Noonan syndrome with multiple lentigines (NSML), historically known as LEOPARD syndrome, is a rare autosomal dominant RASopathy of the RAS-MAPK signaling pathway. The LEOPARD acronym summarizes its cardinal features: multiple Lentigines, Electrocardiographic conduction abnormalities, Ocular hypertelorism, Pulmonary stenosis, Abnormalities of the genitalia, Retardation of growth, and sensorineural Deafness. Most cases are caused by specific missense variants in PTPN11 (LEOPARD syndrome 1), with a minority in RAF1 (LEOPARD syndrome 2) or BRAF (LEOPARD syndrome 3), and rare variants in MAP2K1. Unlike the gain-of-function PTPN11 alleles of Noonan syndrome, the recurrent NSML PTPN11 alleles produce a catalytically-impaired (dominant-negative) SHP2 phosphatase. In the heart this paradoxically drives Akt/mTOR hyperactivation (with agonist-evoked ERK/MAPK signaling instead abrogated) that produces hypertrophic cardiomyopathy, the feature that most distinguishes NSML from classic Noonan syndrome; ERK-pathway gain of function is the mechanism of the RAF1 (LPRD2) and BRAF (LPRD3) arms.
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name: Noonan Syndrome with Multiple Lentigines
creation_date: "2026-07-31T00:00:00Z"
description: >-
Noonan syndrome with multiple lentigines (NSML), historically known as LEOPARD
syndrome, is a rare autosomal dominant RASopathy of the RAS-MAPK signaling
pathway. The LEOPARD acronym summarizes its cardinal features: multiple
Lentigines, Electrocardiographic conduction abnormalities, Ocular
hypertelorism, Pulmonary stenosis, Abnormalities of the genitalia, Retardation
of growth, and sensorineural Deafness. Most cases are caused by specific
missense variants in PTPN11 (LEOPARD syndrome 1), with a minority in RAF1
(LEOPARD syndrome 2) or BRAF (LEOPARD syndrome 3), and rare variants in MAP2K1.
Unlike the gain-of-function PTPN11 alleles of Noonan syndrome, the recurrent
NSML PTPN11 alleles produce a catalytically-impaired (dominant-negative) SHP2
phosphatase. In the heart this paradoxically drives Akt/mTOR hyperactivation
(with agonist-evoked ERK/MAPK signaling instead abrogated) that produces
hypertrophic cardiomyopathy, the feature that most distinguishes NSML from
classic Noonan syndrome; ERK-pathway gain of function is the mechanism of the
RAF1 (LPRD2) and BRAF (LPRD3) arms.
category: Genetic
parents:
- RASopathy
mappings:
mondo_mappings:
- term:
id: MONDO:0007893
label: Noonan syndrome with multiple lentigines
mapping_predicate: skos:exactMatch
mapping_source: ORPHA:500
mapping_justification: Orphanet lists MONDO:0007893 as an exact cross-reference for LEOPARD syndrome / NSML.
consistency:
- reference: ORPHA:500
consistent: CONSISTENT
notes: "MONDO:0007893 | Exact"
disease_term:
preferred_term: Noonan syndrome with multiple lentigines
description: >-
A RASopathy characterized by multiple lentigines, hypertrophic
cardiomyopathy, ECG conduction abnormalities, ocular hypertelorism, pulmonary
stenosis, genital abnormalities, growth retardation, and sensorineural
deafness; formerly LEOPARD syndrome.
term:
id: MONDO:0007893
label: Noonan syndrome with multiple lentigines
inheritance:
- name: Autosomal Dominant
inheritance_term:
preferred_term: Autosomal dominant inheritance
term:
id: HP:0000006
label: Autosomal dominant inheritance
description: >-
NSML is inherited in an autosomal dominant manner; a proband may have a de
novo variant, and each child of an affected individual has a 50% chance of
inheriting the pathogenic variant.
evidence:
- reference: PMID:20301557
reference_title: "Noonan Syndrome with Multiple Lentigines (GeneReviews)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "NSML is inherited in an autosomal dominant manner"
explanation: GeneReviews states the autosomal dominant inheritance pattern.
has_subtypes:
- name: LPRD1
display_name: LEOPARD Syndrome 1 (PTPN11-related)
subtype_term:
preferred_term: LEOPARD syndrome 1
term:
id: MONDO:0100082
label: LEOPARD syndrome 1
description: >-
The most common molecular form, caused by heterozygous missense variants in
PTPN11 (encoding SHP2), most frequently p.Tyr279Cys and p.Thr468Met, which
affect the phosphatase (catalytic) domain.
genes:
- preferred_term: PTPN11
term:
id: hgnc:9644
label: PTPN11
evidence:
- reference: PMID:12058348
reference_title: "Grouping of multiple-lentigines/LEOPARD and Noonan syndromes on the PTPN11 gene."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Both mutations affect the PTPN11 phosphotyrosine phosphatase domain, which is involved in <30% of the NS PTPN11 mutations"
explanation: >-
Identifies the recurrent PTPN11 phosphatase-domain variants that define the
most common (LPRD1) molecular form.
- name: LPRD2
display_name: LEOPARD Syndrome 2 (RAF1-related)
subtype_term:
preferred_term: LEOPARD syndrome 2
term:
id: MONDO:0012691
label: LEOPARD syndrome 2
description: A minority form caused by heterozygous gain-of-function variants in RAF1, strongly associated with hypertrophic cardiomyopathy.
genes:
- preferred_term: RAF1
term:
id: hgnc:9829
label: RAF1
evidence:
- reference: PMID:17603483
reference_title: "Gain-of-function RAF1 mutations cause Noonan and LEOPARD syndromes with hypertrophic cardiomyopathy."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "two of six individuals with LEOPARD syndrome without PTPN11 mutations have missense mutations in RAF1, which encodes a serine-threonine kinase that activates MEK1 and MEK2"
explanation: Identifies RAF1 as a cause of LEOPARD syndrome (LPRD2) in PTPN11-negative individuals.
- name: LPRD3
display_name: LEOPARD Syndrome 3 (BRAF-related)
subtype_term:
preferred_term: LEOPARD syndrome 3
term:
id: MONDO:0013380
label: LEOPARD syndrome 3
description: A rare form caused by heterozygous variants in BRAF.
genes:
- preferred_term: BRAF
term:
id: hgnc:1097
label: BRAF
evidence:
- reference: PMID:20301557
reference_title: "Noonan Syndrome with Multiple Lentigines (GeneReviews)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "a heterozygous pathogenic variant in one of four genes (BRAF, MAP2K1, PTPN11, and RAF1)"
explanation: GeneReviews lists BRAF among the four NSML genes; BRAF defines LPRD3.
pathophysiology:
- name: Catalytically-Impaired SHP2 Phosphatase (Dominant-Negative)
biological_scale: MOLECULAR
description: >-
The recurrent NSML PTPN11 missense variants map to the catalytic PTP domain
and reduce SHP2 phosphatase activity, in contrast to the activating
(gain-of-function) SHP2 alleles that cause Noonan syndrome. These
catalytically-defective alleles act as dominant-negative mutations, so the
molecular pathogenesis of LEOPARD syndrome and Noonan syndrome is distinct
even though both are RASopathies.
molecular_functions:
- preferred_term: protein tyrosine phosphatase activity
term:
id: GO:0004725
label: protein tyrosine phosphatase activity
modifier: DECREASED
evidence:
- reference: PMID:16377799
reference_title: "PTPN11 (Shp2) mutations in LEOPARD syndrome have dominant negative, not activating, effects."
supports: SUPPORT
evidence_source: IN_VITRO
snippet: "LS mutants are catalytically defective and act as dominant negative mutations that interfere with growth factor/Erk-mitogen-activated protein kinase-mediated signaling"
explanation: >-
Enzymologic and structural studies show NSML SHP2 mutants are
catalytically defective dominant-negatives, opposite to the
gain-of-function alleles of Noonan syndrome.
- reference: PMID:16377799
reference_title: "PTPN11 (Shp2) mutations in LEOPARD syndrome have dominant negative, not activating, effects."
supports: SUPPORT
evidence_source: IN_VITRO
snippet: "Our results establish that the pathogenesis of LS and NS is distinct"
explanation: Establishes the mechanistic bifurcation between NSML and Noonan syndrome.
downstream:
- target: Dysregulated RAS-MAPK / ERK Signaling
description: Catalytically-defective, dominant-negative SHP2 perturbs growth-factor-driven ERK-MAPK signaling.
- target: mTOR Pathway Hyperactivation in Cardiomyocytes
description: >-
In cardiac tissue the mutant SHP2 shows enhanced binding to IRS1 and drives
increased Akt/mTOR activity, a route parallel to (not downstream of) the
abrogated cardiac ERK arm.
