Cherubism is a rare childhood-onset autoinflammatory fibro-osseous disease of the jaws, in most cases caused by autosomal dominant gain-of-function mutations in SH3BP2. The mutations lie in the binding region for the ubiquitin-ligase adaptor Tankyrase, so the mutant SH3BP2 protein escapes normal degradation and accumulates in myeloid cells. Stabilized SH3BP2 hyperactivates SYK-ERK signaling in macrophages, driving overproduction of TNF-alpha and enhanced RANKL-dependent osteoclastogenesis. Excessive osteoclastic resorption of mandibular and maxillary bone, with replacement by fibrovascular tissue rich in multinucleated giant cells, produces progressive, typically symmetric bilateral jaw expansion that gives affected children a cherubic facial appearance. The disease usually appears in early childhood, progresses until puberty, and then stabilizes and regresses in adulthood. A rare autosomal recessive form is caused by biallelic loss-of-function variants in OGFRL1.
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name: Cherubism
creation_date: "2026-07-22T00:00:00Z"
category: Mendelian
synonyms:
- CRBM
- Familial fibrous dysplasia of the jaws
- Cherubism, SH3BP2-related
description: >-
Cherubism is a rare childhood-onset autoinflammatory fibro-osseous disease of
the jaws, in most cases caused by autosomal dominant gain-of-function mutations
in SH3BP2. The mutations lie in the binding region for the ubiquitin-ligase
adaptor Tankyrase, so the mutant SH3BP2 protein escapes normal degradation and
accumulates in myeloid cells. Stabilized SH3BP2 hyperactivates SYK-ERK
signaling in macrophages, driving overproduction of TNF-alpha and enhanced
RANKL-dependent osteoclastogenesis. Excessive osteoclastic resorption of
mandibular and maxillary bone, with replacement by fibrovascular tissue rich in
multinucleated giant cells, produces progressive, typically symmetric bilateral
jaw expansion that gives affected children a cherubic facial appearance. The
disease usually appears in early childhood, progresses until puberty, and then
stabilizes and regresses in adulthood. A rare autosomal recessive form is
caused by biallelic loss-of-function variants in OGFRL1.
disease_term:
preferred_term: cherubism
term:
id: MONDO:0007315
label: cherubism
parents:
- Bone Disease
- Genetic Disease
references:
- reference: PMID:20301316
title: "Cherubism."
tags:
- GeneReviews
inheritance:
- name: Autosomal dominant
description: >-
Most cherubism is inherited in an autosomal dominant manner with high but
incomplete penetrance and variable expressivity; approximately 80% of
affected individuals carry a heterozygous gain-of-function SH3BP2 variant,
some arising de novo.
inheritance_term:
preferred_term: Autosomal dominant inheritance
term:
id: HP:0000006
label: Autosomal dominant inheritance
evidence:
- reference: PMID:11381256
reference_title: "Mutations in the gene encoding c-Abl-binding protein SH3BP2 cause cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Cherubism (MIM 118400) is an autosomal dominant inherited syndrome characterized by excessive bone degradation of the upper and lower jaws followed by development of fibrous tissue masses, which causes a characteristic facial swelling."
explanation: >-
The founding genetics paper establishes autosomal dominant inheritance of
cherubism.
- reference: PMID:20301316
reference_title: "Cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Approximately 80% of affected individuals have the disorder as the result of a heterozygous gain-of-function pathogenic variant in SH3BP2."
explanation: >-
GeneReviews quantifies the dominant, SH3BP2-driven majority of cases.
- name: Autosomal recessive
description: >-
A rare autosomal recessive form of cherubism is caused by biallelic
loss-of-function variants in OGFRL1, reported in a small number of families.
inheritance_term:
preferred_term: Autosomal recessive inheritance
term:
id: HP:0000007
label: Autosomal recessive inheritance
evidence:
- reference: PMID:20301316
reference_title: "Cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "In two families reported to date, cherubism is caused by biallelic loss-of-function pathogenic variants in OGFRL1 and inherited in an autosomal recessive manner."
explanation: >-
GeneReviews documents the rare autosomal recessive OGFRL1 form.
classifications:
isds_skeletal_category:
- classification_value: disorganized_development_of_skeletal_components
notes: >-
ISDS Nosology and Classification of Genetic Skeletal Disorders, 2019
revision (Mortier et al., PMID:31633310), Table 1 group 29 "Disorganized
development of skeletal components group"; listed as "Cherubism".
pathophysiology:
- name: SH3BP2 Gain-of-Function Stabilization
description: >-
Recurrent missense mutations cluster in exon 9 of SH3BP2, within the peptide
that binds the ubiquitin-ligase adaptor Tankyrase. The mutations abolish
Tankyrase-directed poly-ADP-ribosylation and RNF146-mediated ubiquitination
of SH3BP2, so the adaptor protein escapes proteasomal degradation and
accumulates to abnormally high levels in myeloid cells.
cell_types:
- preferred_term: macrophage
term:
id: CL:0000235
label: macrophage
biological_processes:
- preferred_term: protein stabilization
term:
id: GO:0050821
label: protein stabilization
modifier: INCREASED
evidence:
- reference: PMID:11381256
reference_title: "Mutations in the gene encoding c-Abl-binding protein SH3BP2 cause cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "seven mutations in the SH3-binding protein SH3BP2 (MIM 602104) on chromosome 4p16.3 that cause cherubism"
explanation: >-
Identifies SH3BP2 missense mutations as the cause of cherubism.
- reference: PMID:20301316
reference_title: "Cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Approximately 80% of affected individuals have the disorder as the result of a heterozygous gain-of-function pathogenic variant in SH3BP2."
explanation: >-
Confirms the SH3BP2 lesion is gain-of-function.
- reference: PMID:22153076
reference_title: "Loss of Tankyrase-mediated destruction of 3BP2 is the underlying pathogenic mechanism of cherubism."
supports: SUPPORT
evidence_source: IN_VITRO
snippet: "Here we show that Tankyrase, a member of the poly(ADP-ribose)polymerase (PARP) family, regulates 3BP2 stability through ADP-ribosylation and subsequent ubiquitylation by the E3-ubiquitin ligase RNF146 in osteoclasts."
explanation: >-
Establishes the keystone mechanism: Tankyrase and RNF146 normally target
SH3BP2/3BP2 for degradation, so cherubism mutations that disrupt this cause
pathogenic accumulation.
downstream:
- target: Hyperactive Myeloid SYK-ERK Signaling
causal_link_type: DIRECT
description: >-
Accumulated SH3BP2 amplifies immunoreceptor signal transduction.
