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SAMD9L Ataxia-Pancytopenia Syndrome

Synonym: SAMD9L-ATXPC Syndrome

, MD, PhD, , MD, PhD, and , MD.

Author Information and Affiliations

Initial Posting: ; Last Update: February 4, 2021.

Estimated reading time: 25 minutes

Summary

Clinical characteristics.

SAMD9L ataxia-pancytopenia (ATXPC) syndrome is characterized by cerebellar ataxia, variable hematologic cytopenias, and predisposition to marrow failure, myelodysplasia, and myeloid leukemia, sometimes associated with monosomy 7. The onset of hematologic abnormalities has been reported as early as age three months. The cytopenias in all cell lineages range from mild to very severe. Onset of neurologic impairment is variable. Nystagmus, dysmetria, increased deep tendon reflexes, and clonus are common. Gait impairment and other neurologic abnormalities are slowly progressive.

Diagnosis/testing.

The diagnosis of SAMD9L-ATXPC syndrome is established in a proband by identification of a heterozygous germline gain-of-function pathogenic variant in SAMD9L on molecular genetic testing.

Management.

Treatment of manifestations: Red cell or platelet transfusions as needed for cytopenias; evaluation and treatment for additional unrelated causes of anemia; standard treatment for neutropenia; bone marrow transplantation and/or chemotherapy for myelodysplasia and leukemia; consideration of riluzole to improve ataxia symptoms; supportive management for ataxia to prevent falls and injury; speech and language therapy with consideration of alternative communication methods, as needed for dysarthria; modify food consistency to reduce aspiration risk for those with dysphagia; nutrition assessment with consideration of nutritional and vitamin supplementation to meet dietary needs in those with poor weight gain or weight loss.

Surveillance: Annual complete blood count with more frequent monitoring for any identified cytopenia; prompt evaluation for clinical signs or symptoms of cytopenia; annual evaluation of gait, coordination, and progression of ataxia; assessment for alternative communication method, speech therapy, and signs and symptoms of aspiration risk as per symptom progression.

Agents/circumstances to avoid: Nonsteroidal anti-inflammatory agents, anticoagulants, and thrombolytic agents are contraindicated if thrombocytopenia is present and should be used with caution given the fluctuating nature of the cytopenias; avoid alcohol and medications that cause sedation, which can increase problems with gait and coordination.

Pregnancy management: Anemia, thrombocytopenia, or neutropenia may increase the risk of pregnancy complications.

Genetic counseling.

SAMD9L-ATXPC syndrome is inherited in an autosomal dominant manner. Each child of an individual with SAMD9L-ATXPC syndrome has a 50% chance of inheriting the SAMD9L pathogenic variant; intrafamilial clinical variability has been observed. Once the SAMD9L pathogenic variant has been identified in an affected family member, prenatal testing for a pregnancy at increased risk for SAMD9L-ATXPC syndrome and preimplantation genetic testing are possible.

Diagnosis

Formal clinical diagnostic criteria for SAMD9L ataxia-pancytopenia (ATXPC) syndrome have not been established.

Suggestive Findings

SAMD9L-ATXPC syndrome should be suspected in individuals with one or more of the following clinical, imaging, and family history findings.

Clinical features

  • Cerebellar ataxia
  • Variable hematopoietic cytopenias affecting one or more lineages (e.g., anemia, neutropenia, thrombocytopenia)
  • Myeloid leukemia or myelodysplasia with partial or complete monosomy 7

Imaging. Cerebellar atrophy and/or white matter changes are seen on brain MRI examination.

Family history is consistent with autosomal dominant inheritance (e.g., males and females with any of the above clinical or radiographic features in multiple generations). Absence of a known family history does not preclude the diagnosis.

Establishing the Diagnosis

The diagnosis of SAMD9L-ATXPC syndrome is established in a proband by identification of a heterozygous germline pathogenic variant in SAMD9L on molecular genetic testing (see Table 1).

Note: Identification of a heterozygous SAMD9 variant of uncertain significance does not establish or rule out the diagnosis of this disorder.

Molecular genetic testing approaches can include a combination of gene-targeted testing (single-gene testing and multigene panel) and comprehensive genomic testing (exome sequencing, genome sequencing) depending on the phenotype.

Gene-targeted testing requires that the clinician determine which gene(s) are likely involved, whereas genomic testing does not. Because the phenotype of SAMD9L-ATXPC syndrome is broad, individuals with both cerebellar and hematologic findings described in Suggestive Findings are likely to be diagnosed using gene-targeted testing (see Option 1), whereas those with a phenotype indistinguishable from many other inherited disorders with cerebellar ataxia and/or myelodysplasia are more likely to be diagnosed using genomic testing (see Option 2).

Option 1

When the phenotypic and laboratory findings suggest the diagnosis of SAMD9L-ATXPC syndrome, molecular genetic testing approaches can include single-gene testing or use of a multigene panel:

  • Single-gene testing. Sequence analysis of SAMD9L is performed to detect small intragenic gain-of-function variants, typically alterations resulting in missense or in-frame protein changes. Note: SAMD9L-ATXPC syndrome is postulated to occur through a gain-of-function mechanism. Large intragenic deletions or duplications have not been reported; testing for intragenic deletions or duplications is not indicated.
    Note: If a pathogenic SAMD9L variant is not detected but suspicion for ATXPC remains high, consideration should be given to additional testing (see Molecular Pathogenesis, SAMD9L-specific laboratory technical considerations).
  • A cerebellar ataxia multigene panel that includes SAMD9L and other genes of interest (see Differential Diagnosis) is most likely to identify the genetic cause of the condition while limiting identification of variants of uncertain significance and pathogenic variants in genes that do not explain the underlying phenotype. Note: (1) The genes included in the panel and the diagnostic sensitivity of the testing used for each gene vary by laboratory and are likely to change over time. (2) Some multigene panels may include genes not associated with the condition discussed in this GeneReview. (3) In some laboratories, panel options may include a custom laboratory-designed panel and/or custom phenotype-focused exome analysis that includes genes specified by the clinician. (4) Methods used in a panel may include sequence analysis, deletion/duplication analysis, and/or other non-sequencing-based tests.
    For an introduction to multigene panels click here. More detailed information for clinicians ordering genetic tests can be found here.

Option 2

When the phenotype is indistinguishable from many other inherited disorders characterized by cerebellar ataxia and/or hematopoietic cytopenias or myelodysplasia, comprehensive genomic testing, which does not require the clinician to determine which gene(s) are likely involved, is the best option. Exome sequencing is most commonly used; genome sequencing is also possible.