- name: RAF1/BRAF Kinase Gain-of-Function
biological_scale: MOLECULAR
description: >-
In the RAF1 (LPRD2) and BRAF (LPRD3) arms, the pathogenic variants are
activating kinase mutations, in contrast to the catalytically-impaired SHP2
of the PTPN11 arm. This provides the RAF1/BRAF entry point into the shared
RAS-MAPK/ERK mechanism, and the RAF1 HCM-hotspot alleles account for the
strong hypertrophic cardiomyopathy association of that arm.
molecular_functions:
- preferred_term: protein kinase activity
term:
id: GO:0004672
label: protein kinase activity
modifier: INCREASED
evidence:
- reference: PMID:17603483
reference_title: "Gain-of-function RAF1 mutations cause Noonan and LEOPARD syndromes with hypertrophic cardiomyopathy."
supports: SUPPORT
evidence_source: IN_VITRO
snippet: "Ectopically expressed RAF1 mutants from the two HCM hotspots had increased kinase activity and enhanced ERK"
explanation: >-
RAF1 HCM-hotspot mutants show increased kinase activity and enhanced ERK
activation, the gain-of-function entry point for the RAF1/BRAF arms.
downstream:
- target: Dysregulated RAS-MAPK / ERK Signaling
description: Activating RAF1/BRAF kinase mutations feed enhanced ERK-pathway output.
- name: Dysregulated RAS-MAPK / ERK Signaling
biological_scale: CELLULAR
description: >-
NSML-causing variants across PTPN11, RAF1, and BRAF converge on abnormal
RAS-MAPK (ERK1/2) pathway output, the unifying mechanism of the RASopathies.
In PTPN11-NSML, the catalytically-dead but still-scaffolding SHP2 produces
context-dependent, tissue-specific dysregulation rather than uniform loss of
signaling.
biological_processes:
- preferred_term: ERK1 and ERK2 cascade
term:
id: GO:0070371
label: ERK1 and ERK2 cascade
modifier: ABNORMAL
evidence:
- reference: PMID:16377799
reference_title: "PTPN11 (Shp2) mutations in LEOPARD syndrome have dominant negative, not activating, effects."
supports: SUPPORT
evidence_source: IN_VITRO
snippet: "interfere with growth factor/Erk-mitogen-activated protein kinase-mediated signaling"
explanation: >-
NSML SHP2 mutants interfere with growth-factor-evoked ERK-MAPK signaling;
the direction is tissue-dependent (e.g., ERK/MAPK is abrogated in the
NSML heart, whereas the RAF1/BRAF arms produce ERK gain of function).
downstream:
- target: Melanocytic Lentiginosis
description: Dysregulated RAS-MAPK signaling in the melanocytic lineage is the presumed basis of lentiginosis.
- name: mTOR Pathway Hyperactivation in Cardiomyocytes
biological_scale: CELLULAR
description: >-
In knock-in mouse models of the common Y279C NSML PTPN11 allele, cardiac
tissue shows enhanced binding of SHP2 to IRS1, decreased SHP2 catalytic
activity, and increased Akt and mTOR activity; enhanced mTOR activity is
critical for the resulting hypertrophic cardiomyopathy and can be reversed by
the mTOR inhibitor rapamycin.
cell_types:
- preferred_term: cardiomyocyte
term:
id: CL:0000746
label: cardiac muscle cell
evidence:
- reference: PMID:21339643
reference_title: "Rapamycin reverses hypertrophic cardiomyopathy in a mouse model of LEOPARD syndrome-associated PTPN11 mutation."
supports: SUPPORT
evidence_source: MODEL_ORGANISM
snippet: "enhanced binding of Shp2 to Irs1, decreased Shp2 catalytic activity, and abrogated agonist-evoked Erk/Mapk signaling. LS/+ mice also exhibited increased basal and agonist-induced Akt and mTor activity"
explanation: >-
In LS/+ hearts, SHP2-IRS1 binding is enhanced and ERK/MAPK signaling is
abrogated, while Akt and mTOR activity are increased — establishing the
Akt/mTOR (not ERK) route to NSML cardiac hypertrophy.
- reference: PMID:21339643
reference_title: "Rapamycin reverses hypertrophic cardiomyopathy in a mouse model of LEOPARD syndrome-associated PTPN11 mutation."
supports: SUPPORT
evidence_source: MODEL_ORGANISM
snippet: "The cardiac defects in LS/+ mice were completely reversed by treatment with rapamycin, an inhibitor of mTOR"
explanation: >-
Identifies mTOR hyperactivation as the critical driver of NSML hypertrophic
cardiomyopathy in a mouse model, reversible by mTOR inhibition.
downstream:
- target: Hypertrophic Cardiomyocyte Remodeling
description: Sustained Akt/mTOR signaling drives the cardiomyocyte hypertrophic growth program.
- name: Hypertrophic Cardiomyocyte Remodeling
biological_scale: TISSUE
description: >-
Aberrant developmental SHP2 signaling and downstream Akt/mTOR activity in
cardiomyocytes and endocardium drives concentric hypertrophic cardiomyopathy,
the hallmark that most distinguishes NSML from classic Noonan syndrome.
cell_types:
- preferred_term: cardiomyocyte
term:
id: CL:0000746
label: cardiac muscle cell
- preferred_term: endocardial cell
term:
id: CL:0002350
label: endocardial cell
biological_processes:
- preferred_term: cardiac muscle hypertrophy
term:
id: GO:0003300
label: cardiac muscle hypertrophy
modifier: INCREASED
evidence:
- reference: PMID:21339643
reference_title: "Rapamycin reverses hypertrophic cardiomyopathy in a mouse model of LEOPARD syndrome-associated PTPN11 mutation."
supports: SUPPORT
evidence_source: MODEL_ORGANISM
snippet: "Ptpn11(Y279C/+) (LS/+) mice recapitulated the human disorder, with short stature, craniofacial dysmorphia, and morphologic, histologic, echocardiographic, and molecular evidence of hypertrophic cardiomyopathy (HCM)"
explanation: A knock-in mouse of the common NSML allele recapitulates hypertrophic cardiomyopathy.
- reference: PMID:27348588
reference_title: "Developmental SHP2 dysfunction underlies cardiac hypertrophy in Noonan syndrome with multiple lentigines."
supports: SUPPORT
evidence_source: MODEL_ORGANISM
snippet: "NSML-associated hypertrophy stems from aberrant signaling mechanisms originating in developing endocardium"
explanation: Localizes the developmental origin of NSML cardiac hypertrophy to the endocardium.
- name: Melanocytic Lentiginosis
biological_scale: TISSUE
description: >-
Progressive accumulation of flat, pigmented macules (lentigines) reflects
dysregulated melanocyte proliferation/pigmentation, presumed downstream of
RAS-MAPK dysregulation in the melanocytic lineage. Lentigines typically
appear at age four to five years and increase to the thousands by puberty.
cell_types:
- preferred_term: melanocyte
term:
id: CL:0000148
label: melanocyte
evidence:
- reference: PMID:20301557
reference_title: "Noonan Syndrome with Multiple Lentigines (GeneReviews)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "In general, lentigines do not appear until age four to five years but then increase to the thousands by puberty"
explanation: GeneReviews describes the characteristic progressive accumulation of lentigines.
phenotypes:
- name: Multiple lentigines
description: Dispersed flat, black-brown macules, mostly on the face, neck, and upper trunk, sparing the mucosa; the defining cutaneous feature.
phenotype_term:
preferred_term: Multiple lentigines
term:
id: HP:0001003
label: Multiple lentigines
evidence:
- reference: PMID:20301557
reference_title: "Noonan Syndrome with Multiple Lentigines (GeneReviews)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Multiple lentigines present as dispersed flat, black-brown macules, mostly on the face, neck, and upper part of the trunk with sparing of the mucosa"
explanation: GeneReviews describes the cardinal multiple lentigines of NSML.
- name: Cafe-au-lait spots
phenotype_term:
preferred_term: Cafe-au-lait spot
term:
id: HP:0000957
label: Cafe-au-lait spot
evidence:
- reference: PMID:16733669
reference_title: 'PTPN11 gene mutations: linking the Gln510Glu mutation to the "LEOPARD syndrome phenotype".'
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "café-au-lait spots and multiple lentigines"
explanation: Café-au-lait spots co-occur with lentigines in the LEOPARD syndrome phenotype.