- name: Hyperactive Myeloid SYK-ERK Signaling
description: >-
As an adaptor, accumulated SH3BP2 potentiates signaling downstream of myeloid
immunoreceptors, increasing SYK and ERK-MAPK pathway activation in
macrophages and osteoclast precursors and lowering their threshold for
activation by M-CSF and RANKL.
cell_types:
- preferred_term: macrophage
term:
id: CL:0000235
label: macrophage
biological_processes:
- preferred_term: ERK cascade
term:
id: GO:0070371
label: ERK1 and ERK2 cascade
modifier: INCREASED
- preferred_term: immunoreceptor signaling
term:
id: GO:0002768
label: immune response-regulating cell surface receptor signaling pathway
modifier: INCREASED
evidence:
- reference: PMID:17218256
reference_title: "Increased myeloid cell responses to M-CSF and RANKL cause bone loss and inflammation in SH3BP2 \"cherubism\" mice."
supports: SUPPORT
evidence_source: MODEL_ORGANISM
snippet: "Mutant myeloid cells show increased responses to M-CSF and RANKL stimulation, and, through mechanisms of increased ERK 1/2 and SYK phosphorylation/activation"
explanation: >-
The knock-in mouse shows increased ERK and SYK activation in mutant myeloid
cells.
downstream:
- target: Macrophage TNF-alpha Overproduction
causal_link_type: DIRECT
description: >-
Hyperactive signaling drives inflammatory cytokine output.
- name: Macrophage TNF-alpha Overproduction
description: >-
Hyperresponsive SH3BP2-mutant macrophages overproduce tumor necrosis factor
alpha. In the knock-in mouse model the cherubism-like phenotype is rescued by
TNF-alpha deficiency, identifying macrophage TNF-alpha as the central
inflammatory driver; TNF-alpha is also expressed in human cherubism lesions.
cell_types:
- preferred_term: macrophage
term:
id: CL:0000235
label: macrophage
biological_processes:
- preferred_term: positive regulation of TNF production
term:
id: GO:0032760
label: positive regulation of tumor necrosis factor production
modifier: INCREASED
- preferred_term: macrophage activation
term:
id: GO:0042116
label: macrophage activation
modifier: INCREASED
evidence:
- reference: PMID:17218256
reference_title: "Increased myeloid cell responses to M-CSF and RANKL cause bone loss and inflammation in SH3BP2 \"cherubism\" mice."
supports: SUPPORT
evidence_source: MODEL_ORGANISM
snippet: "they form macrophages that express high levels of TNF-alpha and osteoclasts that are unusually large."
explanation: >-
Mutant macrophages overexpress TNF-alpha in the mouse model.
- reference: PMID:24916406
reference_title: "SH3BP2 cherubism mutation potentiates TNF-α-induced osteoclastogenesis via NFATc1 and TNF-α-mediated inflammatory bone loss."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "TNF-α is expressed in human cherubism lesions"
explanation: >-
TNF-alpha is present in human cherubism lesion tissue, supporting its role
in the human disease.
downstream:
- target: Enhanced Osteoclastogenesis
causal_link_type: DIRECT
description: >-
TNF-alpha and hyperactive signaling promote osteoclast differentiation.
- name: Enhanced Osteoclastogenesis
description: >-
TNF-alpha together with RANKL signaling and the intrinsic hyperactivity of
SH3BP2-mutant precursors greatly increases differentiation of monocyte or
macrophage lineage cells into bone-resorbing osteoclasts, which are
characteristically enlarged.
cell_types:
- preferred_term: osteoclast
term:
id: CL:0000092
label: osteoclast
biological_processes:
- preferred_term: positive regulation of osteoclast differentiation
term:
id: GO:0045672
label: positive regulation of osteoclast differentiation
modifier: INCREASED
evidence:
- reference: PMID:24916406
reference_title: "SH3BP2 cherubism mutation potentiates TNF-α-induced osteoclastogenesis via NFATc1 and TNF-α-mediated inflammatory bone loss."
supports: SUPPORT
evidence_source: IN_VITRO
snippet: "SH3BP2 cherubism mutation potentiates TNF-α-induced osteoclastogenesis via NFATc1"
explanation: >-
The cherubism mutation amplifies TNF-driven osteoclast differentiation.
downstream:
- target: Excessive Osteoclastic Bone Resorption
causal_link_type: DIRECT
description: >-
An expanded osteoclast pool resorbs jaw bone.
- name: Excessive Osteoclastic Bone Resorption
description: >-
The expanded, hyperactive osteoclast population aggressively resorbs the
trabecular bone of the mandible and maxilla, creating the expanding
radiolucent lesions characteristic of cherubism.
cell_types:
- preferred_term: osteoclast
term:
id: CL:0000092
label: osteoclast
biological_processes:
- preferred_term: bone resorption
term:
id: GO:0045453
label: bone resorption
modifier: INCREASED
evidence:
- reference: PMID:11381256
reference_title: "Mutations in the gene encoding c-Abl-binding protein SH3BP2 cause cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "excessive bone degradation of the upper and lower jaws"
explanation: >-
Excessive jaw bone degradation is the core resorptive lesion of cherubism.
downstream:
- target: Fibro-osseous Giant-Cell Lesion Formation
causal_link_type: DIRECT
description: >-
Resorbed bone is replaced by giant-cell-rich fibrous tissue.
- name: Fibro-osseous Giant-Cell Lesion Formation
description: >-
Resorbed jaw bone is replaced by a proliferative fibrovascular stroma
containing numerous multinucleated giant cells (osteoclast-like), the
histologic hallmark of the cherubic lesion. Expansion of this tissue enlarges
the jaws and deforms the face.
cell_types:
- preferred_term: multinucleated giant cell
term:
id: CL:0000647
label: multinucleated giant cell
- preferred_term: fibroblast
term:
id: CL:0000057
label: fibroblast
evidence:
- reference: PMID:11381256
reference_title: "Mutations in the gene encoding c-Abl-binding protein SH3BP2 cause cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "followed by development of fibrous tissue masses, which causes a characteristic facial swelling"
explanation: >-
Fibrous tissue masses replacing resorbed bone produce the facial swelling.
- reference: PMID:20301316
reference_title: "Cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "proliferative fibroosseous lesions limited to the mandible and maxilla"
explanation: >-
GeneReviews describes the proliferative fibro-osseous lesions of the jaws.
phenotypes:
- category: Craniofacial
name: Bilateral Mandibular Enlargement
description: >-
Progressive, typically symmetric bilateral enlargement of the mandible is the
cardinal feature, usually appearing in early childhood and giving the full,
rounded cheeks of the cherubic facies.
frequency: VERY_FREQUENT
phenotype_term:
preferred_term: Abnormal mandible morphology
term:
id: HP:0000277
label: Abnormal mandible morphology
evidence:
- reference: PMID:20301316
reference_title: "Cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "proliferative fibroosseous lesions limited to the mandible and maxilla"
explanation: >-
The defining lesions of cherubism are limited to the mandible and maxilla.
- category: Craniofacial
name: Maxillary Enlargement
description: >-
Involvement of the maxilla, when present, adds to midface fullness and can
displace the orbital floor in severe disease.
phenotype_term:
preferred_term: Abnormal maxilla morphology
term:
id: HP:0000326
label: Abnormal maxilla morphology
evidence:
- reference: PMID:20301316
reference_title: "Cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Orbital and ophthalmologic manifestations can occur with enlargement of the maxilla and orbital floor displacement."
explanation: >-
Maxillary enlargement can displace the orbital floor.