For an introduction to comprehensive genomic testing click here. More detailed information for clinicians ordering genomic testing can be found here.

Note: The hematopoietic system may undergo somatic reversion via copy-neutral loss of the pathogenic SAMD9L allele. Therefore, regardless of molecular genetic modality used, if a pathogenic SAMD9L variant is not detected in DNA from a blood sample but suspicion for ATXPC remains high, consideration should be given to testing a different tissue or investigating for uniparental disomy of chromosome 7q by array.

Table 1.

Molecular Genetic Testing Used in SAMD9L Ataxia-Pancytopenia Syndrome

Gene 1MethodProportion of Probands with a Pathogenic Variant 2 Detectable by Method
SAMD9L Sequence analysis 336/36 families 4, 5, 6
Gene-targeted deletion/duplication analysis 7Unknown 8
1.
2.

See Molecular Genetics for information on allelic variants detected in this gene.

3.

Sequence analysis detects variants that are benign, likely benign, of uncertain significance, likely pathogenic, or pathogenic. Variants may include small intragenic deletions/insertions and missense, nonsense, and splice site variants; typically, exon or whole-gene deletions/duplications are not detected. For issues to consider in interpretation of sequence analysis results, click here.

4.
5.

Authors, unpublished observations

6.

See Molecular Pathogenesis, SAMD9L-specific laboratory technical considerations.

7.

Gene-targeted deletion/duplication analysis detects intragenic deletions or duplications. Methods used may include quantitative PCR, long-range PCR, multiplex ligation-dependent probe amplification (MLPA), and a gene-targeted microarray designed to detect single-exon deletions or duplications.

8.

No data on detection rate of gene-targeted deletion/duplication analysis are available. However, as SAMD9L-ATXPC syndrome is postulated to occur through a gain-of-function mechanism, it is unclear if larger deletions or duplications of SAMD9L lead to SAMD9L-ATXPC syndrome.

Clinical Characteristics

Clinical Description

To date, 85 individuals from 36 families have been identified with a pathogenic variant in SAMD9L [Chen et al 2016; Gorcenco et al 2017; Schwartz et al 2017; Tesi et al 2017; Bluteau et al 2018; Nagata et al 2018; Pastor et al 2018; Wong et al 2018; Ahmed et al 2019; Bowden et al 2019; Cheah et al 2019; Thunström & Axelsson 2019; Author, unpublished data]. In addition, approximately 15% of children with myelodysplastic syndrome are found to have a germline pathogenic variant in SAMD9L. The following description of the phenotypic features associated with this condition is based on these reports.

Table 2.

Select Features of SAMD9L Ataxia-Pancytopenia Syndrome

Feature% of Persons
w/Feature
Comment
Neurologic manifestatioms 175% 2Nystagmus is most frequent; gait ataxia may develop later.
Bone marrow failure (cytopenias)~80% 3Thrombocytopenia & mild red cell macrocytosis are most frequent.
Myelodysplasia &/or monosomy 7q~41% 3
Myeloid leukemia4% 4May be an underestimate of risk as MDS or monosomy 7q may trigger HSCT.

HSCT = hematopoietic stem cell transplant; MDS = myelodysplasia

1.

One or more of nystagmus, ataxia, pyramidal signs, neuropathy, abnormal brain imaging

2.

Not all persons had neurologic evaluations or neuroimaging.

3.

Biased by pediatric hematology ascertainment. Additional somatic genetic events (monosomy 7/7q, uniparental disomy 7, or pathogenic intragenic inactivating variants) may be found in cases without hematologic manifestations [Bluteau et al 2018, Wong et al 2018] (see Molecular Pathogenesis).

4.

One additional case developed acute lymphocytic leukemia; it is unclear if this is related to SAMD9L.

The manifestations of SAMD9L ataxia-pancytopenia (ATXPC) syndrome usually have onset in childhood and hematologic impairment can be severe, mimicking aplastic anemia or idiopathic thrombocytopenia purpura. There is marked inter- and intrafamilial variability in age of onset, severity of neurologic and hematologic abnormalities, and rate of progression.

The severities of hematologic and neurologic abnormalities are not concordant. An individual who died at age 16 years from a retroperitoneal bleed secondary to thrombocytopenia had no clinically reported neurologic manifestations, despite the presence of cerebellar atrophy. Several individuals had moderate-to-severe neurologic involvement with only mild or undetected hematologic involvement [Li et al 1981, Chen et al 2016].

Hematologic manifestations. Hematologic abnormalities are variable and can be intermittent. The onset of hematologic abnormalities has been reported as early as age three months. The cytopenias in all cell lineages ranged from mild to very severe.

  • Mild thrombocytopenia or anemia and/or mild macrocytosis (maximum recorded mean corpuscular volume: 108 fL) were documented in many affected individuals.
  • Immunodeficiency was documented in two families [Tesi et al 2017, Bowden et al 2019].
  • Non-leukemic marrows were hypoplastic in multiple individuals examined.
  • Partial or complete monosomy 7 is frequent, with some having myelodysplasia; a few eventually developed leukemia [Li et al 1981, Bluteau et al 2018, Wong et al 2018].
  • The effect of the disease on the hematopoietic system accounts for the increased mortality. Of eight published cases of hematopoietic stem cell transplant for myelodysplasia, six survived the procedure and have been followed for as long as 14 years post transplant [Tesi et al 2017, Ahmed et al 2019]; outcomes in additional unpublished cases are similar.

Neurologic manifestations. Neurologic involvement was observed in the majority of individuals with SAMD9L pathogenic variants who were carefully examined; one individual who was not noted to have neurologic problems during life had cerebellar atrophy detected on autopsy [Chen et al 2016], and another had white matter hyperintensities on MRI [Author, personal observation].

  • Onset of neurologic impairment ranged from infancy to age 62 years.
  • Horizontal and vertical nystagmus and dysmetria were evident in most individuals.
  • Deep tendon reflexes were usually increased, ankle clonus was easily elicited, and some affected individuals had extensor plantar responses [Chen et al 2016, Gorcenco et al 2017].
  • Strength and sensation were infrequently impaired [Wong et al 2018; Author, unpublished observations].
  • Gait impairment and other neurologic abnormalities were slowly progressive. Some individuals eventually required a wheelchair [Chen et al 2016].

Ophthalmologic manifestations. In addition to nystagmus, some individuals reported difficulties with reading and visual focus.