- name: Hypertrophic cardiomyopathy
description: A major cardiac feature, typically appearing in infancy and sometimes progressive; distinguishes NSML from classic Noonan syndrome.
phenotype_term:
preferred_term: Hypertrophic cardiomyopathy
term:
id: HP:0001639
label: Hypertrophic cardiomyopathy
evidence:
- reference: PMID:20301557
reference_title: "Noonan Syndrome with Multiple Lentigines (GeneReviews)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Approximately 85% of affected individuals have heart defects, including hypertrophic cardiomyopathy (typically appearing during infancy and sometimes progressive) and pulmonary valve stenosis"
explanation: GeneReviews reports heart defects (HCM and pulmonary stenosis) in ~85% of individuals.
- reference: PMID:16733669
reference_title: 'PTPN11 gene mutations: linking the Gln510Glu mutation to the "LEOPARD syndrome phenotype".'
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "rapidly progressive severe biventricular obstructive hypertrophic cardiomyopathy and structural abnormalities of the mitral valve"
explanation: Documents severe obstructive HCM in NSML patients with the Q510E PTPN11 allele.
- name: Cardiac conduction abnormality
description: Electrocardiographic conduction defects, the "E" of the LEOPARD acronym.
phenotype_term:
preferred_term: Cardiac conduction abnormality
term:
id: HP:0031546
label: Cardiac conduction abnormality
evidence:
- reference: PMID:16377799
reference_title: "PTPN11 (Shp2) mutations in LEOPARD syndrome have dominant negative, not activating, effects."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "characterized by Lentigines, Electrocardiogram abnormalities, Ocular hypertelorism, Pulmonic valvular stenosis, Abnormalities of genitalia, Retardation of growth, and Deafness"
explanation: The LEOPARD acronym includes electrocardiographic (conduction) abnormalities.
- name: Pulmonic stenosis
description: Pulmonary valve stenosis, a common structural heart defect in NSML and the "P" of the LEOPARD acronym.
phenotype_term:
preferred_term: Pulmonic stenosis
term:
id: HP:0001642
label: Pulmonic stenosis
evidence:
- reference: PMID:20301557
reference_title: "Noonan Syndrome with Multiple Lentigines (GeneReviews)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Approximately 85% of affected individuals have heart defects, including hypertrophic cardiomyopathy (typically appearing during infancy and sometimes progressive) and pulmonary valve stenosis"
explanation: GeneReviews lists pulmonary valve stenosis among the NSML heart defects.
- name: Hypertelorism
description: Ocular hypertelorism (widely spaced eyes), the "O" of the LEOPARD acronym.
phenotype_term:
preferred_term: Hypertelorism
term:
id: HP:0000316
label: Hypertelorism
evidence:
- reference: PMID:20301557
reference_title: "Noonan Syndrome with Multiple Lentigines (GeneReviews)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "dysmorphic facial features including widely spaced eyes and ptosis"
explanation: GeneReviews lists widely spaced eyes (ocular hypertelorism) among the dysmorphic facial features.
- name: Ptosis
phenotype_term:
preferred_term: Ptosis
term:
id: HP:0000508
label: Ptosis
evidence:
- reference: PMID:20301557
reference_title: "Noonan Syndrome with Multiple Lentigines (GeneReviews)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "dysmorphic facial features including widely spaced eyes and ptosis"
explanation: GeneReviews lists ptosis among the dysmorphic facial features.
- name: Pectus deformity
description: Pectus deformity (excavatum or carinatum) of the chest wall, a cardinal feature.
phenotype_term:
preferred_term: Pectus deformity (excavatum or carinatum)
term:
id: HP:0000766
label: Abnormal sternum morphology
evidence:
- reference: PMID:20301557
reference_title: "Noonan Syndrome with Multiple Lentigines (GeneReviews)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "the cardinal features consist of lentigines, hypertrophic cardiomyopathy, short stature, pectus deformity, and dysmorphic facial features"
explanation: GeneReviews lists pectus deformity among the cardinal features of NSML.
- name: Cryptorchidism
description: Abnormalities of the genitalia (e.g., cryptorchidism), the "A" of the LEOPARD acronym.
phenotype_term:
preferred_term: Cryptorchidism
term:
id: HP:0000028
label: Cryptorchidism
evidence:
- reference: PMID:20301557
reference_title: "Noonan Syndrome with Multiple Lentigines (GeneReviews)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Standard treatment of hypertrophic cardiomyopathy, structural heart defects, eye anomalies / eye movement abnormalities, seizures, cryptorchidism, and developmental issues"
explanation: GeneReviews lists cryptorchidism among the manifestations requiring management in NSML.
- name: Short stature
description: Postnatal growth restriction; the "R" (retardation of growth) of the LEOPARD acronym.
phenotype_term:
preferred_term: Short stature
term:
id: HP:0004322
label: Short stature
evidence:
- reference: PMID:20301557
reference_title: "Noonan Syndrome with Multiple Lentigines (GeneReviews)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Postnatal growth restriction resulting in short stature occurs in fewer than 50% of affected persons"
explanation: GeneReviews reports short stature in fewer than 50% of individuals.
- name: Sensorineural hearing impairment
description: Sensorineural deafness, the "D" of the LEOPARD acronym.
frequency: OCCASIONAL
phenotype_term:
preferred_term: Sensorineural hearing impairment
term:
id: HP:0000407
label: Sensorineural hearing impairment
evidence:
- reference: PMID:20301557
reference_title: "Noonan Syndrome with Multiple Lentigines (GeneReviews)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Sensorineural hearing deficits, present in approximately 20% of affected individuals, are poorly characterized"
explanation: GeneReviews reports sensorineural hearing deficits in ~20% of individuals.
- name: Mild intellectual disability
frequency: FREQUENT
phenotype_term:
preferred_term: Mild intellectual disability
term:
id: HP:0001256
label: Mild intellectual disability
evidence:
- reference: PMID:20301557
reference_title: "Noonan Syndrome with Multiple Lentigines (GeneReviews)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Intellectual disability, typically mild, is observed in approximately 30% of persons with NSML"
explanation: GeneReviews reports mild intellectual disability in ~30% of individuals.
genetic:
- name: PTPN11
gene_term:
preferred_term: PTPN11
term:
id: hgnc:9644
label: PTPN11
association: Pathogenic Variants
frequency: VERY_FREQUENT
notes: >-
Encodes the protein tyrosine phosphatase SHP2. The most common cause of NSML
(~90% of cases); recurrent phosphatase-domain alleles (e.g., Y279C, T468M)
are catalytically impairing/dominant-negative, distinct from the activating
Noonan alleles.
evidence:
- reference: PMID:17603483
reference_title: "Gain-of-function RAF1 mutations cause Noonan and LEOPARD syndromes with hypertrophic cardiomyopathy."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "PTPN11 mutations cause 90% of LEOPARD syndrome cases"
explanation: Establishes PTPN11 as the predominant (~90%) NSML gene.
- reference: PMID:12058348
reference_title: "Grouping of multiple-lentigines/LEOPARD and Noonan syndromes on the PTPN11 gene."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "The study demonstrates that ML/LEOPARD syndrome and NS are allelic disorders"
explanation: Establishes that NSML/LEOPARD and Noonan syndrome are allelic PTPN11 disorders.
- name: RAF1
gene_term:
preferred_term: RAF1
term:
id: hgnc:9829
label: RAF1
association: Pathogenic Variants
frequency: VERY_RARE
notes: >-
A serine-threonine kinase that activates MEK1/MEK2; second gene implicated in
NSML (a small minority of cases), strongly associated with hypertrophic
cardiomyopathy.
evidence:
- reference: PMID:17603483
reference_title: "Gain-of-function RAF1 mutations cause Noonan and LEOPARD syndromes with hypertrophic cardiomyopathy."
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Of 19 subjects with a RAF1 mutation in two hotspots, 18 (or 95%) showed hypertrophic cardiomyopathy (HCM), compared with the 18% prevalence of HCM among individuals with Noonan syndrome in general"
explanation: RAF1 hotspot variants are strongly associated with hypertrophic cardiomyopathy in the RASopathy spectrum.
- name: BRAF
gene_term:
preferred_term: BRAF
term:
id: hgnc:1097
label: BRAF
association: Pathogenic Variants
frequency: VERY_RARE
notes: A serine-threonine kinase of the RAS-MAPK pathway; rare cause of NSML (LPRD3).
evidence:
- reference: PMID:20301557
reference_title: "Noonan Syndrome with Multiple Lentigines (GeneReviews)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "a heterozygous pathogenic variant in one of four genes (BRAF, MAP2K1, PTPN11, and RAF1)"
explanation: GeneReviews lists BRAF among the four NSML genes.