- category: Craniofacial
name: Cherubic Facial Appearance
description: >-
Symmetric jaw and cheek fullness produces the characteristic broad, rounded
"cherubic" face for which the disorder is named.
phenotype_term:
preferred_term: Broad face
term:
id: HP:0000283
label: Broad face
evidence:
- reference: PMID:11381256
reference_title: "Mutations in the gene encoding c-Abl-binding protein SH3BP2 cause cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "which causes a characteristic facial swelling"
explanation: >-
The fibrous jaw masses produce the characteristic facial swelling.
- category: Dental
name: Dental Malocclusion and Tooth Displacement
description: >-
Expanding jaw lesions displace and malposition teeth and disrupt the dental
arches, producing malocclusion; teeth may be unerupted, hypoplastic, absent,
or appear to float in cyst-like spaces.
phenotype_term:
preferred_term: Dental malocclusion
term:
id: HP:0000689
label: Dental malocclusion
evidence:
- reference: PMID:20301316
reference_title: "Cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "teeth are displaced, unerupted, hypoplastic, or absent, or they may appear to be floating in cyst-like spaces; malocclusion"
explanation: >-
GeneReviews documents tooth displacement and malocclusion.
- category: Dental
name: Premature Tooth Loss and Dental Anomalies
description: >-
Premature exfoliation of deciduous teeth, root resorption, and other dental
anomalies result from lesional disruption of tooth-bearing bone.
phenotype_term:
preferred_term: Abnormality of the dentition
term:
id: HP:0000164
label: Abnormality of the dentition
evidence:
- reference: PMID:20301316
reference_title: "Cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "premature exfoliation of deciduous teeth, and root resorption have also been reported"
explanation: >-
Premature deciduous tooth loss and root resorption are reported dental
features.
- category: Radiologic
name: Expansile Jaw Osteolysis
description: >-
Imaging and pathology show mandibular and maxillary bone lysis with cortical
expansion, producing multilocular cyst-like radiolucencies.
phenotype_term:
preferred_term: Bone cyst
term:
id: HP:0012062
label: Bone cyst
evidence:
- reference: PMID:20301316
reference_title: "Cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "severe mandibular and maxillary bone lysis and cortical expansion"
explanation: >-
The lesions produce jaw bone lysis with cortical expansion.
- category: Ophthalmologic
name: Orbital Involvement with Proptosis
description: >-
In severe cases maxillary and orbital-floor involvement displaces the globes,
causing proptosis and an upward-gaze appearance.
phenotype_term:
preferred_term: Proptosis
term:
id: HP:0000520
label: Proptosis
evidence:
- reference: PMID:20301316
reference_title: "Cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Orbital and ophthalmologic manifestations can occur with enlargement of the maxilla and orbital floor displacement."
explanation: >-
Orbital-floor displacement causes the ophthalmologic manifestations.
- category: Respiratory
name: Obstructive Sleep Apnea
description: >-
Severe jaw and midface expansion can narrow the upper airway, producing
obstructive sleep apnea and upper-airway obstruction.
phenotype_term:
preferred_term: Obstructive sleep apnea
term:
id: HP:0002870
label: Obstructive sleep apnea
evidence:
- reference: PMID:20301316
reference_title: "Cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Respiratory manifestations can include obstructive sleep apnea and upper-airway obstruction."
explanation: >-
Airway compromise from jaw expansion can cause obstructive sleep apnea.
genetic:
- name: SH3BP2
association: Causative
relationship_type: CAUSATIVE
variant_origin: GERMLINE
gene_term:
preferred_term: SH3BP2
term:
id: hgnc:10825
label: SH3BP2
notes: >-
Heterozygous gain-of-function missense mutations in exon 9 of SH3BP2 (in the
Tankyrase-binding region, most commonly affecting the RSPPDG motif around
codons 415-420) cause dominant cherubism by preventing degradation of SH3BP2.
evidence:
- reference: PMID:11381256
reference_title: "Mutations in the gene encoding c-Abl-binding protein SH3BP2 cause cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "seven mutations in the SH3-binding protein SH3BP2 (MIM 602104) on chromosome 4p16.3 that cause cherubism"
explanation: >-
Identifies SH3BP2 as the disease gene for dominant cherubism.
- name: OGFRL1
association: Causative
relationship_type: CAUSATIVE
variant_origin: GERMLINE
gene_term:
preferred_term: OGFRL1
term:
id: hgnc:21378
label: OGFRL1
notes: >-
Biallelic loss-of-function variants in OGFRL1 cause a rare autosomal
recessive form of cherubism, reported in a small number of families.
evidence:
- reference: PMID:20301316
reference_title: "Cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "In two families reported to date, cherubism is caused by biallelic loss-of-function pathogenic variants in OGFRL1 and inherited in an autosomal recessive manner."
explanation: >-
OGFRL1 biallelic loss-of-function underlies the recessive form.
diagnosis:
- name: Molecular Genetic Testing
description: >-
Diagnosis rests on typical clinical, radiographic, and histologic findings
together with molecular confirmation of a heterozygous gain-of-function
SH3BP2 variant (typically targeted exon 9 sequencing) or biallelic
loss-of-function OGFRL1 variants.
diagnosis_term:
preferred_term: genetic testing
term:
id: NCIT:C15709
label: Genetic Testing
evidence:
- reference: PMID:20301316
reference_title: "Cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Diagnosis is established in a proband with typical clinical, radiographic, histologic, and family history findings and/or a heterozygous gain-of-function pathogenic variant in SH3BP2 or biallelic loss-of-function pathogenic variants in OGFRL1 identified by molecular genetic testing."
explanation: >-
GeneReviews defines the clinical-plus-molecular diagnostic criteria.
discussions:
- discussion_id: gap_cherubism_mouse_systemic_vs_human_jaw_restricted
prompt: >-
Why is human cherubism anatomically restricted to the mandible and maxilla
and self-limiting after puberty, whereas the Sh3bp2 knock-in mouse develops
TNF-alpha-dependent systemic inflammation with generalized trabecular bone
loss and cortical erosion? What jaw-specific and age-dependent factors confine
the human disease and drive its spontaneous regression?
kind: HUMAN_MODEL_MISMATCH
status: OPEN
attaches_to:
- pathophysiology#Macrophage TNF-alpha Overproduction
- pathophysiology#Excessive Osteoclastic Bone Resorption
rationale: >-
The Sh3bp2 knock-in mouse faithfully reproduces the SH3BP2 gain-of-function,
macrophage TNF-alpha overproduction, and osteoclast-driven bone loss, but its
phenotype is systemic rather than jaw-restricted and does not spontaneously
regress, unlike human cherubism. This mismatch is mechanistically important:
the local factors that restrict human disease to the tooth-bearing jaws
(e.g., dental development and eruption, jaw-specific RANKL or inflammatory
signals) and the pubertal changes that trigger regression are not captured by
the systemic mouse model, so the model may not predict organ-restricted human
behavior or the natural history that is central to management.
proposed_experiments:
- experiment_id: exp_cherubism_jaw_local_factors
name: Jaw-restriction and regression factor analysis in SH3BP2 models
description: >-
Compare tooth-eruption-associated local RANKL, inflammatory cytokine, and
osteoclastogenic signaling in the developing jaw versus long bones of
Sh3bp2 knock-in mice and, where available, human cherubism lesion tissue
across ages, to identify jaw-specific amplifiers and pubertal changes that
could explain anatomic restriction and spontaneous regression.
evidence:
- reference: PMID:17218256
reference_title: "Increased myeloid cell responses to M-CSF and RANKL cause bone loss and inflammation in SH3BP2 \"cherubism\" mice."
supports: SUPPORT
evidence_source: MODEL_ORGANISM
snippet: "Sh3bp2 \"cherubism\" mice exhibit trabecular bone loss, TNF-alpha-dependent systemic inflammation, and cortical bone erosion."
explanation: >-
The mouse model exhibits systemic, TNF-dependent inflammation and
generalized bone loss, in contrast to the jaw-restricted human disease.
