinosis retained pyrophosphate transport activity and rescued the Ank null mouse phenotype.
- ANKH mutations causing craniometaphyseal dysplasia exhibited no pyrophosphate transport and failed to rescue Ank null mice.
- Ank null mice displayed phenotypes resembling craniometaphyseal dysplasia.
Conclusions:
- ANKH functions as a pyrophosphate transporter.
- The ability of ANKH to transport pyrophosphate is critical for preventing joint fusion and craniometaphyseal dysplasia.
- Distinct ANKH mutations differentially affect pyrophosphate transport, explaining the varied skeletal disease phenotypes observed in humans.
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