- name: MAP2K1
gene_term:
preferred_term: MAP2K1
term:
id: hgnc:6840
label: MAP2K1
association: Pathogenic Variants
frequency: VERY_RARE
notes: MEK1 kinase; rarely implicated in NSML.
evidence:
- reference: PMID:20301557
reference_title: "Noonan Syndrome with Multiple Lentigines (GeneReviews)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "a heterozygous pathogenic variant in one of four genes (BRAF, MAP2K1, PTPN11, and RAF1)"
explanation: GeneReviews lists MAP2K1 among the four NSML genes.
treatments:
- name: Hypertrophic cardiomyopathy management and cardiac surveillance
description: >-
Standard treatment of hypertrophic cardiomyopathy and structural heart
defects, with echocardiographic surveillance (annual until age three years,
then at ages five and ten years, or as clinically indicated) and monitoring
for conduction abnormalities and arrhythmia.
treatment_term:
preferred_term: supportive care
term:
id: NCIT:C15747
label: Supportive Care
evidence:
- reference: PMID:20301557
reference_title: "Noonan Syndrome with Multiple Lentigines (GeneReviews)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Standard treatment of hypertrophic cardiomyopathy, structural heart defects, eye anomalies / eye movement abnormalities, seizures, cryptorchidism, and developmental issues"
explanation: GeneReviews describes standard management of the cardiac and other manifestations of NSML.
- name: Growth hormone therapy (with caution in HCM)
description: >-
Growth hormone treatment may be considered for short stature, but data in
NSML are lacking and it must be used with great caution (if at all) in
individuals with hypertrophic cardiomyopathy to avoid exacerbating the
cardiac condition.
treatment_term:
preferred_term: Pharmacotherapy
term:
id: NCIT:C15986
label: Pharmacotherapy
evidence:
- reference: PMID:20301557
reference_title: "Noonan Syndrome with Multiple Lentigines (GeneReviews)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "treatment with growth hormone must be undertaken with great caution (if at all) to avoid exacerbating a cardiac condition"
explanation: GeneReviews flags growth hormone as an agent to use with great caution in NSML with HCM.
- name: Hearing aids
description: Hearing aids may be helpful when sensorineural hearing loss is present.
therapeutic_modality: DEVICE
treatment_term:
preferred_term: hearing aid usage
evidence:
- reference: PMID:20301557
reference_title: "Noonan Syndrome with Multiple Lentigines (GeneReviews)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "Hearing aids may be helpful if hearing loss is present"
explanation: GeneReviews recommends hearing aids for NSML-associated hearing loss.
- name: mTOR inhibition (rapamycin/sirolimus, preclinical)
description: >-
Mechanism-targeted proof of concept: in a knock-in mouse model of the common
Y279C NSML PTPN11 allele, the mTOR inhibitor rapamycin completely reversed
established hypertrophic cardiomyopathy. This is preclinical (mouse) evidence
and not an established human NSML therapy, but it provides the mechanistic
rationale for targeting the Akt/mTOR arm.
therapeutic_modality: SMALL_MOLECULE
treatment_term:
preferred_term: Pharmacotherapy
term:
id: NCIT:C15986
label: Pharmacotherapy
therapeutic_agent:
- preferred_term: sirolimus
term:
id: CHEBI:9168
label: sirolimus
target_mechanisms:
- target: mTOR Pathway Hyperactivation in Cardiomyocytes
treatment_effect: INHIBITS
description: mTOR inhibition suppresses the Akt/mTOR arm that drives NSML cardiac hypertrophy.
evidence:
- reference: PMID:21339643
reference_title: "Rapamycin reverses hypertrophic cardiomyopathy in a mouse model of LEOPARD syndrome-associated PTPN11 mutation."
supports: SUPPORT
evidence_source: MODEL_ORGANISM
snippet: "The cardiac defects in LS/+ mice were completely reversed by treatment with rapamycin, an inhibitor of mTOR"
explanation: mTOR inhibition reversed the cardiac hypertrophy driven by the Akt/mTOR node.
evidence:
- reference: PMID:21339643
reference_title: "Rapamycin reverses hypertrophic cardiomyopathy in a mouse model of LEOPARD syndrome-associated PTPN11 mutation."
supports: SUPPORT
evidence_source: MODEL_ORGANISM
snippet: "The cardiac defects in LS/+ mice were completely reversed by treatment with rapamycin, an inhibitor of mTOR"
explanation: Provides the preclinical rationale for mTOR inhibition in NSML hypertrophic cardiomyopathy.
- name: MEK inhibition (trametinib, in clinical trials)
description: >-
MEK inhibition targets the ERK-pathway output shared across the RASopathy
arms and is under randomized-controlled-trial evaluation for
RASopathy-associated hypertrophic cardiomyopathy (MEKinRAS, NCT06555237).
The RAF1 (LPRD2) arm, which carries a high HCM burden, is a squarely
relevant population.
therapeutic_modality: SMALL_MOLECULE
treatment_term:
preferred_term: Pharmacotherapy
term:
id: NCIT:C15986
label: Pharmacotherapy
therapeutic_agent:
- preferred_term: trametinib
term:
id: CHEBI:75998
label: trametinib
target_mechanisms:
- target: Dysregulated RAS-MAPK / ERK Signaling
treatment_effect: INHIBITS
description: MEK inhibition dampens the ERK-pathway output downstream of the RAS-MAPK lesion.
evidence:
- reference: clinicaltrials:NCT06555237
reference_title: "MEK Inhibitors for the Treatment of Hypertrophic Cardiomyopathy in Patients With RASopathies (MEKinRAS)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "evaluate the effectiveness of trametinib treatment in patients with Hyperthropic cardiomyopathy and a genetic mutation in the RAS/MAPK pathway"
explanation: The MEKinRAS RCT evaluates the MEK inhibitor trametinib for RASopathy-associated HCM.
evidence:
- reference: clinicaltrials:NCT06555237
reference_title: "MEK Inhibitors for the Treatment of Hypertrophic Cardiomyopathy in Patients With RASopathies (MEKinRAS)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "evaluate the effectiveness of trametinib treatment in patients with Hyperthropic cardiomyopathy and a genetic mutation in the RAS/MAPK pathway"
explanation: MEKinRAS is a randomized controlled trial of trametinib for RASopathy HCM.
diagnosis:
- name: Clinical diagnostic criteria
description: >-
Clinical diagnosis can be established in a proband with multiple lentigines
plus two other cardinal features (cardiac abnormalities; poor linear growth /
short stature; pectus deformity; and dysmorphic facial features including
widely spaced eyes and ptosis), or, in the absence of lentigines, three of
the other cardinal manifestations plus an affected first-degree relative.
diagnosis_term:
preferred_term: physical examination
term:
id: NCIT:C20989
label: Physical Examination
evidence:
- reference: PMID:20301557
reference_title: "Noonan Syndrome with Multiple Lentigines (GeneReviews)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "can be established in a proband with multiple lentigines plus two other cardinal features"
explanation: GeneReviews states the clinical diagnostic criteria for NSML.
- name: Molecular genetic testing
description: >-
Molecular diagnosis is established by identifying a heterozygous pathogenic
variant in one of the four NSML genes via a multigene RASopathy panel.
diagnosis_term:
preferred_term: molecular genetic testing
term:
id: NCIT:C19770
label: Molecular Analysis
evidence:
- reference: PMID:20301557
reference_title: "Noonan Syndrome with Multiple Lentigines (GeneReviews)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "The molecular diagnosis can be established in a proband with suggestive findings and a heterozygous pathogenic variant in one of four genes (BRAF, MAP2K1, PTPN11, and RAF1)"
explanation: GeneReviews describes the molecular (four-gene panel) diagnostic strategy for NSML.
clinical_trials:
- name: NCT06555237
description: >-
MEKinRAS — a randomized controlled trial evaluating the MEK inhibitor
trametinib for hypertrophic cardiomyopathy in patients with RASopathies
(RAS/MAPK pathway mutations).
target_phenotypes:
- preferred_term: Hypertrophic cardiomyopathy
term:
id: HP:0001639
label: Hypertrophic cardiomyopathy
evidence:
- reference: clinicaltrials:NCT06555237
reference_title: "MEK Inhibitors for the Treatment of Hypertrophic Cardiomyopathy in Patients With RASopathies (MEKinRAS)"
supports: SUPPORT
evidence_source: HUMAN_CLINICAL
snippet: "evaluate the effectiveness of trametinib treatment in patients with Hyperthropic cardiomyopathy and a genetic mutation in the RAS/MAPK pathway"
explanation: Trial targeting RASopathy-associated hypertrophic cardiomyopathy with a MEK inhibitor.
references:
- reference: PMID:20301557
title: "Noonan Syndrome with Multiple Lentigines"
tags:
- GeneReviews
Noonan syndrome with multiple lentigines (NSML), historically known as LEOPARD syndrome, is a rare autosomal dominant RASopathy caused predominantly by loss-of-function/dominant-negative missense variants in PTPN11 (encoding the tyrosine phosphatase SHP2), with rarer causal variants in RAF1, BRAF, and MAP2K1. It is defined clinically by the acronym-derived features: multiple Lentigines, ECG conduction abnormalities, Ocular hypertelorism, Pulmonary valve stenosis, Abnormal genitalia, Retardation of growth, and sensorineural Deafness — though the name is now deprecated in favor of "Noonan syndrome with multiple lentigines" to reflect its position on the Noonan syndrome/RASopathy phenotypic continuum (GeneReviews, NBK1383).