Multifocal electroretinography has identified mostly intact central function with paracentral retinal dysfunction in at least two affected individuals [Gorcenco et al 2017].

Neuroimaging and neuropathology. Marked cerebellar atrophy and loss of Purkinje cells were detected post mortem in four individuals, age seven to 16 years, in two families. Moderate loss of neurons in the inferior olives and central nuclei was noted in two of these individuals [Li et al 1981, Chen et al 2016]. CT imaging of two of these children and their father revealed moderate-to-marked cerebellar atrophy at a time when their ataxia was described as mild to moderate [Li et al 1981]. At age 54 years, the surviving sib in this family had moderately severe ataxia and required a walker to ambulate. Brain MRI at age 52 years showed severe diffuse cerebellar atrophy as well as diffuse bilateral white matter signals throughout the cerebrum [Chen et al 2016].

In the second family reported by Chen et al [2016], brain MRIs revealed marked cerebellar degeneration, pronounced in the midline, in a man age 32 years with severe ataxia, and moderate midline cerebellar atrophy was found in his sister, age 38 years, who had only mild clinical manifestations. Cerebellar atrophy and/or white matter abnormalities were also noted on MRI on multiple individuals, in some cases before obvious neurologic impairments were observed [Tesi et al 2017; Bluteau et al 2018; Bowden et al 2019; Cheah et al 2019; Author, unpublished reports]. A variety of other neuroimaging abnormalities have been reported, including dural ectasia [Wong et al 2018] and arachnoid and other cysts [Bluteau et al 2018, Wong et al 2018], but most individuals who presented with primarily hematologic disease were not imaged. Therefore, the frequency of these features overall is not known.

Genotype-Phenotype Correlations

With respect to validated pathogenic variants in SAMD9L, no genotype-phenotype correlations have been observed.

Penetrance

Given the variable expressivity of both hematologic and neurologic manifestations, the sometimes episodic asymptomatic cytopenias, the paucity of detailed neurologic/neuroimaging evaluations, and the effect of additional somatic genetic events on the hematologic manifestations (see Genotype-Phenotype Correlations), it is difficult to estimate the penetrance. However, the majority of persons with a pathogenic variant in SAMD9L will manifest some feature of the syndrome. There is no difference in range of manifestations for males and females.

The phenomena of hematopoietic clones with additional genetic alterations repopulating the bone marrow appear to explain striking reports of non-penetrance or spontaneous and long-term disease remission in some affected individuals and some unaffected carrier parents of affected children [Tesi et al 2017, Wong et al 2018].

Nomenclature

The disorder was initially called myelocerebellar syndrome by Li et al [1978].

Prevalence

True prevalence is unknown, but the disorder is rare. With increasing testing of children with myelodysplasia and individuals with both mild hematologic cytopenias and ataxia, additional cases continue to be diagnosed. Approximately 12% of childhood myelodysplasia is attributable to germline pathogenic variants in SAMD9L [Bluteau et al 2018].

Differential Diagnosis

Hematologic disorders with neurologic manifestations. See Table 3.

Table 3.

Disorders to Consider in the Differential Diagnosis of SAMD9L Ataxia-Pancytopenia Syndrome

Gene(s)DisorderMOIHematologic ManifestationsNeurologic ManifestationsOther
ABCB7 X-linked sideroblastic anemia & ataxia
(OMIM 301310)
XL
  • Moderate hypochromic & microcytic anemia w/o progression to marrow failure
  • Not assoc w/malignancy
Spinocerebellar syndrome in males 1
ACD
CTC1
DKC1
NHP2
NOP10
PARN
RTEL1
TERC
TERT
TINF2
WRAP53
Dyskeratosis congenita XL
AD
AR
  • Progressive bone marrow failure
  • Myelodysplasia
  • Acute myeloid leukemia
  • Normal psychomotor development & neurologic function in most persons
  • See footnote 2 for exceptions.
  • Dysplastic nails
  • Lacy reticular pigmentation
  • Oral leukoplakia
  • Squamous cell carcinomas
  • Other solid tumors
  • Pulmonary fibrosis
ATM Ataxia-telangiectasia AR
  • Bone marrow failure
  • ↑ risk for malignancy, particularly lymphocytic leukemia & lymphoma
  • Progressive cerebellar ataxia, oculomotor apraxia, choreoathetosis
  • Early-onset dystonia in non-classic form
  • Immunodeficiency
  • Sensitivity to ionizing radiation
  • Telangiectasias
BRCA2
BRIP1
FANCA
FANCB
FANCC
FANCD2
FANCE
FANCF
FANCG
FANCI 3
Fanconi anemia AR
AD
XL 3
  • Progressive bone marrow failure
  • Myelodysplasia
  • Acute myeloid leukemia
  • Microcephaly
  • Ophthalmic abnormalities
  • Solid tumors
  • Congenital abnormalities 4
  • Chromosome breakage/radial forms on lymphocyte cytogenetic testing w/DEB & MMC
SAMD9 MIRAGE syndrome AD
  • Myelodysplasia
  • Cytopenias
Cognitive impairment
  • Adrenal hypoplasia
  • Growth restriction
  • Enteropathy
  • Genital abnormalities

AR = autosomal recessive; AD = autosomal dominant; DEB = diepoxybutane; MMC = mitomycin C; MOI = mode of inheritance; XL = X-linked

1.

Spinocerebellar syndrome in males manifest primarily as delayed walking, ataxia evident in early childhood, dysmetria, and dysdiadochokinesis. When present the intention tremor is mild and the dysarthria is mild to moderately severe. The ataxia has been described as either non-progressive or slowly progressive.

2.

Although most persons with dyskeratosis congenita have normal psychomotor development and normal neurologic function, significant developmental delay is present in the two variants in which additional findings include cerebellar hypoplasia (Hoyeraal Hreidarsson syndrome) and bilateral exudative retinopathy and intracranial calcifications (Revesz syndrome).

3.

Twenty-one genes are known to be associated with Fanconi anemia (FA). Listed genes represent the most commonly associated genes. FA is inherited in an autosomal recessive manner with the exception of RAD51-FA (inherited in an autosomal dominant manner) and FANCB-FA (inherited in an X-linked manner).

4.

The majority of individuals with FA have congenital abnormalities, most commonly short stature and skeletal, craniofacial, and genitourinary tract malformations. Abnormal skin pigmentation and microcephaly are also common. Other anomalies include developmental delay, hearing loss, congenital heart disease, and CNS anomalies.

