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Novel pycnodysostosis mouse model uncovers cathepsin K function as a potential regulator of osteoclast apoptosis and senescence.

Pycnodysostosis is a genetic bone disease featuring the unique bone homeostasis disorders of osteolysis and osteopetrosis in the same organism. The pathomechanism for pycnodysostosis has been largely unknown due to the unavailability of a pycnodysostosis mouse model with all the traits of the disease. We generated cathepsin K(-/-) mouse strains in the 129/Sv and C57BL/6J backgrounds and found that, only in the 129/Sv background, cathepsin K(-/-) mice exhibit many characteristics of the human pycnodysostosis-like phenotype. Our data indicated that 129/Sv cathepsin K(-/-) osteoclasts (OCs) lacked normal apoptosis and senescence and exhibited over-growth both in vitro and in vivo. These abnormalities resulted in an unusually high OC number, which is consistent with a recent case study of human pycnodysostosis. Our results show that cathepsin K function has different effects around the skeleton due to site-specific variations in bone homeostasis, such as phenotypes of osteopetrosis in tibiae and osteolysis in calvariae as a result of cathepsin K mutation. Our data demonstrated that the expression levels of p19, p53 and p21 were significantly reduced in 129/Sv cathepsin K(-/-) OCs and forced expression of cathepsin K in pre-OCs induced premature senescence and increased expression of p19, p53 and p21. This is the first evidence that cathepsin K plays a key role in OC apoptosis and senescence, revealing the importance of OC senescence in bone homeostasis. The finding of this novel cathepsin K function provides insight into the pathomechanism of pycnodysostosis and may provide new drug targets for diseases involved in OC-related abnormal bone homeostasis.

Animals↗

Cathepsin K deficiency in pycnodysostosis results in accumulation of non-digested phagocytosed collagen in fibroblasts.

The rare osteosclerotic disease, pycnodysostosis, is characterized by decreased osteoclastic bone collagen degradation due to the absence of active cathepsin K. Although this enzyme is primarily expressed by osteoclasts, there is increasing evidence that it may also be present in other cells, including fibroblasts. Since fibroblasts are known to degrade collagen intracellularly following phagocytosis, we analyzed various soft connective tissues (periosteum, perichondrium, tendon, and synovial membrane) from a 13-week-old human fetus with pycnodysostosis for changes in this collagen digestion pathway. In addition, the same tissues from cathepsin K-deficient and control mice were analyzed. Microscopic examination of the human fetal tissues showed that cross-banded collagen fibrils had accumulated in lysosomal vacuoles of fibroblasts. Morphometric analysis of periosteal fibroblasts revealed that the volume density of collagen-containing vacuoles was 18 times higher than in fibroblasts of control patients. A similar accumulation was seen in periosteal fibroblasts of three children with pycnodysostosis. In contrast to the findings in humans, an accumulation of internalized collagen was not apparent in fibroblasts of mice with cathepsin K deficiency. Our observations indicate that the intracellular digestion of phagocytosed collagen by fibroblasts is inhibited in humans with pycnodysostosis, but probably not in the mouse model mimicking this disease. The data strongly suggest that cathepsin K is a crucial protease for this process in human fibroblasts. Murine fibroblasts may have other proteolytic activities that are expressed constitutively or up regulated in response to a deficiency of cathepsin K. This may explain why cathepsin K-deficient mice lack the dysostotic features that are prominent in patients with pycnodysostosis.

Animals↗

Pycnodysostosis: role and regulation of cathepsin K in osteoclast function and human disease.