Overview: NSML is a multisystem RASopathy presenting with progressive multiple lentigines, hypertrophic cardiomyopathy (HCM) and other cardiac defects, short stature, pectus deformity, characteristic facial dysmorphism, sensorineural hearing loss, and — in a subset — mild intellectual disability. It is mechanistically and phenotypically distinct from, yet overlapping with, classic Noonan syndrome (NS) and cardiofaciocutaneous syndrome (CFCS), together forming the RASopathy spectrum of RAS/MAPK pathway disorders.
Key identifiers: - OMIM: Phenotypic series PS151100 - #151100 — LEOPARD syndrome 1 (LPRD1), PTPN11 - #611554 — LEOPARD syndrome 2 (LPRD2), RAF1 - #613707 — LEOPARD syndrome 3 (LPRD3), BRAF - Orphanet: ORPHA:500 ("Leopard syndrome") - MONDO: MONDO:0007893 - ICD-10-CM: Q87.1 (Congenital malformation syndromes predominantly associated with short stature) - MeSH: LEOPARD Syndrome (D007925) - GeneReviews: NBK1383
Synonyms: LEOPARD syndrome; Lentiginosis profusa; Multiple lentigines syndrome; Cardiocutaneous syndrome; Capute syndrome; Noonan syndrome with multiple lentigines (current preferred term, per 2018 international RASopathy nomenclature consensus, reflecting recognition that the disorder is a subtype within the Noonan spectrum rather than a fully distinct entity).
Evidence basis: Information is derived from aggregated disease-level resources (OMIM, Orphanet, GeneReviews) built from case reports, case series (~150+ reported individuals, per GeneReviews), and cohort studies, rather than a large EHR-scale population. This is consistent with a genuinely rare condition without population-based prevalence data.
Disease causal factors: NSML is caused by heterozygous germline pathogenic missense variants in one of four RAS/MAPK pathway genes. There is no environmental, infectious, or purely mechanistic etiology — this is a monogenic developmental signaling disorder.
Genetic causal factors (per GeneReviews NBK1383):
| Gene | HGNC | % of NSML | Mechanism |
|---|---|---|---|
| PTPN11 | HGNC:9644 | >95% (85–90% in earlier series) | Predominantly catalytically-inactivating, dominant-negative variants in the SHP2 PTP (catalytic) domain |
| RAF1 | HGNC:9829 | <3% | Gain-of-function (activating) variants, mostly at Ser259 |
| BRAF | HGNC:1097 | Rare (few reported cases) | Gain-of-function variants |
| MAP2K1 | HGNC:6840 | Very rare (~1 reported individual) | Gain-of-function |
Foundational papers establishing PTPN11 as the major NSML gene: Digilio MC, et al. "Grouping of multiple-lentigines/LEOPARD and Noonan syndromes on the PTPN11 gene." Am J Hum Genet. 2002;71(2):389-394. PMID:12161596 — the paper that first showed distinct PTPN11 mutations (exon 8 and exon 13 "hotspots," e.g., Y279C, T468M) segregate specifically with the LEOPARD/NSML phenotype rather than classic NS.
RAF1 causal role: Pandit B, et al. "Gain-of-function RAF1 mutations cause Noonan and LEOPARD syndromes with hypertrophic cardiomyopathy." Nat Genet. 2007;39(8):1007-1012. PMID:17603483 — reported that of subjects with RAF1 mutations at two hotspots (mostly flanking Ser259, the 14-3-3 binding autoinhibitory residue), 95% developed HCM, versus ~18% background HCM prevalence in general NS.
Molecular mechanism distinction (critical for pathophysiology modeling): Unlike classic-NS-causing PTPN11 variants, which are activating (gain-of-function for SHP2 phosphatase activity, increasing RAS-MAPK flux), NSML-causing PTPN11 variants are catalytically inactivating and act as dominant-negatives — see Kontaridis MI, et al. "PTPN11 (Shp2) mutations in LEOPARD syndrome have dominant negative, not activating, effects." J Biol Chem. 2006;281(10):6785-6792. PMID:16377799: "LEOPARD syndrome mutants are catalytically defective and act as dominant negative mutations that interfere with growth factor/Erk-mitogen-activated protein kinase-mediated signaling." This distinction (LOF/dominant-negative SHP2 in NSML vs. GOF SHP2 in NS) is the central mechanistic bifurcation of the PTPN11-associated RASopathies, despite both converging on paradoxically hyperactive ERK signaling in specific tissue contexts (notably heart), likely via SHP2-independent scaffolding/PZR-mediated compensatory mechanisms.
Risk factors: - Genetic: Autosomal dominant inheritance — an affected parent confers 50% transmission risk per child. Most cases are simplex (presumed de novo), though the proportion of de novo cases is not firmly established (GeneReviews). - Environmental: None established. This is a purely germline monogenic disorder; there is no known toxin, occupational, or infectious contribution. - Age/sex: No sex predilection reported. Onset is congenital/prenatal at the molecular level; clinical features (especially lentigines) accumulate progressively through childhood.
Protective factors: None specifically established for disease occurrence (it is fully penetrant once the variant is inherited/arises de novo). Notably, at the phenotypic/metabolic level, the LEOPARD-associated SHP2 mutation has been shown in mouse models to confer a protective metabolic phenotype (see Mechanism section) — an unusual "trade-off" finding.
Gene-environment interactions: Not established; NSML severity and expressivity appear to be driven by allelic/genotype effects (which gene, which specific residue) rather than documented environmental modifiers.
All phenotype frequencies below are from GeneReviews (NBK1383) unless otherwise cited; HPO term suggestions are given per phenotype.
Progression/course: Lentigines are absent at birth and accumulate over childhood/adolescence (progressive). HCM, if present, often manifests in infancy and can be progressive. Hearing loss and short stature are generally stable once established but require ongoing developmental/audiologic monitoring. Overall disease course is chronic and lifelong, non-remitting, with severity highly variable even within families (variable expressivity).
Quality of life impact: Cosmetic impact of lentigines can be psychosocially significant (visible facial/trunk pigmentation from childhood). Cardiac disease (HCM, arrhythmia risk) and hearing loss are the principal drivers of morbidity and long-term QoL burden; no NSML-specific EQ-5D/SF-36 data were identified in this search, but general RASopathy QoL literature emphasizes cardiac and neurodevelopmental domains as most impactful.
Causal genes (detailed):
| Gene | HGNC ID | Protein | Chromosomal locus | OMIM gene |
|---|---|---|---|---|
| PTPN11 | HGNC:9644 | SHP2 (tyrosine-protein phosphatase non-receptor type 11) | 12q24.13 | *176876 |
| RAF1 | HGNC:9829 | RAF1/c-Raf (serine/threonine kinase) | 3p25.2 | *164760 |
| BRAF | HGNC:1097 | B-Raf | 7q34 | *164757 |
| MAP2K1 | HGNC:6840 | MEK1 | 15q22.31 | *176872 |
Pathogenic variant characteristics: - Variant type: Overwhelmingly missense (single amino-acid substitutions), consistent with a requirement for a specific structural/functional perturbation rather than simple loss of the gene product (null alleles are not typically disease-causing in this manner). - PTPN11 hotspots: Classic NSML-associated residues cluster in the PTP catalytic domain, notably Y279C and T468M (together accounting for the majority of PTPN11-NSML cases), plus others including A461T, G464A, Q506P, Q510E/P, T507K. These are largely non-overlapping with the N-SH2/PTP-interface hotspots that cause classic gain-of-function NS (e.g., N308D, D61G). - Variant classification: ClinVar lists numerous PTPN11 variants specifically annotated "Pathogenic"/"Likely pathogenic" for "Noonan syndrome with multiple lentigines" (e.g., NM_002834.5:c.836A>G p.Tyr279Cys; c.1403C>T p.Thr468Met — both classic NSML hotspot alleles). - RAF1 hotspot: Predominantly substitutions flanking Ser259 (a 14-3-3 binding/autoinhibitory residue), which when mutated relieve autoinhibition → constitutive kinase activation (Pandit et al. 2007, PMID:17603483). - Germline vs somatic: NSML variants are constitutional/germline (heritable), distinguishing them from the somatic PTPN11 mutations found in juvenile myelomonocytic leukemia and other sporadic cancers, which — notably — are typically the activating class of PTPN11 mutation, not the NSML dominant-negative class. - Functional consequence: PTPN11-NSML variants → loss of SHP2 catalytic (phosphatase) activity with dominant-negative interference of normal SHP2 signaling (PMID:16377799). RAF1/BRAF/MAP2K1-NSML variants → classic gain-of-function kinase activation, paralleling their mechanism in classic NS. - Allele frequency: These are rare, highly penetrant pathogenic alleles essentially absent from population databases (gnomAD) consistent with disease severity and predominantly de novo/small-pedigree segregation.