- reference: PMID:20301316
reference_title: "Cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "proliferative fibroosseous lesions limited to the mandible and maxilla"
explanation: >-
Human cherubism lesions are anatomically restricted to the jaws.
prevalence:
- population: Worldwide
measure_type: POINT_PREVALENCE
prevalence_class: BELOW_1_IN_1000000
notes: >-
Orphanet worldwide point-prevalence class <1/1,000,000; roughly 300-600
cases have been reported in the literature.
evidence:
- reference: ORPHA:184
reference_title: "Cherubism"
supports: SUPPORT
evidence_source: OTHER
snippet: "<1 / 1 000 000 | Worldwide | Point prevalence | ORPHANET"
explanation: >-
Orphanet classifies cherubism as ultra-rare, with a worldwide point
prevalence below 1 in 1,000,000.
treatments:
- name: Observation and Watchful Waiting
description: >-
Because cherubism is usually self-limiting and lesions tend to fill with bone
and remodel after puberty, conservative observation with surveillance is the
mainstay for mild and stable disease.
therapeutic_modality: BEHAVIORAL
treatment_term:
preferred_term: supportive care
term:
id: NCIT:C15747
label: Supportive Care
evidence:
- reference: PMID:20301316
reference_title: "Cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Regression of the lesions occurs as they become filled with bone and remodel during the second and third decade of life."
explanation: >-
Spontaneous regression justifies conservative observation for stable
disease.
- name: Surgical Contouring and Curettage
description: >-
Surgical curettage, with or without bone grafting, and contouring of lesional
bone are used for severe, disfiguring, or functionally compromising disease,
generally after the active growth phase to limit recurrence.
therapeutic_modality: SURGERY
treatment_term:
preferred_term: surgical procedure
term:
id: NCIT:C15329
label: Surgical Procedure
evidence:
- reference: PMID:20301316
reference_title: "Cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "surgical interventions include curettage with or without bone grafting"
explanation: >-
Curettage with or without bone grafting is the standard surgical option.
- name: Denosumab
description: >-
Denosumab is an anti-RANKL monoclonal antibody that blocks osteoclast
formation and activity; because cherubism lesions are giant-cell/osteoclast
rich, high-dose denosumab has been used off-label with positive outcomes,
though pediatric use requires monitoring for rebound hypercalcemia.
therapeutic_modality: MONOCLONAL_ANTIBODY
treatment_term:
preferred_term: Pharmacotherapy
term:
id: NCIT:C15986
label: Pharmacotherapy
target_mechanisms:
- target: Enhanced Osteoclastogenesis
treatment_effect: INHIBITS
description: >-
RANKL blockade prevents differentiation and activation of the osteoclasts
that drive the lesion.
evidence:
- reference: PMID:39830148
reference_title: "Successful treatment of adult cherubism with a 60 mg denosumab 6-monthly regimen."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "high-dose denosumab has also been trialed in children with cherubism with positive outcomes"
explanation: >-
Anti-RANKL denosumab has been used in cherubism with reported benefit.
- name: Tacrolimus
description: >-
Tacrolimus, a calcineurin inhibitor, blocks the calcineurin-NFATc1 axis
required for osteoclast differentiation and has produced clinical and
radiologic improvement in aggressive pediatric cherubism.
therapeutic_modality: SMALL_MOLECULE
treatment_term:
preferred_term: Pharmacotherapy
term:
id: NCIT:C15986
label: Pharmacotherapy
therapeutic_agent:
- preferred_term: tacrolimus
term:
id: CHEBI:61049
label: tacrolimus (anhydrous)
target_mechanisms:
- target: Enhanced Osteoclastogenesis
treatment_effect: INHIBITS
description: >-
Calcineurin inhibition suppresses NFATc1-driven osteoclast differentiation.
evidence:
- reference: PMID:25491283
reference_title: "The calcineurin inhibitor tacrolimus as a new therapy in severe cherubism."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "After tacrolimus therapy, the patient showed significant clinical improvement, including stabilization of jaw size and intraosseous osteogenesis."
explanation: >-
Tacrolimus produced clinical and radiologic improvement in aggressive
cherubism.
datasets: []
Quick orientation before the deep dive: Cherubism is a rare, mostly self-limiting childhood bone disease where the jaw quietly eats itself and refills with fluffy, giant-cell-rich fibrous tissue. The wild part is the biology — a single-letter change in an adapter protein makes it un-killable by the cell's normal disposal crew, and the whole thing behaves less like a bone tumor and more like a slow-burning autoinflammatory tantrum aimed at the jaws. Then, in most kids, it just... turns itself off around puberty. Below is everything the literature has to say, section by section.
Cherubism is a rare, benign, self-limiting fibro-osseous disorder in which bone of the mandible and maxilla is resorbed and replaced by expansile, soft, fibrous giant-cell-rich tissue, producing bilateral, symmetric jaw swelling. The name comes from the resulting round-cheeked face plus the upturned-eye look ("eyes raised to heaven") when the orbital floor is involved — reminiscent of cherubs in Renaissance art (first named by Jones in 1933).
Key identifiers: - OMIM: #118400 (Cherubism); causal gene SH3BP2 is 602104 - MONDO: MONDO:0007038 (suggested — curator should confirm via OAK) - Orphanet: ORPHA:184 - MeSH: D002636 (Cherubism) - ICD-10: commonly coded K10.8 ("Other specified diseases of jaws"); ICD-11 near LB43/DA0D range (coding is inconsistent across sources — flag for verification)*
Synonyms / alternative names: familial fibrous dysplasia of the jaws, familial multilocular cystic disease of the jaws, familial bilateral giant cell tumor of the jaw, cherubinism, bilateral giant cell tumor. (Note: "familial fibrous dysplasia" is a misnomer — cherubism is molecularly distinct from GNAS-driven fibrous dysplasia.)
Data provenance: The disease-level knowledge is drawn from aggregated resources (OMIM, Orphanet, GeneReviews) and a literature base of ~300–600 published cases/case series worldwide — not from large EHR cohorts. Individual-patient granularity comes from case reports and small family studies.