Familial monosomy 7 syndrome (OMIM 252270) is associated with bone marrow insufficiency/failure, acute myeloid leukemia, and myelodysplasia. Although neurologic manifestations (cerebellar ataxia or atrophy) have also been described in some individuals with a diagnosis of familial monosomy 7 syndrome, it is likely that these individuals had SAMD9L ataxia-pancytopenia (ATXPC) syndrome. (A diagnosis of SAMD9L-ATXPC syndrome would not have been considered prior to 2016 and, further, the chromosome 7 that bears the SAMD9L pathogenic variant is always the deleted one in monosomy 7-associated myelodysplasia or leukemia.) It is also possible that some individuals with a diagnosis of familial monosomy 7 syndrome without described neurologic manifestations may have acquired monosomy 7 within hematopoietic cells due to a different, not-yet-defined inherited genetic predisposition. (See Monosomy 7 Predisposition Syndromes Overview.)

Ataxia. As with other ataxias, it is important to consider acquired causes as they may be amenable to targeted treatment [Shakkottai & Fogel 2013], and other inherited cerebellar ataxias (see Hereditary Ataxia Overview) as there is considerable overlap in neurologic manifestations.

Acquired bone marrow failure syndromes. Because the prominent medical problem in many individuals with SAMD9L-ATXPC syndrome is hematopoietic cytopenias, and neurologic impairment may be minimal, acquired bone marrow failure syndromes such as aplastic anemia or idiopathic thrombocytopenia purpura would also be included in the differential diagnosis.

Management

Evaluations Following Initial Diagnosis

To establish the extent of disease and guide clinical care in an individual diagnosed with SAMD9L ataxia-pancytopenia (ATXPC) syndrome, the evaluations summarized in Table 4 (if not performed as part of the evaluation that led to diagnosis) are recommended.

Table 4.

Recommended Evaluations Following Initial Diagnosis in Individuals with SAMD9L Ataxia-Pancytopenia Syndrome

System/ConcernEvaluationComment
Hematologic/
Oncologic
Complete blood countTo evaluate for anemia, neutropenia, thrombocytopenia, &/or myelodysplasia
  • Bone marrow exam, incl FISH for chromosome 7
  • Consider referral to hematologist/oncologist.
If hematologic abnormalities are more than minimal
Neurologic Assessment by neurologist for:
  • Cerebellar motor dysfunction (gait & postural ataxia, dysmetria, dysdiadochokinesis, tremor, dysarthria, nystagmus, saccades & smooth pursuit)
  • UMN &/or LMN dysfunction (weakness, spasticity, Babinski signs, hyperrefflexia, amyotrophy, fasciculations)
  • Vibration loss or polyneuropathy based on clinical findings
  • Use standardized scale to establish baseline for ataxia (SARA, ICARS, or BARS). 1
  • Consider electrophysiologic studies (EMG & NCS) to detect neurogenic changes or signs of neuropathy if sensory or motor abnormalities are detected.
  • Brain MRI to evaluate presence & severity of cerebellar atrophy
Consider referral to neuromuscular clinic (OT/PT/rehab specialist).To assess gross motor & fine motor skills, ambulation, & need for adaptive devices & PT if neurologic impairment is detected
Ophthalmologic Consider referral to ophthalmologist for assessment of retinal function in persons w/visual impairment.
Speech For those w/dysarthria: speech/language eval
Miscellaneous/
Other
Patient/family education to seek prompt clinical eval if any signs or symptoms of hematopoietic cytopenia develop 2
Consultation w/clinical geneticist &/or genetic counselorTo incl genetic counseling

BARS = Brief Ataxia Rating Scale; FISH = fluorescent in situ hybridization; EMG = electromyogram; ICARS = International Co-operative Ataxia Rating Scale; LMN = lower motor neuron; NCS = nerve conduction study; OT = occupational therapy; PT = physical therapy; SARA = Scale for the Assessment and Rating of Ataxia; UMN = upper motor neuron

1.
2.

For example, fatigue, pallor, unexpected bleeding, recurrent infections

Treatment of Manifestations

Table 5.

Treatment of Manifestations in Individuals with SAMD9L Ataxia-Pancytopenia Syndrome

Manifestation/
Concern
TreatmentConsiderations/Other
Anemia 1 Red blood cell transfusionsDepending on severity
Eval for secondary causes of anemiaIncl iron & other vitamin deficiencies 2
Thombocytopenia Platelet transfusionsDepending on severity
Neutropenia 1 Treatment per hematologist
Myelodysplasia Consideration of bone marrow transplantation, especially if characterized by monosomy 7Monosomy 7 is a marker for poor response to standard therapy.
Myeloid leukemia Treatment per oncologist
Ataxia Care by physiatrist, OT/PT
  • Consider adaptive devices to maintain/improve independence in mobility (e.g., canes, walkers, ramps to accommodate motorized chairs), feeding (e.g., weighted eating utensils), dressing (e.g., dressing hooks)
  • PT (balance exercises, gait training, muscle strengthening) to maintain mobility & function 3
  • OT to optimize ADL
  • Inpatient rehab w/OT/PT may improve ataxia & functional abilities in those w/severe ataxia. 4
  • Weight control to avoid obesity
  • Home adaptations to prevent falls (e.g., grab bars, raised toilet seats)
Pharmacologic treatmentConsider riluzole (100 mg/day 5), the only drug shown to improve ataxia symptoms in persons w/ataxia of mixed etiologies; use requires monitoring of liver enzymes.
Dysarthria Speech/language therapyConsider alternative communication methods as needed (e.g., writing pads & digital devices).
Dysphagia Modify food consistency to ↓ aspiration risk.Video esophagram may help define best consistency.
Poor weight gain Nutrition assessmentConsider nutritional & vitamin supplementation to meet dietary needs.

OT = occupational therapy; PT = physical therapy

1.

There are no data to support use of erythropoietin or granulocyte-stimulating factor in SAMD9L-ATXPC syndrome; these growth factors may increase the risk for myelodysplasia and myeloid leukemia.

2.

In ATXPC the red cells may be macrocytic and mimic B12 or folate deficiency.

3.
4.
5.

Surveillance

Table 6.