Patients with pycnodysostosis, a rare skeletal dysplasia, present with bone abnormalities such as short stature, acroosteolysis of distal phalanges, and skull deformities. The disease is caused by a deficiency of the cysteine protease cathepsin K which is responsible for degradation of collagen type I and other bone proteins. Osteoclasts, bone cells of hematopoietic origin responsible for bone mineral as well as protein matrix degradation, are dysfunctional in patients with pycnodysostosis due to mutations in the cathepsin K gene. Cathepsin K deficient osteoclasts can demineralize bone but cannot degrade the protein matrix. Mutations in the cathepsin K gene disrupting wild type cathepsin K activity have been described in patients with pycnodysostosis. Animal models of cathepsin K deficiency have been created and provide a valuable tool to study osteoclast function and treatment for cathepsin K deficiency. Understanding the regulation and role of cathepsin K in osteoclast function is important for designing future therapies for pycnodysostosis. Cathepsin K inhibitors will be useful in pathological processes involving excess osteoclast activation and bone resorption such as osteoporosis, bone metastasis and multiple myeloma. This review will discuss the bone remodeling cycle, the human disease pycnodysostosis caused by cathepsin K deficiency and cathepsin K activity and regulation.

Bone and Bones↗

Linkage of pycnodysostosis to chromosome 1q21 by homozygosity mapping.

Pycnodysostosis is an autosomal recessive sclerosing skeletal dysplasia of unknown aetiology which is inherited with complete penetrance. The clinical features, fully delineated in 1962 by Maroteaux & Lamy and by Andrén et al., include osteosclerosis, acro-osteolysis of the distal phalanges, bone fragility, clavicular dysplasia, reduced stature and skull deformities with delayed suture closure. Although rare, pycnodysostosis has attained prominence because the French artist Henri de Toulouse-Lautrec was retrospectively diagnosed as having been affected with this disorder. For rare autosomal recessive traits, homozygosity mapping provides a powerful approach to disease gene mapping. We have now used this approach to map the locus for pycnodysostosis. Following a genome-wide search in a large Arab family with 16 affected relatives, we established linkage to a narrow region on chromosome 1q21, with a maximal lod score of 11.72. A single marker, D1S498, was homozygous-by-descent in all affecteds and defined the gene locus to a region of 4 cM. Two candidate genes in the region--the interleukin-6 receptor gene (IL6R) and the myeloid cell leukaemia-1 gene (MCL1)--are involved in the differentiation of monocyte/macrophages into osteoclasts, the most likely site of the primary defect in pycnodysostosis.

Abnormalities, Multiple↗

The gene for pycnodysostosis maps to human chromosome 1cen-q21.

Pycnodysostosis (OMIM 265800) is an autosomal recessive skeletal disorder first described by Maroteaux and Lamy that is characterized by short stature, increased bone density, delayed closure of cranial sutures, loss of the mandibular angle, dysplastic clavicles, dissolution of the terminal phalanges of the hands and feet, dental abnormalities and increased bone fragility. Patients have a typical appearance secondary to prominence of the calvarium, smallness of the facial features, prominent nose and micrognathia. The French painter, Henri de Toulouse Lautrec (1864-1901), is believed to have had the disorder. Although more than 100 cases have been reported, we are aware of only two large consanguinous pedigrees in which the pycnodysostosis disorder segregates. We have studied the segregation of the pycnodysostosis phenotype in a large consanguinous Mexican pedigree, the clinical features of which are very similar to those described in the Arab pedigree studied by Edelson et al. Here, we report linkage for the pycnodysostosis phenotype in the 1cen-q21 region of human chromosome 1, and discuss candidate genes for this skeletal disorder.

Base Sequence↗

Cathepsin K gene mutations and 1q21 haplotypes in at patients with pycnodysostosis in an outbred population.