Modifier genes: No well-established modifier genes for NSML severity have been robustly identified in the literature reviewed; expressivity varies substantially even within PTPN11-Y279C or T468M carriers, suggesting stochastic or background-genetic modulation not yet mapped.
Epigenetic information: No NSML-specific DNA methylation/chromatin studies were identified in this search; SHP2 broadly participates in growth-factor receptor signal transduction rather than direct epigenetic regulation, though downstream ERK activity can influence chromatin-modifying enzyme activity indirectly.
Chromosomal abnormalities: None — NSML is caused by point mutations, not large structural/copy-number chromosomal changes.
No environmental toxins, radiation, pollutants, occupational exposures, lifestyle factors, or infectious agents are implicated in NSML causation — it is a purely monogenic germline disorder. This section is not applicable beyond noting the absence of such associations in the literature reviewed.
Overview causal chain: Germline PTPN11 (or RAF1/BRAF/MAP2K1) missense variant → altered RAS/MAPK (ERK) pathway signal transduction (tissue-context-dependent gain vs. loss of specific signaling outputs) → aberrant developmental signaling in cardiac, craniofacial, melanocytic, growth-plate, and neural tissues → the multisystem NSML phenotype.
Molecular pathway: RAS-MAPK (RAS/RAF/MEK/ERK) signal transduction pathway — GO/KEGG: KEGG hsa04010 (MAPK signaling pathway); relevant GO biological process term GO:0007265 (Ras protein signal transduction) and GO:0038095 (Fc-epsilon receptor signaling pathway components feeding into ERK, where SHP2 also participates), plus GO:0004725 (protein tyrosine phosphatase activity) for SHP2's catalytic function.
SHP2/PTPN11-specific mechanism: SHP2 is a cytoplasmic non-receptor protein-tyrosine phosphatase that normally acts as a positive transducer of RTK (receptor tyrosine kinase)-RAS-ERK signaling in most contexts (its N-SH2 domain autoinhibits the PTP domain at baseline; growth-factor-induced phosphotyrosine binding to the SH2 domains opens the catalytic pocket). Classic NS mutations destabilize this autoinhibited conformation → constitutively open/active SHP2 → excess RAS-ERK flux. NSML mutations instead directly impair PTP catalytic activity (many cluster in/near the catalytic cleft) while still permitting normal SH2-mediated docking, producing a catalytically-dead but still-scaffolding SHP2 species that acts as a dominant-negative, sequestering binding partners and paradoxically causing tissue-specific hyperactivation of ERK in some contexts (e.g., developing heart) via PZR-dependent or other scaffold-mediated compensatory signaling (Kontaridis 2006, PMID:16377799; Lauriol et al., JCI 2016, PMID:27348588).
Cardiac hypertrophy mechanism (best-characterized organ pathophysiology): - Lauriol J, et al. "Developmental SHP2 dysfunction underlies cardiac hypertrophy in Noonan syndrome with multiple lentigines." J Clin Invest. 2016;126(8):2989-3005. PMID:27348588 — showed using a knock-in Ptpn11^Y279C/+ mouse (NSML model) that HCM originates from aberrant SHP2 signaling in the developing endocardium; endothelial-specific expression of the NSML mutant SHP2 was sufficient to induce adult-onset cardiac hypertrophy, implicating a developmental-origin, tissue-autonomous endocardial signaling defect rather than a purely adult cardiomyocyte-intrinsic process. - Marin TM, et al. (PZR paper) "PZR coordinates Shp2 Noonan and LEOPARD syndrome signaling in zebrafish and mice." J Clin Invest. 2011 (cited via PubMed). PMID:24865967 — identifies PZR (a transmembrane SHP2-binding adaptor) as a convergence point coordinating both NS (GOF) and NSML (dominant-negative) SHP2 signaling in cardiac tissue across zebrafish and mouse models. - Marin TM, et al. "Rapamycin reverses hypertrophic cardiomyopathy in a mouse model of LEOPARD syndrome-associated PTPN11 mutation." J Clin Invest. 2011;121(3):1026-1043. PMID:21339643 — demonstrated that NSML-associated PTPN11 mutant knock-in mice develop HCM via mTOR pathway hyperactivation downstream of the aberrant SHP2 signal, and that rapamycin (an mTOR inhibitor) reverses established cardiac hypertrophy — a key mechanistic and therapeutic-rationale finding, and one of the first proof-of-concept "mechanism-targeted therapy reverses RASopathy cardiomyopathy" studies. - Edouard T, et al./Kontaridis lab, JCI Insight, "Tyrosyl phosphorylation of PZR promotes hypertrophic cardiomyopathy in PTPN11-associated Noonan syndrome with multiple lentigines" — further elaborates the PZR-tyrosine-phosphorylation axis as necessary for NSML-associated cardiac hypertrophy.
Cellular processes involved: Aberrant cardiomyocyte/endocardial growth-factor signaling → hypertrophic cardiomyocyte growth program (mTOR/ERK hyperactivation); dysregulated melanocyte proliferation/pigment production underlying lentigo formation; abnormal chondrocyte/growth-plate signaling contributing to short stature; RAS-MAPK-dependent craniofacial neural crest/mesenchymal patterning defects producing dysmorphic facial features (consistent with the broader RASopathy craniofacial mechanism also seen in NS/CFCS).
Protein dysfunction: Loss-of-function (catalytic) combined with dominant-negative scaffolding retention for PTPN11-NSML SHP2; classic gain-of-function kinase activation for RAF1/BRAF/MAP2K1-NSML variants — see UniProt Q06124 (PTPN11/SHP2), P04049 (RAF1), P15056 (BRAF) for domain/structure annotations.
Metabolic changes: Notably, Tajan M, et al. "LEOPARD syndrome-associated SHP2 mutation confers leanness and protection from diet-induced obesity." Proc Natl Acad Sci USA. 2014;111(42):E4494-E4503. PMID:25288766 — found that mice carrying the NSML-associated SHP2 mutation display reduced adiposity, resistance to diet-induced obesity, and improved carbohydrate metabolism, with impaired adipogenesis and increased energy expenditure. This is a striking, disease-relevant metabolic phenotype directly attributable to loss of catalytic SHP2 activity in adipose tissue, representing a rare example of a RASopathy mutation conferring a "beneficial" systemic metabolic trade-off alongside its pathogenic manifestations (relevant to HMDB/metabolomics framing).
Immune system involvement: Not a primary disease axis for NSML specifically (contrast with somatic activating PTPN11 mutations, which are strongly linked to myeloproliferative/leukemic disease via hematopoietic stem/progenitor cell effects — a related but mechanistically distinct PTPN11 disease axis, per the eLife 2022 HSPC inflammatory-response paper referenced in the broader PTPN11 literature).
Single-cell / advanced technologies: Endothelial/endocardial-lineage-restricted Cre-driver mouse studies (Lauriol 2016) represent the primary cell-type-resolved mechanistic dissection available; no human single-cell or spatial transcriptomic NSML-specific datasets were identified in this search.
Suggested GO/CL terms: - GO:0004725 — protein tyrosine phosphatase activity (SHP2 catalytic function) - GO:0007173 — epidermal growth factor receptor signaling pathway (upstream RTK input) - GO:0043408 — regulation of MAPK cascade - GO:0038095 — Fc-epsilon receptor signaling pathway (SHP2-relevant scaffold context) - CL:0000746 — cardiac muscle cell (myocyte hypertrophy) - CL:0002350 — endocardial cell (developmental origin of cardiac hypertrophy per Lauriol 2016) - CL:0000148 — melanocyte (lentigo formation) - CL:0000138 — chondrocyte (growth-plate/short-stature mechanism, by analogy to NS)
Organ level: - Primary: Heart (myocardium/endocardium — HCM, pulmonary valve, conduction system), skin (melanocytes — lentigines, café-au-lait), skeletal system (chest wall — pectus; growth plates — short stature), craniofacial skeleton/soft tissue, inner ear (cochlea — sensorineural hearing loss), gonads (testes — cryptorchidism). - Secondary: CNS (mild ID, rare seizures/hemorrhage), hematopoietic/lymphoid tissue (rare leukemia association), neural crest-derived tissues broadly (neuroblastoma risk). - Body systems: Cardiovascular, integumentary, musculoskeletal, endocrine/growth, auditory, genitourinary, nervous, and (rarely) hematologic/oncologic systems.