Recommended Surveillance for Individuals with SAMD9L Ataxia-Pancytopenia Syndrome

System/ConcernEvaluationFrequency
Hematologic/
Oncologic
Complete blood countAt lease annually 1
Neurologic
  • Neurologic assessment for progression of ataxia
  • Monitor ataxia progression w/standardized scale (SARA, ICARS, or BARS). 2
  • Physiatry, OT/PT assessment of mobility, self-help skills as they relate to ataxia & peripheral neuropathy
Annually
Dysarthria Need for alternative communication method or speech therapyPer symptom progression
Dysphagia Assess aspiration risk & feeding methods.Per symptom progression

BARS = Brief Ataxia Rating Scale; ICARS = International Co-operative Ataxia Rating Scale; OT = occupational therapy; PT = physical therapy; SARA = Scale for the Assessment and Rating of Ataxia

1.

More frequent monitoring is required if an affected individual develops signs or symptoms of a cytopenia (e.g., fatigue, pallor, unexpected bleeding, recurrent infections) or if cytopenias are identified.

2.

Agents/Circumstances to Avoid

Nonsteroidal anti-inflammatory agents, anticoagulants, and thrombolytic agents are contraindicated if thrombocytopenia is present and should be used with caution given the fluctuating nature of the cytopenias.

Avoid consuming alcohol and medications that cause sedation, which can increase problems with gait and coordination.

Evaluation of Relatives at Risk

It is appropriate to clarify the genetic status of the proband's parents and apparently asymptomatic older and younger at-risk relatives of an affected individual by molecular genetic testing of the SAMD9L pathogenic variant in the family in order to identify as early as possible those who would benefit from hematologic surveillance and prompt initiation of treatment for severe cytopenias and myelodysplasia. (See Molecular Pathogenesis, SAMD9L-specific laboratory technical considerations.)

See Genetic Counseling for issues related to testing of at-risk relatives for genetic counseling purposes.

Pregnancy Management

There is no information on the effect of pregnancy on manifestations of SAMD9L-ATXPC syndrome. Anemia, thrombocytopenia, or neutropenia may increase the risk of pregnancy complications.

Therapies Under Investigation

Search ClinicalTrials.gov in the US and EU Clinical Trials Register in Europe for information on clinical studies for a wide range of diseases and conditions. Note: There may not be clinical trials for this disorder.

Genetic Counseling

Genetic counseling is the process of providing individuals and families with information on the nature, mode(s) of inheritance, and implications of genetic disorders to help them make informed medical and personal decisions. The following section deals with genetic risk assessment and the use of family history and genetic testing to clarify genetic status for family members; it is not meant to address all personal, cultural, or ethical issues that may arise or to substitute for consultation with a genetics professional. —ED.

Mode of Inheritance

SAMD9L ataxia-pancytopenia (ATXPC) syndrome is an autosomal dominant disorder often caused by a de novo pathogenic variant.

Risk to Family Members

Parents of a proband

  • Many individuals diagnosed with SAMD9L-ATXPC syndrome have the disorder as the result of a de novo SAMD9L pathogenic variant.
  • Some individuals diagnosed with SAMD9L-ATXPC syndrome have the disorder as the result of a pathogenic variant inherited from a parent who may or may not have apparent features of the syndrome. Marked intrafamilial variation (i.e., in age of onset, neurologic manifestations, and hematologic abnormalities) has been observed in all multigenerational families reported to date. (Note: See Management, Evaluation of Relatives at Risk for information on evaluating risk in apparently asymptomatic parents.)
  • Molecular genetic testing is recommended for the parents of the proband. If the pathogenic variant identified in the proband is not identified in either parent, the following possibilities should be considered:
  • The family history of an individual diagnosed with SAMD9L-ATXPC syndrome may appear to be negative for a variety of reasons: (1) failure to recognize the disorder in family members with subtle neurologic manifestations and/or episodic hematologic manifestations; (2) reduced penetrance (possibly resulting from a "protective" second genetic event); or (3) early death of the parent before the onset of symptoms or late onset of the disease in the affected parent. Therefore, an apparently negative family history cannot be confirmed unless molecular genetic testing (including using the DNA derived from non-hematopoietic tissue) has confirmed that neither of the parents has the SAMD9L pathogenic variant identified in the proband.

Sibs of a proband. The risk to the sibs of the proband depends on the genetic status of the proband's parents:

  • If a parent of the proband is heterozygous for the SAMD9L pathogenic variant, the risk to the sibs of inheriting the variant is 50%. Marked intrafamilial clinical variability is observed; however, the majority of persons with a pathogenic variant in SAMD9L will manifest some feature of the syndrome (see Clinical Description).
  • If the SAMD9L pathogenic variant found in the proband is not detected in the leukocyte DNA of either parent, the recurrence risk to sibs is presumed to be slightly greater than that of the general population for one of two possible reasons:
  • If the parents have not been tested for the SAMD9L pathogenic variant but are clinically unaffected, sibs are still presumed to be at increased risk for SAMD9L-ATXPC syndrome for one of two possible reasons:
    • A parent has germline mosaicism; or
    • A parent is heterozygous but does not have apparent manifestations of SAMD9L-ATXPC syndrome because of reduced penetrance or phenotypic modification resulting from additional genetic events that confer a protective effect (see Penetrance).

Offspring of a proband. Each child of an individual with SAMD9L-ATXPC syndrome has a 50% chance of inheriting the SAMD9L pathogenic variant.

Other family members. The risk to other family members depends on the status of the proband's parents: if a parent has the SAMD9L pathogenic variant, his or her family members may be at risk of having a SAMD9L pathogenic variant and associated clinical manifestations including myelodysplasia (see Clinical Description).

Related Genetic Counseling Issues

See Management, Evaluation of Relatives at Risk for information on evaluating at-risk relatives for the purpose of early diagnosis and treatment.

Family planning

  • The optimal time for determination of genetic risk and discussion of the availability of prenatal/preimplantation genetic testing is before pregnancy.
  • It is appropriate to offer genetic counseling (including discussion of potential risks to offspring and reproductive options) to young adults who are affected or at risk.

Prenatal Testing and Preimplantation Genetic Testing

Once the SAMD9L pathogenic variant has been identified in an affected family member, prenatal testing for a pregnancy at increased risk and preimplantation genetic testing for SAMD9L-ATXPC syndrome are possible.

Differences in perspective may exist among medical professionals and within families regarding the use of prenatal testing. While most centers would consider use of prenatal testing to be a personal decision, discussion of these issues may be helpful.

Resources

GeneReviews staff has selected the following disease-specific and/or umbrella support organizations and/or registries for the benefit of individuals with this disorder and their families. GeneReviews is not responsible for the information provided by other organizations. For information on selection criteria, click here.