The molecular genetics of the autosomal recessive disorder pycnodysostosis was studied in five independent families from an outbred Caucasian population. We found two new mutations and one recently described mutation in the cathepsin K gene by sequencing DNA from eight patients with pycnodysostosis: a one base transition in exon8, c926T > C, causing a single amino acid substitution leucine-->proline, L309P; A 3' splice site mutation in intron 2, c121-1G > A, causing deletion of all exon 3, 41V-81Mdel; and the exon 3 missense mutation c236G > A leading to residue G79E. In three of the families patients were homozygous for 926T > C. In the remaining two families patients were heterozygous for 926T > C and 121-1G > A in one case, and for 926T > C and 236G > A in the other case. Assays using genomic DNA were developed for all three mutations. We tested 150 healthy control persons and observed the mutation frequencies: 0 to 300 for 121-1G > A and 236G > A and 1 to 150 for 926T > C. One patient from each family was haplotyped with eight microsatellite markers surrounding the cathepsin K gene on chromosome 1q21. A very rare, P = 1.8 x 10(-6) to P = 0.0004, and highly preserved area around the presumed disease locus was common to all the patients. This haplotype was found on seven chromosomes identical by state, IBS, out of the possible eight carrying the 926T > C mutation. Founder effect, locus homogeneity, and allele heterogeneity regarding pycnodysostosis within this population are discussed. Finally, the first pregnancy and delivery described in a patient with pycnodysostosis is reported.

Adolescent↗

Pycnodysostosis: clinical, radiologic, and endocrine evaluation and linear growth after growth hormone therapy.

Pycnodysostosis is a rare hereditary bone abnormality with an autosomal recessive mode of inheritance. We report the clinical, radiologic, and endocrine status of 8 children with this rare disease. All patients had the characteristic phenotype of the disorder including short stature (8 of 8), increased bone density (7 of 8), separated cranial sutures (8 of 8), large fontanel with delayed closure (8 of 8), obtuse mandibular angle (8 of 8), delayed teeth eruption (8 of 8), enamel hypoplasia (7 of 8), dysplastic acromial ends of the clavicles (6 of 8), frontal bossing (6 of 8), ocular proptosis (8 of 8), and dysplastic nails (8 of 8). Developmental evaluation according to the revised Denever developmental screening showed normal motor, fine motor-adaptive language, and personal social abilities in all the children. All had normal hepatic and renal functions. Serum calcium and phosphorus concentrations were normal. Two children had low serum alkaline phosphatase concentration. Short stature is a characteristic feature of pycnodysostosis. Seven of the 8 children were born short (length standard deviation score [SDS] = -3 to -1.5). Deceleration of linear growth was significant during the first 3 years of life. All the children had height SDS below -3 at the end of their third year of life. Although short stature is a feature of this genetic disorder, defective growth hormone (GH) secretion in response to provocation with clonidine and glucagon was found in 4 of the 8 patients. These 4 patients had pituitary hypoplasia on the magnetic resonance imaging (MRI) of their brain. In addition, 3 of these 4 patients had demyelination of the cerebrum. Patients with pycnodysostosis (n = 8) had low circulating concentrations of insulin-like growth factor-1 (IGF-1) compared with normal age-matched short children with constitutional short stature (CSS). IGF-I increased significantly after injecting GH for 3 days in these patients. Physiologic replacement with GH (18 U/m(2)/week) divided in daily evening doses subcutaneously increased IGF-1 concentration and improved linear growth velocity and height standard deviation scores (HtSDS) in the 4 children with GH deficiency. These data ruled out GH resistance and proved the usefulness of GH therapy in the management of short stature in these patients. In summary, some patients with pycnodysostosis have partial GH deficiency and low IGF-1 concentration. GH therapy markedly increases IGF-I secretion and improves their linear growth. MRI study of the brain including the hypothalamic-pituitary area is recommended in these children because of the high incidence of pituitary hypoplasia and cerebral demyelination.

Adolescent↗

A case of pycnodysostosis with growth hormone deficiency.

Pycnodysostosis is a skeletal dysplasia characterized by short stature. Treatment of pycnodysostosis with growth hormone (GH) has not been reported so far. We describe a case of pycnodysostosis with growth hormone deficiency in addition to low mean insulin-like growth factor 1 (IGF-1) concentration. Complete GH deficiency was determined by two pharmacological provocative tests (insulin and L-dopa). A good height-velocity response was obtained after GH replacement treatment. Pycnodysostosis with GH deficiency and replacement therapy have not been reported previously, to the best of our knowledge.

Child↗

Pycnodysostosis with visceral manifestation and rickets.