Tissue/cell level: Cardiomyocytes and endocardial cells (CL:0000746, CL:0002350); epidermal melanocytes (CL:0000148); growth-plate chondrocytes (CL:0000138); cochlear hair cells/spiral ganglion (sensorineural hearing loss mechanism, by analogy — CL:0000202 hair cell).
Subcellular level: Cytoplasmic signaling (SHP2 is cytosolic/membrane-proximal — GO:0005829 cytosol, GO:0005886 plasma membrane for RTK-proximal docking); nuclear ERK translocation for transcriptional output (GO:0005634).
UBERON localization: UBERON:0000948 (heart), UBERON:0002050 (embryonic heart tube/endocardium), UBERON:0002097 (skin), UBERON:0001911 (skin of face), UBERON:0002415 (thorax/chest wall — pectus), UBERON:0001846 (auditory receptor organ/cochlea — hearing loss), UBERON:0000473 (testis — cryptorchidism).
Lateralization: Not a laterality-defined disorder; findings are generally bilateral/symmetric (facial features, hearing loss when present) with the exception of asymmetric distribution of individual lentigines.
Epidemiology: Population prevalence is not precisely established — NSML is considered a rare condition even among RASopathies; GeneReviews notes ~150+ individuals reported in the literature to date. For context, classic Noonan syndrome (the broader RASopathy family) occurs in ~1:1,000–1:2,500 live births, but NSML is substantially rarer than NS overall.
Inheritance pattern: Autosomal dominant (all four causal genes — PTPN11, RAF1, BRAF, MAP2K1).
Penetrance: High/complete penetrance for the core phenotype in reported pedigrees, though expressivity is highly variable — even among relatives sharing the identical variant, severity of cardiac, cutaneous, and growth features differs substantially.
Genetic anticipation: Not a described feature (this is a missense-variant disorder, not a repeat-expansion disorder).
Germline mosaicism: Recognized as a mechanism for sibling recurrence in families where the proband's variant is presumed de novo — GeneReviews estimates sibling recurrence risk of ~1% in de novo cases, attributable to possible parental germline mosaicism.
Founder effects: No specific NSML founder population/mutation was identified in this search (contrast with some other RASopathy-adjacent conditions where specific founder alleles are described in isolated populations).
Consanguinity: Not a relevant risk factor, given the autosomal dominant (not recessive) mode of inheritance.
Population demographics: No specific ethnic or geographic enrichment was identified in the sources reviewed; reported cases span multiple populations and geographic regions (Italy, Korea, China, and others represented in the literature surveyed here).
Sex ratio: No sex predilection reported.
Age distribution: Diagnosed across the lifespan, from prenatal/neonatal (via cardiac findings and, increasingly, prenatal genetic testing) through adulthood; many cases are identified in childhood when lentigines and growth/cardiac features become apparent.
Clinical diagnostic criteria (per GeneReviews/van der Burgt-style criteria): - Multiple lentigines plus 2 other cardinal features (cardiac abnormality; short stature; pectus deformity; dysmorphic facial features), OR - In the absence of lentigines: 3 cardinal features plus an affected first-degree relative.
Genetic testing: - Recommended approach: Given genetic heterogeneity, a multigene panel covering PTPN11, RAF1, BRAF, and MAP2K1 (and often the broader RASopathy/Noonan-spectrum gene panel to capture phenocopies) is the preferred first-tier test, per GeneReviews. - Single-gene testing: PTPN11 sequencing alone captures >95% of molecularly-confirmed cases and is a reasonable first step if resources are constrained, given the high prior probability. - Detection rate: Sequence analysis (Sanger or NGS) detects the causal variant in nearly 100% of cases with a variant in PTPN11 or RAF1 once a gene is targeted; large deletions/duplications are not a recognized mechanism (this is a missense-only disease mechanism). - WES/WGS: Useful when the multigene panel is non-diagnostic or when the phenotype is atypical/overlaps other RASopathies; exome-first strategies are increasingly used given the broader RASopathy differential. - Prenatal/preimplantation testing: Available once a familial pathogenic variant is identified.
Clinical/laboratory tests (non-genetic): - Echocardiogram — first-line for HCM/pulmonary stenosis detection; LOINC-coded structured echo reporting applicable. - ECG — for conduction abnormalities. - Audiology (audiometry) — for sensorineural hearing loss screening. - Ophthalmologic exam — for hypertelorism-associated or other ocular findings. - Renal ultrasound — part of baseline evaluation per GeneReviews surveillance. - Developmental/neuropsychological assessment — for intellectual disability/learning difficulties.
Differential diagnosis (critical for accurate curation, per GeneReviews): - Classic Noonan syndrome — NSML is distinguished primarily by the profuse pigmented lesions/lentigines, which NS typically lacks; molecular testing (LOF/dominant-negative vs GOF PTPN11 variant) is definitive. - Cardiofaciocutaneous syndrome (CFCS) — more severe intellectual disability, structural CNS anomalies, seizures, more extensive skin pathology than NSML. - Costello syndrome — another RASopathy on the differential, with its own distinct HRAS-driven features. - Turner syndrome — requires karyotype exclusion; Turner syndrome shows predominantly left-sided heart defects (coarctation, bicuspid aortic valve) rather than HCM. - Williams syndrome — requires 7q11.23 deletion testing to exclude. - Legius syndrome / NF1 — for café-au-lait-predominant presentations without lentigines/cardiac features.
Screening: No population-based newborn screening program exists for NSML (it is not amenable to biochemical newborn screening); identification is via clinical suspicion (cardiac finding, dermatologic finding) followed by targeted or panel genetic testing, or via cascade testing of relatives once a familial variant is known.
Survival/mortality: No population-based survival statistics were identified in this search; prognosis is heavily dependent on the severity of the cardiac phenotype — severe, early-onset (especially RAF1-associated) HCM is the principal driver of morbidity/mortality risk, while individuals without significant cardiac involvement generally have a normal life expectancy.
Morbidity/complications: - Progressive/obstructive HCM can lead to heart failure, arrhythmia, and (in severe pediatric cases) need for advanced heart-failure therapies. - Sensorineural hearing loss can affect speech/language development if unaddressed. - Rare but reported complications include neuroblastoma, leukemia (AML/ALL), and — in isolated case reports — intracerebral hemorrhage in PTPN11-mutated individuals (PMC7983560). - Psychosocial morbidity from visible cutaneous lentiginosis.
Recovery potential / treatment response: Emerging mechanism-targeted therapy data (MEK inhibition — see Treatment section) show that cardiac hypertrophy can be pharmacologically reversed or ameliorated in some cases, a substantial shift from purely supportive management historically available.
Prognostic factors: Causal gene is a major prognostic determinant — RAF1-mutated NSML carries a markedly higher (~95%) risk of HCM than PTPN11-mutated NSML, making genotype an important prognostic/surveillance-intensity variable.
Standard/supportive management (per GeneReviews): - Cardiac: Standard HCM management (beta-blockers, surveillance for outflow obstruction/arrhythmia, surgical septal myectomy in severe obstructive cases); standard management of structural defects (e.g., pulmonary valve stenosis — balloon valvuloplasty as needed). - Ophthalmologic: Management of eye anomalies/eye movement abnormalities. - Audiologic: Hearing aids/early intervention for sensorineural hearing loss. - Endocrine/growth: Growth hormone therapy may be contraindicated in individuals with hypertrophic cardiomyopathy (explicit GeneReviews caution) — an important genotype-informed prescribing constraint distinct from classic NS management, where GH therapy is more routinely considered. - Urologic: Standard management of cryptorchidism (orchiopexy). - Neurodevelopmental: Early intervention/educational support for developmental and learning issues; seizure management when present. - Dermatologic: Cosmetic/dermatologic management of lentigines is generally elective (no medical necessity), though psychosocial support may be warranted.