Sources: OMIM 118400, GeneReviews NBK1137, Orphanet
Primary cause — genetic: - SH3BP2 gain-of-function (≈80% of cases): heterozygous missense variants clustered in exon 9, within the 6-residue motif RSPPDG (p.Arg415–Gly420). Autosomal dominant. (Ueki et al., Nat Genet 2001, PMID:11381256 — "identified mutations in the SH3BP2 gene… All mutations were in exon 9 and affected 3 amino acids within a 6-amino acid sequence (RSPPDG).") - OGFRL1 biallelic loss-of-function (rare, recessive): two consanguineous families (Syria, India) with homozygous loss-of-function OGFRL1 variants; autosomal recessive. A newly recognized second locus. (JBMR Plus 2024, ziae050, PMC11062026) - ~20% of clinically classic cases have no identified SH3BP2 variant — genetic heterogeneity remains.
Genetic risk factors: having a pathogenic SH3BP2 allele is essentially deterministic (high penetrance); no established polygenic/susceptibility loci. De novo mutations account for a substantial share of simplex cases.
Environmental risk / trigger factors: Cherubism is genetically driven, but disease expression and severity are modulated by inflammatory challenge. In heterozygous cherubism mice, oral microbial burden (periodontal infection) dramatically worsens alveolar bone destruction — "microbe-dependent exacerbated alveolar bone destruction in heterozygous cherubism mice" (PMC7285758). This maps to the human observation that lesions flare with dental eruption, trauma, and infection. There is also anecdotal exacerbation with tooth extraction/surgery.
Protective factors: No genetic protective alleles described. Empirically, the strongest "protective" force is puberty/aging itself — most lesions spontaneously regress after adolescence. Avoiding elective jaw surgery during the active proliferative phase is considered protective against flare.
Gene–environment interaction: The unifying model is that mutant SH3BP2 lowers the threshold for a myeloid inflammatory response, so ordinary physiologic/microbial challenges to the jaw (tooth eruption, oral flora) that a normal jaw shrugs off instead ignite a self-amplifying TNF-α/RANKL loop. This explains both jaw-restriction (the tooth-bearing bones face the most microbial/eruption challenge) and the age-limited course.
Craniofacial / skeletal (core, near-universal): - Bilateral, symmetric mandibular and/or maxillary swelling — clinical hallmark; onset typically age 2–5 yr, progresses to puberty. Frequency ~100%. Suggested HPO: HP:0000303 (Mandibular prognathia), HP:0012802 (Abnormal maxilla morphology), plus round/full cheeks. - Multilocular radiolucent, expansile jaw lesions with cortical thinning, at the mandibular angles/rami; condyles usually spared. - "Eyes to heaven" appearance / exposed inferior sclera / upward globe tilt when infraorbital rim and orbital floor are involved. Suggested HPO: HP:0000520 (Proptosis) and exposure of sclera.
Dental (very frequent): - Displaced, unerupted, ectopic, hypoplastic, or absent teeth; premature exfoliation of primary teeth; malocclusion. Suggested HPO: HP:0000668 (Hypodontia), HP:0000689 (Dental malocclusion), HP:0006480/HP:0006349 (abnormal tooth morphology), premature tooth loss (HP:0006480).
Regional / soft tissue: - Submandibular and cervical lymphadenopathy — common in early active disease, tends to regress. Suggested HPO: HP:0002716 (Lymphadenopathy).
Functional complications (severe cases): - Obstructive sleep apnea / upper-airway obstruction — GeneReviews: "Respiratory manifestations can include obstructive sleep apnea and upper-airway obstruction." Suggested HPO: HP:0002870 (Obstructive sleep apnea). - Visual/ophthalmologic compromise (proptosis, diplopia, rarely optic involvement) with severe maxillary/orbital disease. Suggested HPO: HP:0000505 (Visual impairment), HP:0000651 (Diplopia). - Speech, chewing, and swallowing difficulty; psychosocial impact from facial disfigurement.
Characteristics summary: Onset early childhood; severity highly variable (mild grade-1 to grossly disfiguring grade-3); course progressive then regressive (grows to puberty, stabilizes, involutes in 2nd–3rd decade). Intellect and general development are normal.
Quality-of-life impact: Main burdens are cosmetic disfigurement (psychosocial, especially school-age), functional (mastication, speech, vision, sleep/airway), and — in a subset — surgical morbidity. No cherubism-specific validated QoL instrument; generic pediatric craniofacial QoL tools apply.
Sources: GeneReviews, Cherubism: best clinical practice, Orphanet J Rare Dis 2012;7(Suppl 1):S6
Causal gene 1 — SH3BP2 (SH3-domain binding protein 2; a.k.a. 3BP2)
- Locus: chromosome 4p16.3; HGNC symbol SH3BP2 (HGNC:10825, lowercase hgnc: per repo convention — verify ID); OMIM 602104.
- Mapping: linkage to 4p16.3 established by Mangion et al. (Am J Hum Genet 1999). (ScienceDirect)
- Protein: 561-aa adapter with PH domain (membrane lipid binding), a proline-rich (PR) region with SH3-binding motifs, and a C-terminal SH2 domain*.
Pathogenic variants (SH3BP2): - Cluster in exon 9, within the RSPPDG motif (codons 415–420). - Recurrent variants: p.Pro418Arg (c.1253C>G) — most common; p.Pro418Leu, p.Arg415Gln/Pro, p.Gly420Glu/Arg, p.Pro416Arg, p.Asp419 changes. ~13 distinct variants reported (12 missense + 1 single-base deletion), ~80% in exon 9. - Variant type: overwhelmingly missense; germline; gain-of-function (not haploinsufficiency — Wolf-Hirschhorn 4p deletions that delete one SH3BP2 copy do not cause cherubism). - Allele frequency: absent/vanishingly rare in gnomAD (private/de novo pathogenic changes). - ACMG classification: recurrent RSPPDG missense variants are classified Pathogenic/Likely Pathogenic (strong functional + genetic evidence).
Causal gene 2 — OGFRL1 (opioid growth factor receptor-like 1) - Biallelic loss-of-function, autosomal recessive; homozygous frameshift/LoF variants "not reported in any variant databases." Represents a mechanistically distinct route to a cherubism-like phenotype. (JBMR Plus 2024)
Modifier genes: none formally validated; disease severity likely modified by inflammatory-response genetic background (inferred from mouse work) and sex.
Epigenetics / chromosomal abnormalities: No recurrent DNA-methylation/histone signature or large structural rearrangement is implicated. Cherubism is a point-mutation disease, not a copy-number/aneuploidy disorder. (Notably, 4p deletion removing SH3BP2 does not cause disease — reinforcing gain-of-function.)
Suggested ontology: gene GO annotations GO:0017124 (SH3 domain binding), GO:0035591 (signaling adaptor activity).
Sources: Nature Genetics 2001, OMIM 602104, GeneReviews
This is the mechanistically richest part, so let me lay out the causal chain from mutation to melted jawbone.