Pycnodysostosis is a rare bone disease. Visceral manifestations associated with anemia and/or rickets have been reported in pycnodysostosis. Five children with typical findings of pycnodysostosis with hepatosplenomegaly, anemia with rickets, one with visceromegaly and anemia, and another with rickets alone are reported here. These findings strongly suggest that extramedullary erythropoiesis does occur in pycnodysostosis.

Anemia↗

Pycnodysostosis with Heterozygous beta-thalassemia.

A 6-year follow-up of a Greek girl with pycnodysostosis associated with heterozygous beta-thalassemia is reported. Active rickets in infancy was superimposed on pycnodysostosis. In the family the autosomal recessive disease, pycnodysostosis, appeared in two of three siblings in combination with the autosomal dominant disease, thalassemia minor.

Child↗

A nonsense mutation in the cathepsin K gene observed in a family with pycnodysostosis.

Pycnodysostosis (MIM 265800) is a rare, autosomal recessive skeletal dysplasia characterized by short stature, wide cranial sutures, and increased bone density and fragility. Linkage analysis localized the disease gene to human chromosome 1q21, and subsequently the genetic interval was narrowed to between markers D1S2612 and D1S2345. Expressed sequence tagged markers corresponding to cathepsin K, a cysteine protease highly expressed in osteoclasts and thought to be important in bone resorption, were mapped previously in the candidate region. We have identified a cytosine to thymidine transition at nucleotide 862 (GenBank accession no. S79895) of the cathepsin K coding sequence in the DNA of an affected individual from a large, consanguinous Mexican family. This mutation results in an arginine to STOP alteration at amino acid 241, predicting premature termination of cathepsin K mRNA translation. All affected individuals in this family were homozygous for the mutation, suggesting that this alteration may lead to pycnodysostosis. Recognition of the role of cathepsin K in the etiology of pycnodysostosis should provide insights into the pathogenesis and treatment of other disorders of bone remodeling, including osteoporosis.

Blotting, Southern↗

Pycnodysostosis, a lysosomal disease caused by cathepsin K deficiency.

Pycnodysostosis, an autosomal recessive osteochondrodysplasia characterized by osteosclerosis and short stature, maps to chromosome 1q21. Cathepsin K, a cysteine protease gene that is highly expressed in osteoclasts, localized to the pycnodysostosis region. Nonsense, missense, and stop codon mutations in the gene encoding cathepsin K were identified in patients. Transient expression of complementary DNA containing the stop codon mutation resulted in messenger RNA but no immunologically detectable protein. Thus, pycnodysostosis results from gene defects in a lysosomal protease with highest expression in osteoclasts. These findings suggest that cathepsin K is a major protease in bone resorption, providing a possible rationale for the treatment of disorders such as osteoporosis and certain forms of arthritis.

Amino Acid Sequence↗

Decreased bone turnover and deterioration of bone structure in two cases of pycnodysostosis.

Pycnodysostosis is an uncommon human genetic disorder characterized by osteosclerosis of the skeleton, short stature, and bone fragility. The disease results from mutations in the cathepsin K gene, a lysosomal cysteine protease highly expressed in osteoclasts and crucial for the degradation of organic matrix from mineralized bone. Recently, interest has focused on a pharmaceutical inhibition of cathepsin K to prevent bone loss. However, little is known about the cellular activity or material quality of bone in pycnodysostosis. In the present study, transiliac bone biopsies from two affected individuals, aged 5 and 21 yr, were investigated using light microscopy, quantitative backscattered electron imaging, and small angle x-ray scattering. Results were compared with published age-matched reference data. The mutations in the cathepsin K gene of both patients were identified, including one novel defect. Both individuals had severe osteosclerosis, and their biopsies displayed multinucleated osteoclasts apposed to areas of demineralized matrix as well as bone-lining cells adjacent to this undigested collagen left over by osteoclasts. The homogeneity of the mineralized matrix was markedly disturbed due to large inclusions of mineralized cartilage residues. Histomorphometric evaluation showed a quantitative decrease in static parameters of bone formation. In contrast and despite deficient cathepsin K activity, osteoclastic parameters were close to normal range. At the nanostructural level, there was a marked increase in the mean thickness of the mineral particles, reflecting decreased bone remodeling. Examination of the trabecular structure revealed that the lamellae were highly disordered, which was also apparent from a poor alignment of mineral crystals oriented along the longitudinal axis of collagen fibrils. Taken together, these results strongly suggest that functional cathepsin K is important for balanced bone turnover, and enzyme deficiency results in a profound deterioration of bone quality with respect to trabecular architecture and lamellar arrangement, which is presumably the reason for bone fragility in pycnodysostosis.