  • Aplastic Anemia & MDS International Foundation, Inc.
    4330 East West Highway
    Suite 230
    Bethesda MD 20814
    Phone: 800-747-2820
    Email: help@aamds.org
  • National Ataxia Foundation
    Phone: 763-553-0020
    Fax: 763-553-0167
    Email: naf@ataxia.org

Molecular Genetics

Information in the Molecular Genetics and OMIM tables may differ from that elsewhere in the GeneReview: tables may contain more recent information. —ED.

Table A.

SAMD9L Ataxia-Pancytopenia Syndrome: Genes and Databases

Data are compiled from the following standard references: gene from HGNC; chromosome locus from OMIM; protein from UniProt. For a description of databases (Locus Specific, HGMD, ClinVar) to which links are provided, click here.

Table B.

OMIM Entries for SAMD9L Ataxia-Pancytopenia Syndrome (View All in OMIM)

159550ATAXIA-PANCYTOPENIA SYNDROME; ATXPC
611170STERILE ALPHA MOTIF DOMAIN-CONTAINING PROTEIN 9-LIKE; SAMD9L

Molecular Pathogenesis

The role of SAMD9L in human bone marrow failure and malignancies is not known with certainty nor is the underlying cause of the varied neurologic manifestations. Many lines of evidence in primary tumors, cell cultures, and murine models show that SAMD9L has a role in cell proliferation, most likely as a tumor suppressor [Li et al 2007, Huang et al 2012, Wang et al 2014].

There are two prevailing hypotheses regarding the mechanism by which mutated SAMD9L impairs cell growth. One theory is that SAMD9L is involved in endosomal degradation of cytokine receptors [Nagamachi et al 2013]. Another theory is based on the observation that SAMD9L and its closely related contiguous gene SAMD9 both encode interferon-inducible host antiviral restriction factors targeted by virus-encoded virulence factors [Tanaka et al 2010, Li et al 2013, Liu & McFadden 2015, OhAinle et al 2018]. The suggestion is that these genes participate in host defense against viral infections by halting protein synthesis [Liu & McFadden 2015, Sivan et al 2018]. None of the pathogenic variants in SAMD9L reported to date are in the sterile alpha motif domain, arguing against its protein-protein interaction function being the driving mechanism in the pathogenesis of SAMD9L ataxia-pancytopenia (ATXPC) syndrome.

Studies in EBV-transformed leukocyte cell lines [Chen et al 2016] and transiently transfected HEK293 cells [Tesi et al 2017] provided evidence that cells diploid for wild type SAMD9L have a selective culture advantage over those heterozygous for mutated SAMD9L. It has been found that cells can spontaneously eliminate or abrogate mutated alleles in vivo by three different mechanisms:

The latter two phenomena, of somatic revertant clones repopulating the bone marrow, appear to explain striking reports of spontaneous long-term disease remission and of non-penetrance in some affected individuals and some unaffected carrier parents of affected children, respectively [Tesi et al 2017, Wong et al 2018]. To date such revertant effects have not been documented to affect the neurologic manifestations.

Mechanism of disease causation. It is postulated that SAMD9L-ATXPC syndrome is due to a toxic gain of function with suppression of precursor cell divisions.

SAMD9L-specific laboratory technical considerations. If a pathogenic SAMD9L variant is not detected but suspicion for SAMD9L-ATXPC syndrome remains high, consideration should be given to additional testing. Somatic genetic changes that eliminate the gain-of-function SAMD9L variant confer a selective culture advantage to hematopoietic cells (see Molecular Pathogenesis). This may result in a decreased fraction of cells with the pathogenic variant causing a false negative molecular result when testing leukocyte DNA. Therefore, evaluation of genomic abnormalities with SNP array and/or evaluation of low-abundance variants with deep sequencing (>1000x read depth) should be considered in individuals clinically suspected of having SAMD9L-ATXPC syndrome who have a negative genetic test result. If feasible, using the DNA derived from non-hematopoietic tissues (e.g., skin fibroblasts, hair roots) should be considered.

Chapter Notes

Author Notes

The focus of research in the Raskind laboratory is to find and study genes responsible for inherited neurologic disorders. In a long-standing collaboration with Dr Thomas Bird, we identified ABCB7 for X-linked sideroblastic anemia with ataxia, PRKCG for SCA14, ATP6AP2 for X-linked parkinsonism with spasticity, and ADCY5 for ADCY5-related dyskinesia, in addition to SAMD9L for SAMD9L-ATXPC syndrome.
Website: https://www.gs.washington.edu/faculty/raskind.htm

Author History

Thomas D Bird, MD (2017-present)
Dong-Hui Chen, MD, PhD (2017-present)
Prasit Phowthongkum, MD; University of Washington (2017-2021)
Wendy H Raskind, MD, PhD (2017-present)

Revision History

  • 4 February 2021 (ma) Comprehensive update posted live
  • 1 June 2017 (sw) Review posted live
  • 5 December 2016 (whr) Original submission