Upstream trigger — loss of protein disposal (the keystone lesion): Normally, the adapter protein 3BP2/SH3BP2 is kept on a short leash. Tankyrase (TNKS/TNKS2, a PARP-family enzyme) binds SH3BP2 at the RSPPDG (RxxPDG) motif, poly-ADP-ribosylates it, which flags it for the E3 ubiquitin ligase RNF146, which ubiquitylates it for proteasomal degradation. Cherubism mutations (R415G, P418L, P418R, G420R) destroy the tankyrase recognition site → SH3BP2 is no longer ADP-ribosylated, no longer ubiquitylated, and accumulates. So the defect isn't a broken protein — it's a protein the cell can't throw away. (Levaot et al., Cell 2011, PMID:22153076 — "Loss of Tankyrase-Mediated Destruction of 3BP2 Is the Underlying Pathogenic Mechanism of Cherubism"; Guettler et al., Cell 2011, companion paper on tankyrase substrate recognition.) Elegant corollary: tankyrase inhibitors phenocopy cherubism, inducing bone loss by accumulating SH3BP2 (PMC6406327).
Middle — two amplifying myeloid arms (from the Sh3bp2 P416R knock-in mouse; Ueki et al., Cell 2007, PMID:17218256): 1. Osteoclast arm (bone destruction): Stabilized SH3BP2 hyperactivates SYK/SRC/VAV and, downstream of RANKL–RANK, boosts PLCγ2 phosphorylation → IP₃ → Ca²⁺ release → calcineurin → NFATc1 nuclear translocation — NFATc1 being the master transcriptional switch for osteoclastogenesis. Result: more, more-active, bone-resorbing osteoclasts. (Mukai et al., JBMR 2014, doi:10.1002/jbmr.2295 — "SH3BP2 cherubism mutation potentiates TNF-α–induced osteoclastogenesis via NFATc1.") 2. Macrophage/inflammation arm (the engine): Mutant myeloid cells over-respond to M-CSF and RANKL, with elevated ERK1/2 and Syk (pTyr346) signaling via an autocrine feedback loop, driving excess TNF-α production and systemic macrophage inflammation.
Convergence & the self-amplifying loop: Hyperactive macrophages pump out TNF-α, which drives systemic inflammation, stimulates stromal cells to secrete RANKL and M-CSF, and feeds back to generate still more hyperactive osteoclasts → jaw bone resorption replaced by fibrous, giant-cell-rich tissue. Osteoblasts are also perturbed (excess immature osteoblasts, ~20% fewer mature ones, reduced osteoprotegerin/OPG → higher RANKL:OPG ratio further favoring resorption; PMID:20691350).
Genetic dissection of the causal chain (mouse epistasis): - Cross onto TNF-α–null → infiltrative lesions disappear, bone phenotype partially rescued → TNF-α is necessary for the inflammatory/infiltrative disease. - Cross onto M-CSF–deficient (op/op) → bone loss and infiltrates essentially gone (TNF-α still high) → M-CSF needed for the osteolytic output. - Cross onto NFATc1 conditional KO → skeletal phenotype fully rescued despite persistent high TNF-α → NFATc1 is the essential bone-resorption node, while TNF-α inflammation runs through a parallel, NFATc1-independent path.
Framing: The Reichenberger/Ueki review concludes cherubism is best understood as "a systemic autoinflammatory response to physiologic challenges despite the localized appearance of bone resorption" — a myeloid-cell disorder that happens to manifest in the jaws. (Orphanet J Rare Dis 2012;7(Suppl 1):S5, PMC3359958)
Why the jaws, and why self-limiting? Best current explanation: the tooth-bearing jaws face the greatest eruption/microbial/mechanical challenge in childhood; once dentition is complete and the pubertal hormonal/immune milieu shifts, the driving stimulus wanes and lesions ossify and regress.
Suggested ontology terms: - Biological processes (GO): GO:0030316 (osteoclast differentiation), GO:0045672 (positive regulation of osteoclast differentiation), GO:0045453 (bone resorption), GO:0032760 (positive regulation of TNF production), GO:0042116 (macrophage activation), GO:0033173 (calcineurin-NFAT signaling cascade), GO:0070371 (ERK1/ERK2 cascade), GO:0006471 (protein ADP-ribosylation), GO:0043161 (proteasome-mediated ubiquitin-dependent protein catabolic process), GO:0038095/RANK signaling. - Cell types (CL): CL:0000092 (osteoclast), CL:0000235 (macrophage), CL:0000576 (monocyte), CL:0000062 (osteoblast), multinucleated giant cell. - Molecular players/chemicals: TNF-α, M-CSF (CSF1), RANKL (TNFSF11), NFATc1, SYK, poly-ADP-ribose.
Sources: Levaot 2011 PMID:22153076, Ueki 2007 PMID:17218256, Mukai 2014 JBMR, pathophysiology review PMC3359958
Organ / structure level (primary): - Mandible — UBERON:0001684; especially the angle and ramus; symphysis and body variably; condyles typically spared. - Maxilla — UBERON:0002397; involvement drives orbital-floor/infraorbital-rim disease. - Jaw region overall — UBERON:0003278 (jaw region) / UBERON:0001710 (lower jaw region).
Secondary involvement: - Bony orbit / orbital floor (UBERON:0006800) → globe displacement, proptosis, "eyes to heaven." - Teeth / dentition (UBERON:0001091) → displacement, agenesis, malocclusion. - Cervical & submandibular lymph nodes (UBERON:0002429) → reactive lymphadenopathy. - Upper airway → obstruction/OSA in severe maxillary/mandibular expansion. - Rare extragnathic reports exist (e.g., ribs) but classic cherubism is jaw-restricted — a key diagnostic feature.
Body systems: skeletal (craniofacial), plus innate immune/myeloid system as the mechanistic driver; secondarily ophthalmic, respiratory, and dental systems.
Tissue / cell level: normal jaw bone tissue (UBERON:0002481) is replaced by fibrous connective tissue stroma rich in multinucleated giant cells (osteoclast-like) and spindle-shaped mesenchymal stromal cells. Target/effector cells: osteoclasts (CL:0000092) and macrophages (CL:0000235).
Subcellular / molecular compartment: the pathology localizes to cytoplasmic protein-degradation machinery — SH3BP2 accumulates in the cytoplasm because it escapes the proteasome (GO:0000502) after failing tankyrase-directed ADP-ribosylation/RNF146 ubiquitylation. Downstream signaling touches the plasma membrane (RANK/M-CSFR) and nucleus (NFATc1 translocation).
Localization / lateralization: bilateral and symmetric — this bilaterality is the classic feature distinguishing cherubism from the usually unilateral/solitary central giant cell granuloma.
Epidemiology: - Prevalence: unknown/very rare; Orphanet class <1 in 1,000,000. ~300–600 cases reported worldwide across ethnic groups; no strong ethnic predilection. - Incidence: not established (too rare for reliable incidence figures).