Emerging mechanism-targeted (MEK inhibitor) therapy — RASopathy-wide, actively being extended to NSML/HCM:
- Trametinib (a selective, FDA-approved MEK1/2 inhibitor originally for melanoma) has shown efficacy in case reports and early trials for RASopathy-associated obstructive HCM, including RAF1-associated Noonan-spectrum cardiomyopathy — see "Treatment of RAF1-Related Obstructive Hypertrophic Cardiomyopathy by MEK Inhibition Using Trametinib" and "MEK Inhibition in a Newborn with RAF1-Associated Noonan Syndrome Ameliorates Hypertrophic Cardiomyopathy" (PMC8774485).
- An active randomized clinical trial (NCT06555237, "MEK Inhibitors for the Treatment of Hypertrophic Cardiomyopathy in Patients With RASopathies") is evaluating trametinib in children (age 0–18) with RAS-MAPK-pathway-confirmed HCM.
- Mechanistically, this rationale is directly supported by the mouse-model literature above (Marin 2011, PMID:21339643 — mTOR inhibition with rapamycin reverses NSML-model HCM; and the broader RAS-MAPK hyperactivation-in-cardiac-tissue mechanism), even though the causal PTPN11-NSML lesion is a phosphatase loss-of-function — underscoring that downstream pathway output (not just the proximal lesion direction) determines therapeutic targetability. MAXO:0000647 (chemotherapy — closest generic action term; trametinib itself would be better captured via therapeutic_agent/NCIT/CHEBI rather than forcing into a chemotherapy action term) and a Pharmacotherapy (NCIT:C15986) treatment_term with therapeutic_agent bound to Trametinib (NCIT:C77908) would be the appropriate dismech-style annotation pattern.
- Rapamycin/mTOR inhibitors — proof-of-concept reversal of HCM in the NSML mouse model (PMID:21339643) supports mTOR inhibition as an alternative/complementary mechanistic target, though clinical translation specifically in NSML patients is less advanced than for trametinib.
Surgical: Cardiac surgery (septal myectomy) for severe obstructive HCM; orchiopexy for cryptorchidism; standard pectus repair surgery when clinically indicated.
Suggested MAXO terms: - MAXO:0000011 — physical therapy (as needed for developmental support) - MAXO:0000004 — surgical procedure (cardiac/orchiopexy/pectus) - MAXO:0000079 — genetic counseling - MAXO:0000950 — supportive care
Primary prevention: Not applicable in the traditional sense (this is a de novo/inherited germline genetic disorder, not preventable via risk-factor modification); however, family planning options (preimplantation genetic testing, prenatal diagnosis) constitute the primary "prevention" lever once a familial pathogenic variant is known.
Secondary prevention (early detection): Early echocardiographic screening in infants of affected parents (or those presenting with suggestive features) allows early HCM detection before symptomatic heart failure develops; early audiologic screening supports early intervention for hearing loss.
Genetic counseling: Central to NSML management — counseling on 50% transmission risk to offspring of an affected individual, ~1% sibling recurrence risk in de novo cases (germline mosaicism), variable expressivity (a parent with mild disease can have a more severely affected child, and vice versa), and reproductive options (prenatal testing, preimplantation genetic testing). GeneReviews and NSGC-aligned genetic counseling resources are the relevant authorities.
Screening (population level): No population-based newborn or carrier screening program exists for NSML; identification remains clinically/case-driven.
Prophylaxis: No specific prophylactic medications are indicated beyond standard cardiac surveillance-triggered management (e.g., beta-blockade once HCM is identified, per general HCM management guidelines).
No naturally-occurring NSML has been reported in non-human species in the literature surveyed — this is not a recognized veterinary/companion-animal disease (OMIA search not specifically performed but no indication of natural animal disease emerged from the mechanism-focused searches). All animal data relate to induced/engineered models (see Section 15) rather than spontaneously-occurring disease in other species. PTPN11 orthologs are broadly conserved across vertebrates (mouse Ptpn11, zebrafish ptpn11a/ptpn11b), supporting the strong cross-species conservation of the underlying RAS-MAPK signaling mechanism, but no natural disease phenocopy has been documented.
Mouse models (genetic, knock-in): - Ptpn11^Y279C/+ knock-in mouse — the principal NSML mouse model, used in the Lauriol 2016 (PMID:27348588) and Marin 2011 (PMID:21339643) studies, recapitulating hypertrophic cardiomyopathy and enabling dissection of the developmental endocardial origin of cardiac hypertrophy and the mTOR-dependence of the phenotype (reversible with rapamycin). - Ptpn11^D61G/+ mouse — the classic-NS gain-of-function comparator model, used alongside the Y279C NSML model in the PZR studies (PMID:24865967) to directly contrast GOF-NS vs. dominant-negative-NSML mechanisms in the same experimental system. - Adipose-tissue-targeted studies of the NSML mutation (Tajan et al. 2014, PMID:25288766) demonstrated the leanness/metabolic-protection phenotype, illustrating how the same germline mutation produces organ-specific, sometimes opposing, physiological consequences (pathogenic in heart, "protective" in adipose tissue).
Zebrafish models: - Zebrafish carry two ptpn11 paralogs (ptpn11a, ptpn11b), both functionally relevant (PLOS ONE, PMC3988099), enabling developmental dissection of SHP2 function; D61G (NS) and A462T (NSML-equivalent) Shp2 zebrafish models have been used in the PZR-coordination studies (PMID:24865967) to study cardiac and hematopoietic phenotypes with the transparency/rapid-development advantages of the zebrafish system. - Zebrafish models have also been used more broadly to study Shp2-MAPK signaling in developmental contexts (e.g., fin-fold regeneration), providing mechanistic insight transferable to the RASopathy signaling framework even outside the cardiac-specific NSML literature.
Phenotype recapitulation: The mouse knock-in models successfully recapitulate the cardinal cardiac phenotype (hypertrophic cardiomyopathy) and have been sufficient to establish causal, cell-type-specific (endocardial), and pathway-specific (mTOR-dependent) mechanisms, and to demonstrate pharmacological reversibility — a strong translational validation. Recapitulation of the pigmentary (lentigines), growth (short stature), and neurodevelopmental phenotypes in mouse/zebrafish models is less well documented in the sources reviewed here and would need separate confirmation before being asserted as strongly validated.
Model limitations: As with most RASopathy models, full recapitulation of the human variable-expressivity pattern (why genetically identical mutations produce a spectrum of severity across human family members) is not achieved in inbred mouse models, which are typically more phenotypically uniform.
Applications: These models have directly enabled (1) mechanistic dissection of GOF-NS vs. dominant-negative-NSML divergence at the same locus, (2) identification of developmental (endocardial) origin of adult HCM, and (3) preclinical proof-of-concept for both mTOR-inhibitor (rapamycin) and, by extension via the broader RASopathy MEK-inhibitor literature, MEK-inhibitor (trametinib) therapeutic strategies now advancing to human clinical trials (NCT06555237).
| Domain | Suggested term | ID |
|---|---|---|
| Disease | Noonan syndrome with multiple lentigines | MONDO:0007893 |
| Gene (primary) | PTPN11 | hgnc:9644 |
| Gene | RAF1 | hgnc:9829 |
| Gene | BRAF | hgnc:1097 |
| Gene | MAP2K1 | hgnc:6840 |
| Phenotype | Lentigines | HP:0001065 |
| Phenotype | Café-au-lait spot | HP:0000957 |
| Phenotype | Hypertrophic cardiomyopathy | HP:0001639 |
| Phenotype | Pulmonic stenosis | HP:0001642 |
| Phenotype | Sensorineural hearing loss | HP:0000407 |
| Phenotype | Short stature | HP:0004322 |
| Phenotype | Hypertelorism | HP:0000316 |
| Phenotype | Ptosis | HP:0000508 |
| Phenotype | Cryptorchidism | HP:0000028 |
| Cell type | Cardiac muscle cell | CL:0000746 |
| Cell type | Endocardial cell | CL:0002350 |
| Cell type | Melanocyte | CL:0000148 |
| Biological process | Ras protein signal transduction | GO:0007265 |
| Molecular function | Protein tyrosine phosphatase activity | GO:0004725 |
| Treatment | Pharmacotherapy (+ trametinib therapeutic_agent) | NCIT:C15986 / NCIT:C77908 |
Note on evidence gaps: Population-based prevalence/incidence figures, NSML-specific quality-of-life instrument data, MAP2K1/BRAF variant-level detail (beyond "rare reported cases"), and precise quantified tumor-risk statistics specific to NSML (as opposed to the broader Noonan spectrum) were not found with high-confidence primary-source citations in this search and would need targeted follow-up (e.g., direct OMIM/Orphanet full-text review, ClinVar variant-level pull, and a dedicated PubMed search for NSML-specific malignancy cohort studies) before being asserted as curated facts in a knowledge-base entry.