Adult↗

[Pycnodysostosis--common ancestor of some Danish patients. Examination and diagnosis based on molecular genetics].

Eight patients with pycnodysostosis from six Danish families were examined for mutations in the cathepsin K gene. Three different mutations are the cause of pycnodysostosis in the six families--five of whom come from Ringkøbing County and one from Vejle County. One mutation has a high frequency in the families from Ringkoebing County. The five families are related through a common ancestor, who introduced the mutation around the year 1100. The disease is described with respect to aetiology, symptoms, prognosis, diagnosis, and symptomatic treatment. Research in pycnodysostosis may bring important knowledge to the understanding of related diseases, such as osteoporosis.

Cathepsins↗

Isthmic spondylolisthesis in pycnodysostosis.

Pycnodysostosis is an inborn skeletal syndrome manifested by short stature with a concomitant spinal deformity and by dense sclerotic fragile bones. We report a 35-year-old woman with pycnodysostosis and isthmic spondylolisthesis. Pycnodysostosis should be added to the differential diagnosis of spondylolisthesis.

Adult↗

Pycnodysostosis associated with spondylolysis.

We report 23 years of observation of a patient with pycnodysostosis associated with progressive spondylolysis. There have been very few papers describing the development of spondylolysis associated with pycnodysostosis as confirmed by serial X-ray examinations. The diagnosis was made by the patient's typical bird-like face, plain radiological findings, and repeated tibial fractures. At the age of 8 years, spondylolysis of L4 was observed. The spondylolysis had increased in number to 4 by the age of 24 years, that is, L2 through L5.

Adult↗

Pycnodysostosis associated with bilateral congenital pseudarthrosis of the clavicle.

We report the case of a 22-year-old woman with pycnodysostosis associated with bilateral congenital pseudarthrosis of the clavicle. The patient was first seen at the age of 19 years and had no symptoms during the 3-year follow-up period. The diagnosis of pycnodysostosis was made by typical clinical and radiological findings. Bilateral painless mid-clavicular mass and plain radiograms confirmed the diagnosis of bilateral congenital pseudarthrosis of the clavicle. Surgery was not performed for pseudarthrosis of the clavicles, just observation was preferred.

Abnormalities, Multiple↗

Surgical outcomes after treatment of fractures in femur and tibia in pycnodysostosis.

Pycnodysostosis is a rare hereditary disease, characterized by systemic bone sclerosis. The most important orthopedic problem in this condition is the recurrent pathological fracture of long bones. In this paper, the surgical results for fractures of six limbs (three femurs and three tibias) in five cases of pycnodysostosis are reported. Five limbs achieved fracture union and union is developing in one tibia after intramedullary nail (IM) nailing or Ilizarov external fixation (IEF), although fracture line tends to persist for longer periods of time. One femoral fracture was treated by IM nailing, and one femoral and one tibial fracture were treated by IEF leading to final bone union. One femoral and one tibial fracture were initially treated by IEF, and were treated by IM nailing after re-fracture. One tibial fracture was initially treated by IEF leading to a failure of union, and was converted to IM nailing. All cases are able to walk; one case requires a single crutch. Infection was noted in two limbs after IM nailing following IEF. Fixation with IM nail was effective in preventing re-fracture as well as in alignment correction. Although the surgical technique is more difficult, IM nailing in the initial surgery may be a better choice for achieving successful union while reducing the risk of re-fracture or infection.

Adult↗