Inheritance (genetic): - Autosomal dominant (SH3BP2, ~80% of molecularly solved cases). Many simplex cases are de novo. - Autosomal recessive (OGFRL1) in rare consanguineous families. - Penetrance: high; classically described as near-complete. Historically stated as "complete by age 5," though GeneReviews cautions it "has not been systematically studied"; some non-penetrant/very-mild carriers reported. One clinical–genetic series "found no evidence of non-penetrance." - Expressivity: markedly variable, even within a family. - Sex effect: older literature reported a male excess (~2:1), but this is now attributed to ascertainment; recent series report females on average more severely affected than males — an intriguing and clinically relevant reversal. - Genetic anticipation: not a feature (not a repeat-expansion disorder). - Germline/gonadal mosaicism: possible — reported basis for recurrence in apparently unaffected parents; relevant to counseling. - Founder effects / consanguinity: no SH3BP2 founder mutations; consanguinity is central to the recessive OGFRL1 families. - Carrier frequency: not defined (private mutations).
Population demographics: worldwide, pan-ethnic; onset in early childhood; no endemic geographic clustering. Recessive OGFRL1 form reported from consanguineous Middle Eastern/South Asian pedigrees.
Sources: GeneReviews, Orphanet best clinical practice, clinical & genetic analysis series (ResearchGate)
Diagnostic approach: clinical + radiographic + (as needed) histologic pattern, confirmed by molecular testing.
Clinical / imaging: - Radiographs / CT (imaging is central): bilateral, symmetric, multilocular ("soap-bubble") radiolucencies, expansile remodeling, cortical thinning, at mandibular angles/rami; often displaced/unerupted "floating" teeth. Condyles spared. Suggested modality terms (RadLex/DICOM): panoramic radiograph, CT maxillofacial. - CBCT/MRI: delineate extent, airway, orbital involvement; MRI for soft-tissue characterization and follow-up.
Laboratory / biomarkers: - Serum calcium, phosphate, PTH are typically normal (helps exclude hyperparathyroidism/brown tumors). Alkaline phosphatase may be elevated during active resorption. No validated circulating diagnostic biomarker; TNF-α elevation is mechanistically expected but not a clinical test.
Biopsy / histopathology: - Fibrous stroma with numerous multinucleated osteoclast-like giant cells, hemorrhage, hemosiderin; microscopically indistinguishable from central giant cell granuloma (CGCG) — so histology alone cannot make the call; bilaterality + genetics distinguish it. (PMID:6937832) Perivascular eosinophilic cuffing around vessels is a classically cited (if inconsistent) clue.
Genetic testing: - First-line: targeted SH3BP2 exon 9 sequencing (single-gene), given the tight RSPPDG mutational hotspot. High yield for classic cases. - If negative: broader SH3BP2 sequencing, then exome/genome (to catch OGFRL1 recessive form or novel loci) — especially with consanguinity or atypical/recessive pedigrees. - Gene panels (bone dysplasia/giant-cell-lesion panels) where available; CMA/karyotype/FISH not indicated (no CNV mechanism); mtDNA/repeat testing N/A.
Clinical criteria / differential diagnosis — key mimics to exclude: - Central giant cell granuloma (usually unilateral/solitary). - Fibrous dysplasia / McCune-Albright (GNAS; ground-glass, often unilateral, extragnathic). - Hyperparathyroidism-jaw tumor syndrome (CDC73/HRPT2; abnormal calcium/PTH), brown tumors of hyperparathyroidism. - Aneurysmal bone cyst, giant cell tumor, Noonan/RASopathy-associated giant-cell lesions, and multiple giant cell lesion syndromes.
Screening: no population screening (too rare). Cascade genetic testing of at-risk relatives once a familial variant is known; prenatal/PGT available when the variant is identified.
Sources: GeneReviews, JOMR clinicoradiographic review
Overarching strategy: Most cases need only observation ("watchful waiting") through the active phase, with staged reconstruction after regression. Aggressive/function-threatening disease (airway, vision, rapid growth) warrants active intervention. Multidisciplinary craniofacial-clinic management. Suggested MAXO anchors: MAXO:0000950 (supportive care), MAXO:0000004 (surgical procedure), MAXO:0000011 (physical/rehab therapy — speech), MAXO:0000079 (genetic counseling); observation/active-surveillance.
Pharmacotherapy (all off-label, evidence = small case reports/series; a 2023 systematic review pooled ~18 patients across 14 mostly-single-case studies — PMC10044089): - Denosumab (anti-RANKL monoclonal antibody; blocks osteoclastogenesis) — increasingly reported, including successful adult cherubism control with a 60 mg every-6-months regimen (JBMR Plus 2024/25, ziae164, PMC11742083). Caution: rebound hypercalcemia reported in a child after denosumab — a real pediatric safety concern. Suggested therapeutic_agent: denosumab (NCIT drug-class monoclonal antibody). - Tacrolimus (calcineurin inhibitor) — hits the calcineurin–NFATc1 node directly; a 4-yr-old with aggressive disease improved over 1 yr, with reduced TRAP+ osteoclasts and reduced NFATc1 nuclear staining on biopsy (PMID:25491283). CHEBI: tacrolimus. - Imatinib (tyrosine kinase inhibitor; targets SYK/downstream signaling) — "paradigm shift" preliminary reports and pediatric case(s) with marked lesion reduction, well tolerated (JOMS 2019). CHEBI:45783 (imatinib). - TNF-α blockers (adalimumab, etanercept) — mechanistically apt (TNF-α is the disease engine); anecdotal benefit. - Calcitonin — trialed in ≥5 pediatric cases (6–30 mo), mixed results (some regression, some none). - Bisphosphonates (e.g., pamidronate) — anti-resorptive; limited/variable evidence.
Advanced therapeutics: No gene/cell/RNA therapy in clinical use. Tankyrase-pathway biology suggests future rational targets, but tankyrase inhibitors would worsen disease (they stabilize SH3BP2) — so the therapeutic logic runs toward TNF-α/RANKL/NFATc1/SYK blockade, not tankyrase inhibition.
Surgical / interventional: - Curettage ± bone grafting, contouring/recontouring osteotomies, orthognathic reconstruction — best timed after lesion regression to limit recurrence/regrowth. Emergency surgery for airway or orbital decompression when function is threatened. Suggested: NCIT:C15329 (Surgical Procedure) / curettage.
Supportive / rehabilitative: orthodontics for malocclusion/dental management; speech-language therapy; ENT/sleep management for OSA; ophthalmology for orbital disease; psychosocial support.
Treatment outcomes: No RCT-level efficacy data; response is variable and agent-dependent. Given reliable spontaneous regression, the bar for systemic therapy is aggressive, function-threatening disease.
Sources: Pharmacological management systematic review (PMC10044089), Denosumab adult case (PMC11742083), Tacrolimus (PMID:25491283), Imatinib (JOMS)
Suggested MAXO: MAXO:0000079 (genetic counseling), surveillance/active monitoring, MAXO:0000950 (supportive care).