References

Literature Cited

  • Ahmed IA, Farooqi MS, Vander Lugt MT, Boklan J, Rose M, Friehling ED, Triplett B, Lieuw K, Saldana BD, Smith CM, Schwartz JR, Goyal RK. Outcomes of hematopoietic cell transplantation in patients with germline SAMD9/SAMD9L mutations. Biol Blood Marrow Transplant. 2019;25:2186–96. [PMC free article: PMC7110513] [PubMed: 31306780]
  • Bluteau O, Sebert S, Leblanc T, Peffault de Latour R, Quentin S, Lainey E, Hernandez L, Je Dalle J-H, Sicre de Fontbrune F, Lengline E, Itzykson R, Clappier E, Boissel N, Vasquez N, Da Costa M, Masliah-Planchon J, Cuccuini W, Raimbault A, De Jaegere L, Adès L, Fenaux P, Maury S, Schmitt C, Muller M, Domenech C, Blin N, Bruno B, Pellier I, Hunault M, Blanche S, Petit A, Leverger G, Michel G, Bertrand Y, Baruchel A, Socié G, Soulier J. A landscape of germ line mutations in a cohort of inherited bone marrow failure patients. Blood. 2018;131:717–32. [PubMed: 29146883]
  • Bowden R, Davies RW, Heger A, Pagnamenta AT, de Cesare M, Oikkonen LE, Parkes D, Freeman C, Dhalla F, Patel SY, Popitsch N, Ip CLC, Roberts HE, Salatino S, Lockstone H, Lunter G, Taylor JC, Buck D, Simpson MA, Donnelly P. Sequencing of human genomes with nanopore technology. Nat Commun. 2019;10:1869. [PMC free article: PMC6478738] [PubMed: 31015479]
  • Bürk K, Sival DA. Scales for the clinical evaluation of cerebellar disorders. Handb Clin Neurol. 2018;154:329–39. [PubMed: 29903450]
  • Cheah JJC, Brown AL, Schreiber AW, Feng J, Babic M, Moore S, Young CC, Fine M, Phillips K, Guandalini M, Wilson P, Poplawski N, Hahn CN, Scott HS. A novel germline SAMD9L mutation in a family with ataxia-pancytopenia syndrome and pediatric acute lymphoblastic leukemia. Haematologica. 2019;104:e318–e321. [PMC free article: PMC6601105] [PubMed: 30923096]
  • Chen DH, Below JE, Shimamura A, Keel SB, Matsushita M, Wolff J, Sul Y, Bonkowski E, Castella M, Taniguchi T, Nickerson D, Papayannopoulou T, Bird TD, Raskind WH. Ataxia-pancytopenia syndrome is caused by missense mutations in SAMD9L. Am J Hum Genet. 2016;98:1146–58. [PMC free article: PMC4908176] [PubMed: 27259050]
  • de Jesus AA, Hou Y, Brooks S, Malle L, Biancotto A, Huang Y, Calvo KR, Marrero B, Moir S, Oler AJ, Deng Z, Montealegre Sanchez GA, Ahmed A, Allenspach E, Arabshahi B, Behrens E, Benseler S, Bezrodnik L, Bout-Tabaku S, Brescia AC, Brown D, Burnham JM, Caldirola MS, Carrasco R, Chan AY, Cimaz R, Dancey P, Dare J, DeGuzman M, Dimitriades V, Ferguson I, Ferguson P, Finn L, Gattorno M, Grom AA, Hanson EP, Hashkes PJ, Hedrich CM, Herzog R, Horneff G, Jerath R, Kessler E, Kim H, Kingsbury DJ, Laxer RM, Lee PY, Lee-Kirsch MA, Lewandowski L, Li S, Lilleby V, Mammadova V, Moorthy LN, Nasrullayeva G, O'Neil KM, Onel K, Ozen S, Pan N, Pillet P, Piotto DG, Punaro MG, Reiff A, Reinhardt A, Rider LG, Rivas-Chacon R, Ronis T, Rösen-Wolff A, Roth J, Ruth NM, Rygg M, Schmeling H, Schulert G, Scott C, Seminario G, Shulman A, Sivaraman V, Son MB, Stepanovskiy Y, Stringer E, Taber S, Terreri MT, Tifft C, Torgerson T, Tosi L, Van Royen-Kerkhof A, Wampler Muskardin T, Canna SW, Goldbach-Mansky R. Distinct interferon signatures and cytokine patterns define additional systemic autoinflammatory diseases. J Clin Invest. 2020;130:1669–82. [PMC free article: PMC7108905] [PubMed: 31874111]
  • Gorcenco S, Komulainen-Ebrahim J, Nordborg K, Suo-Palosaari M, Andréasson S, Krüger J, Nilsson C, Kjellström U, Rahikkala E, Turkiewicz D, Karlberg M, Nilsson L, Cammenga J, Tedgård U, Davidsson J, Uusimaa J, Puschmann A. Ataxia-pancytopenia syndrome with SAMD9L mutations. Neurol Genet. 2017;3:e183. [PMC free article: PMC5570676] [PubMed: 28852709]
  • Huang J, Deng Q, Wang Q, Li KY, Dai JH, Li N, Zhu ZD, Zhou B, Liu XY, Liu RF, Fei QL, Chen H, Cai B, Zhou B, Xiao HS, Qin LX, Han ZG. Exome sequencing of hepatitis B virus-associated hepatocellular carcinoma. Nat Genet. 2012;44:1117–21. [PubMed: 22922871]
  • Inaba T, Honda H, Matsui H. The enigma of monosomy 7. Blood. 2018;131:2891–8. [PubMed: 29615405]
  • Li CF, Macdonald JR, Wei RY, Ray J, Lau K, Kandel C, Koffman R, Bell S, Scherer SW, Alman BA. Human sterile alpha motif domain 9, a novel gene identified as down-regulated in aggressive fibromatosis, is absent in the mouse. BMC Genomics. 2007;8:92. [PMC free article: PMC1855325] [PubMed: 17407603]
  • Li FP, Hecht F, Kaiser-Mccaw B, Baranko PV, Potter NU. Ataxia-pancytopenia: syndrome of cerebellar ataxia, hypoplastic anemia, monosomy 7, and acute myelogenous leukemia. Cancer Genet Cytogenet. 1981;4:189–96. [PubMed: 6947857]
  • Li FP, Potter NU, Buchanan GR, Vawter G, Whang-Peng J, Rosen RB. A family with acute leukemia, hypoplastic anemia and cerebellar ataxia: association with bone marrow C-monosomy. Am J Med. 1978;65:933–40. [PubMed: 283689]
  • Li J, Ding SC, Cho H, Chung BC, Gale M Jr, Chanda SK, Diamond MS. A short hairpin RNA screen of interferon-stimulated genes identifies a novel negative regulator of the cellular antiviral response. mBio. 2013;4:e00385–13. [PMC free article: PMC3684836] [PubMed: 23781071]
  • Liu J, McFadden G. SAMD9 is an innate antiviral host factor with stress response properties that can be antagonized by poxviruses. J Virol. 2015;89:1925–31. [PMC free article: PMC4300762] [PubMed: 25428864]
  • Martineau L, Noreau A, Dupré N. Therapies for ataxias. Curr Treat Options Neurol. 2014;16:300. [PubMed: 24832479]
  • Nagamachi A, Matsui H, Asou H, Ozaki Y, Aki D, Kanai A, Takubo K, Suda T, Nakamura T, Wolff L, Honda H, Inaba T. Haploinsufficiency of SAMD9L, an endosome fusion facilitator causes myeloid malignancies in mice mimicking human diseases with monosomy 7. Cancer Cell. 2013;24:305–17. [PubMed: 24029230]
  • Nagata Y, Narumi S, Guan Y, Przychodzen BP, Hirsch CM, Makishima H, Shima H, Aly M, Pastor V, Kuzmanovic T, Radivoyevitch T, Adema V, Awada H, Yoshida K, Li S, Sole F, Hanna R, Jha BK, LaFramboise T, Ogawa S, Sekeres MA, Wlodarski MW, Cammenga J, Maciejewski JP. Germline loss-of-function SAMD9 and SAMD9L alterations in adult myelodysplastic syndromes. Blood. 2018;132:2309–13. [PMC free article: PMC6251008] [PubMed: 30322869]
  • Ohainle M, Helms L, Vermeire J, Roesch F, Humes D, Basom R, Delrow JJ, Overbaugh J, Emerman M. A virus-packageable CRISPR screen identifies host factors mediating interferon inhibition of HIV. Elife. 2018;7:e39823. [PMC free article: PMC6286125] [PubMed: 30520725]
  • Pastor VB, Sahoo SS, Boklan J, Schwabe GC, Saribeyoglu E, Strahm B, Lebrecht D, Voss M, Bryceson YT, Erlacher M, Ehninger G, Niewisch M, Schlegelberger B, Baumann I, Achermann JC, Shimamura A, Hochrein J, Tedgård U, Nilsson L, Hasle H, Boerries M, Busch H, Niemeyer CM, Wlodarski MW. Constitutional SAMD9L mutations cause familial myelodysplastic syndrome and transient monosomy 7. Haematologica. 2018;103:427–37. [PMC free article: PMC5830370] [PubMed: 29217778]
  • Richards S, Aziz N, Bale S, Bick D, Das S, Gastier-Foster J, Grody WW, Hegde M, Lyon E, Spector E, Voelkerding K, Rehm HL, et al. Standards and guidelines for the interpretation of sequence variants: a joint consensus recommendation of the American College of Medical Genetics and Genomics and the Association for Molecular Pathology. Genet Med. 2015;17:405–24. [PMC free article: PMC4544753] [PubMed: 25741868]
  • Romano S, Coarelli G, Marcotulli C, Leonardi L, Piccolo F, Spadaro M, Frontali M, Ferraldeschi M, Vulpiani MC, Ponzelli F, Salvetti M, Orzi F, Petrucci A, Vanacore N, Casali C, Ristori G. Riluzole in patients with hereditary cerebellar ataxia: a randomised, double-blind, placebo-controlled trial. Lancet Neurol. 2015;14:985–91. [PubMed: 26321318]
  • Schwartz JR, Ma J, Lamprecht T, Walsh M, Wang S, Bryant V, Song G, Wu G, Easton J, Kesserwan C, Nichols KE, Mullighan CG, Ribeiro RC, Klco JM. The genomic landscape of pediatric myelodysplastic syndromes. Nat Commun. 2017;8:1557. [PMC free article: PMC5691144] [PubMed: 29146900]
  • Shakkottai VG, Fogel BL. Clinical neurogenetics: autosomal dominant spinocerebellar ataxia. Neurol Clin. 2013;31:987–1007. [PMC free article: PMC3818725] [PubMed: 24176420]
  • Sivan G, Glushakow-Smith SG, Katsafanas GC, Americo JL, Moss B. Human host range restriction of the vaccinia virus C7/k1 double deletion mutant is mediated by an atypical mode of translation inhibition. J Virol. 2018;92:e01329–18. [PMC free article: PMC6232495] [PubMed: 30209174]
  • Tanaka M, Shimbo T, Kikuchi Y, Matsuda M, Kaneda Y. Sterile alpha motif containing domain 9 is involved in death signaling of malignant glioma treated with inactivated Sendai virus particle (HVJ-E) or type I interferon. Int J Cancer. 2010;126:1982–91. [PubMed: 19830690]
  • Tesi B, Davidsson J, Voss M, Rahikkala E, Holmes T, Chiang SCC, Komulainen-Ebrahim J, Gorcenco S, Rundberg Nilsson A, Ripperger T, Kokkonen H, Bryder D, Fioretos T, Henter JI, Möttönen M, Niinimäki R, Nilsson L, Pronk CJ, Puschmann A, Qian H, Uusimaa J, Moilanen J, Tedgård U, Cammenga J, Bryceson YT. Gain-of-function SAMD9L mutations cause a syndrome of cytopenia, immunodeficiency, MDS, and neurological symptoms. Blood. 2017;129:2266–79. [PMC free article: PMC5399482] [PubMed: 28202457]
  • Thunström S, Axelsson M. Leukoencephalopathia, demyelinating peripheral neuropathy and dural ectasia explained by a not formerly described de novo mutation in the SAMD9L gene, ends 27 years of investigations - a case report. BMC Neurol. 2019;19:89. [PMC free article: PMC6499956] [PubMed: 31053103]
  • van de Warrenburg BP, van Gaalen J, Boesch S, Burgunder JM, Dürr A, Giunti P, Klockgether T, Mariotti C, Pandolfo M, Riess O. EFNS/ENS Consensus on the diagnosis and management of chronic ataxias in adulthood. Eur J Neurol. 2014;21:552–62. [PubMed: 24418350]
  • Wang Q, Zhai YY, Dai JH, Li KY, Deng Q, Han ZG. SAMD9L inactivation promotes cell proliferation via facilitating G1-S transition in hepatitis B virus-associated hepatocellular carcinoma. Int J Biol Sci. 2014;10:807–16. [PMC free article: PMC4115192] [PubMed: 25076857]
  • Wong JC, Bryant V, Lamprecht T, Ma J, Walsh M, Schwartz J, Del Pilar Alzamora M, Mullighan CG, Loh ML, Ribeiro R, Downing JR, Carroll WL, Davis J, Gold S, Rogers PC, Israels S, Yanofsky R, Shannon K, Klco JM. Germline SAMD9 and SAMD9L mutations are associated with extensive genetic evolution and diverse hematologic outcomes. JCI Insight. 2018;3:e121086. [PMC free article: PMC6124395] [PubMed: 30046003]
  • Zesiewicz TA, Wilmot G, Kuo SH, Perlman S, Greenstein PE, Ying SH, Ashizawa T, Subramony SH, Schmahmann JD, Figueroa KP, Mizusawa H, Schöls L, Shaw JD, Dubinsky RM, Armstrong MJ, Gronseth GS, Sullivan KL. Comprehensive systematic review summary: Treatment of cerebellar motor dysfunction and ataxia: report of the Guideline Development, Dissemination, and Implementation Subcommittee of the American Academy of Neurology. Neurology. 2018;90:464–71. [PMC free article: PMC5863491] [PubMed: 29440566]
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