Sources: OGFRL1 study (PMC11062026)
Flagship model — Sh3bp2 P416R knock-in mouse (Ueki et al., Cell 2007, PMID:17218256): - Type: mammalian germline knock-in (point mutation orthologous to human p.Pro418Arg). Heterozygous and homozygous lines. - Phenotype recapitulation: homozygous KI/KI mice show trabecular bone loss/osteoporosis, increased osteoclast numbers, TNF-α–dependent systemic macrophage inflammation, and cortical erosion; mutant myeloid cells hyper-respond to M-CSF/RANKL with elevated ERK/Syk and high TNF-α. Captures the autoinflammatory myeloid mechanism beautifully. - Genetic-dissection value (epistatic crosses): onto TNF-α–null (lesions resolve), op/op M-CSF-deficient (bone loss abrogated), and NFATc1 conditional KO (skeletal phenotype fully rescued) — these crosses established the causal hierarchy (TNF-α drives inflammation; NFATc1 is the essential bone-resorption effector; M-CSF is required for osteolysis). - Limitations: mice develop systemic/generalized inflammatory bone disease rather than the jaw-restricted human lesions — the striking human jaw-specificity and spontaneous pubertal regression are not faithfully reproduced, a key translational gap. Heterozygous mice are relatively mild unless challenged (e.g., oral microbial/periodontal challenge unmasks alveolar bone destruction — PMC7285758).
Related models: - Sh3bp2 knockout mice — used to show SH3BP2 is needed for optimal bone formation/osteoblast differentiation (PMID:20691350); loss-of-function ≠ cherubism (consistent with gain-of-function human mechanism). - Tankyrase-inhibitor / pathway models — pharmacologic tankyrase inhibition induces SH3BP2 accumulation and bone loss, phenocopying the mechanism (PMC6406327). - Ogfrl1 KO and Syrian-frameshift knock-in mice — generated for the recessive form but did not recapitulate human cherubism (human–model mismatch; PMC11062026). - In vitro / cellular: patient-derived and mutant myeloid cultures, osteoclast differentiation assays (M-CSF/RANKL), macrophage TNF-α assays; human lesion tissue immunohistochemistry (TRAP, NFATc1).
Applications: dissecting the tankyrase→SH3BP2→SYK/ERK→TNF-α/NFATc1→osteoclast axis; testing anti-TNF, anti-RANKL (denosumab), calcineurin inhibition, and SYK/TKI strategies.
Resources: MGI (mouse Sh3bp2), IMPC/KOMP for allele availability.
| Domain | Suggested terms |
|---|---|
| MONDO | MONDO:0007038 (cherubism) — verify |
| Genes (HGNC) | SH3BP2 (hgnc: — verify ID, OMIM *602104), OGFRL1 (recessive) |
| HPO | HP:0000303 (mandibular prognathia), HP:0012802 (abnormal maxilla morphology), HP:0000520 (proptosis), HP:0000668 (hypodontia), HP:0000689 (dental malocclusion), HP:0002716 (lymphadenopathy), HP:0002870 (obstructive sleep apnea), HP:0000505 (visual impairment) |
| GO (process) | GO:0045453 (bone resorption), GO:0030316 / GO:0045672 (osteoclast differentiation +reg), GO:0032760 (+reg TNF production), GO:0042116 (macrophage activation), GO:0033173 (calcineurin-NFAT cascade), GO:0006471 (protein ADP-ribosylation), GO:0043161 (proteasomal ubiquitin-dependent catabolism) |
| CL (cell types) | CL:0000092 (osteoclast), CL:0000235 (macrophage), CL:0000576 (monocyte), CL:0000062 (osteoblast) |
| UBERON | UBERON:0001684 (mandible), UBERON:0002397 (maxilla), UBERON:0003278 (jaw region), UBERON:0006800 (bony orbit), UBERON:0001091 (tooth) |
| CHEBI (drugs) | imatinib (CHEBI:45783), tacrolimus (CHEBI: verify), + antibody agents denosumab/adalimumab via NCIT |
| MAXO (treatments) | MAXO:0000950 (supportive care), MAXO:0000004 (surgical procedure), MAXO:0000079 (genetic counseling), MAXO:0000011 (physical/speech therapy), observation/surveillance |
just fetch-reference before curating)| Claim | Reference | Confidence |
|---|---|---|
| SH3BP2 exon 9 RSPPDG mutations cause cherubism | Ueki et al., Nat Genet 2001 (PMID:11381256) | High |
| Gene maps to 4p16.3 | Mangion et al., Am J Hum Genet 1999 | High |
| P416R knock-in mouse; TNF-α/M-CSF/RANKL myeloid mechanism | Ueki et al., Cell 2007 (PMID:17218256) | High (URL-confirmed) |
| Sh3bp2 needed for osteoblast/bone formation | (KO study) PMID:20691350 | High (URL-confirmed) |
| Loss of tankyrase-mediated 3BP2 destruction = pathogenic mechanism | Levaot et al., Cell 2011 (PMID:22153076) | High (URL-confirmed) |
| Tankyrase substrate-recognition rules | Guettler et al., Cell 2011 | High |
| Mutation potentiates TNF-α osteoclastogenesis via NFATc1 | Mukai et al., JBMR 2014 (doi:10.1002/jbmr.2295) | High |
| Pathophysiology review ("systemic autoinflammatory response") | Reichenberger/Ueki, Orphanet J Rare Dis 2012;7(S1):S5 (PMC3359958) | High |
| Best clinical practice / management | Orphanet J Rare Dis 2012;7(S1):S6 | High |
| OGFRL1 recessive cherubism; mouse mismatch | JBMR Plus 2024, ziae050 (PMC11062026) | High |
| Tacrolimus therapy, ↓NFATc1/TRAP | PMID:25491283 | High (URL-confirmed) |
| Denosumab 60 mg q6mo adult success | JBMR Plus 2024/25, ziae164 (PMC11742083) | High |
| Pharmacological management systematic review | PMC10044089 (2023) | High |
| Microbe-dependent alveolar bone destruction in het mice | PMC7285758 | High |
Bottom line, Harry: cherubism is a gorgeous little natural experiment in protein garbage collection gone wrong — knock out the tankyrase tag on SH3BP2 and the cell can't take out the trash, so an adapter protein piles up, cranks the myeloid TNF-α/RANKL machinery, and the jaws pay the price until puberty flips the switch back off. When you build the KB entry, the two things I'd flag hardest: (1) it's gain-of-function via escape-from-degradation, not a broken enzyme, and (2) the mouse models capture the mechanism but not the jaw-restriction or the self-regression, and the OGFRL1 mice fail outright — real human-model-mismatch material worth a HUMAN_MODEL_MISMATCH discussion node. Every PMID above should still get run through just fetch-reference before it lands in evidence, since I pulled some from search metadata rather than reading each abstract line-by-line.
Sources: OMIM 118400 · OMIM 602104 (SH3BP2) · GeneReviews NBK1137 · Orphanet · Pathophysiology review (PMC3359958) · Ueki 2007 Cell (PMID:17218256) · Levaot 2011 tankyrase (PMID:22153076) · Mukai 2014 JBMR · OGFRL1 recessive (PMC11062026) · Best clinical practice (OJRD S6) · Pharmacological review (PMC10044089) · Denosumab adult (PMC11742083) · Tacrolimus (PMID:25491283) · Imatinib (JOMS) · Microbe-dependent bone destruction (PMC7285758) · Nature Genetics 2001