Categories
Conditions/Tests

Hyper IgD Syndrome

Periodic Fever Syndromes

Familial Mediterranean Fever; Recurrent Polyserositis; Familial Paroxysmal Polyserositis; Familial Periodic Fever; TNF receptor-associated periodic syndrome; TRAPS; Familial Hibernian Fever; Autosomal dominant periodic fever syndrome; Hyper-IgD syndrome; Mevalonate Kinase Deficiency; Periodic Fever, Dutch Type; Hypergammaglobulinemia D and periodic fever syndrome

It is the responsibility of the ordering physician to ensure that informed consent has been obtained from the patient/legal guardian before ordering genetic testing. Please review the following Pre-Test Counselling Information with your patient before requesting any of our genetic tests.

Clinical Features

The periodic fever syndromes are disorders of the innate immune system characterized by recurrent episodes of inflammation and fever. The periodic fever syndromes may be inherited or acquired; the hereditary syndromes include familial Mediterranean fever (FMF), TNF receptor-associated periodic syndrome (TRAPS) and hyperimmunoglobulin D syndrome (HIDS), among others.

Familial Mediterranean Fever (FMF) in its classic form (Type 1) is characterized by recurrent episodes of inflammation and serositis including fever, peritonitis, synovitis, pleuritis, and, rarely, pericarditis and meningitis. Amyloidosis, which can lead to renal failure, is the most severe complication. Amyloidosis is the first clinical manifestation in Type 2 FMF. The disorder predominantly affects individuals of Mediterranean descent, particularly North African Jews.

TNF receptor-associated periodic syndrome (TRAPS) is most frequently characterized by recurrent fevers (seen in 95% of cases); arthralgia/myalgia and abdominal pain are also common symptoms. Approximately 15% of individuals with TRAPS eventually go on to develop amyloidosis. The conditions typically presents in early childhood, although this, like the clinical symptoms, is highly variable, both within and between families.

Hyperimmunoglobulin D Syndrome (HIDS) is characterized by recurrent episodes of fever, gastrointestinal symptoms and lymphadenopathy. Individuals often have a high serum immunoglobulin D (IgD) and immunoglobulin A (IgA), and these remain elevated even in the absence of symptoms. The disorder mainly affects individuals with ancestry that can be traced to Northwestern Europe, although it has been reported in other ethnic groups.

Genetics

FMF is an autosomal recessive disorder caused by mutations in the MEFV gene. MEFV is expressed exclusively in granulocytes and encodes pyrin, a protein critical in regulating the immune response.

TRAPS is an autosomal dominant condition caused by mutations in the TNFRSF1A gene, a member of the TNF-receptor superfamily. Most mutations are found in exons 2 to 4, and around 50% are substitutions of highly conserved cysteines in the extracellular domain. The exact mechanism by which mutations in TNFRSF1A cause TRAPS remains unclear, but most theories suggest that mutations lead to excess TNFR1 signalling. The majority of mutations are highly penetrant, but two recurrent variants (p.Pro46Leu and p.Arg92Gln) that can be seen in patients with milder symptoms of TRAPS can also be seen in healthy individuals.

HIDS is an autosomal recessive disease caused by mutations in the MVK gene. MVK encodes mevalonate kinase, an enzyme in the cholesterol, farnasyl and isoprenoid biosynthesis pathway. Most mutations in MVK that cause HIDS are missense variants that cause a reduction of MVK activity; however, more severe mutations that cause a near complete reduction in MVK activity cause the much more severe condition, mevalonic aciduria.

Indications for Testing

NOTE: TRAPS and HIDS may only be ordered or must be recommended* by a rheumatologist. 

        *consult letter must be provided

1. Confirmation of diagnosis:

       a.  In individuals with clinical features suggestive of FMF, TRAPS and/or HIDS.

2. Carrier testing

       a.  FMF and HIDS: Adults at risk to be carriers of either FMF or HIDS due to a family history confirmed with molecular testing.

3. Prenatal testing (technically feasible but not routinely performed – contact MGL to discuss):

       a.  Pregnancies known to be at risk of FMF, TRAPS or HIDS due to a family history. The mutation(s) segregating in the family must be known.

4. Presymptomatic testing:

       a.  Individuals at risk to have FMF, TRAPS or HIDS due to a family history of the condition. The mutation(s) segregating in the family must be known. Genetic counseling is recommended prior to presymptomatic testing.

Description of this Assay

Bi-directional Sanger sequencing across coding regions and flanking intronic sequences of the MEFV, TNFRSF1A and MVK genes.

In cases where FMF, TRAPS, and/or HIDS are requested for the same patient and priority of testing is not indicated, testing will proceed sequentially, starting with FMF. If FMF testing is negative, testing for TRAPS will be performed, followed by testing for HIDS.

Reference Sequence

MEFV: NM_000243.2

TNFRSF1A: NM_001065.2

MVK: NM_000431.2

The ‘A’ within the initiation codon, ATG, is designated as nucleotide number 1.

Sensitivity and Limitations

FMF: This assay will detect approximately 90% of mutations in FMF patients from populations with a high prevalence of FMF.  However, a negative result does not exclude the diagnosis.  In addition, other periodic fever syndromes may have a similar clinical presentation to FMF and these diagnoses will not be confirmed by this assay.

Turnaround Time

Routine

8 weeks

Specimen Requirements

Blood: 4 mL EDTA is optimal (Minimum: 1 mL EDTA)
DNA: 100 μL at 200 ng/μL is optimal (Minimum: 30 μL at 200 ng/μL)

Label each sample with three patient identifiers; preferably patient name, PHN, and date of birth and ship to the address below. Samples should be shipped at room temperature with a completed MGL Requisition to arrive Monday to Friday (not on Canadian statutory holidays). 

Test Price and Billing

Testing is only available to residents of Canada, except in very specific circumstances where testing is urgent or emergent.  Payment is not required when requests are made for individuals who are insured by Health Insurance BC (administered through the BC Medical Services Plan (MSP)) AND eligible for testing according to the test utilization guidelines / policy. If the individual undergoing testing is not insured by these providers or does not meet utilization guidelines or policy, please complete a billing form; testing will only commence after receipt of billing informationTest prices can be found here.

Cautions

Molecular genetic testing is limited by the current understanding of the genome and the genetics of a particular disease, as well as by the method of detection used. This method will not detect all mutations (e.g., large genomic deletions/duplications, promoter mutations, regulatory element mutations).

For carrier/predictive testing due to a family history, it is generally important to first document the gene mutation in an affected or carrier family member. This information should be provided to the laboratory for assessment of whether the assay is appropriate for detection of the familial mutation, and to aid in the interpretation of data.

In some cases, DNA alterations of undetermined or unclear clinical significance may be identified.

Rare single nucleotide variants or polymorphisms could lead to false-negative results. If results obtained do not match the clinical findings, consult the on-service Molecular Geneticist.

A previous bone marrow transplant from an allogenic donor will result in molecular data that reflects the donor genotype rather than the recipient (patient) genotype. Consult the on-service Molecular Geneticist for approach to testing in such individuals.

Transfusions performed with packed red blood cells will generally not affect the outcome of molecular genetic testing. However, if there is no clinical urgency, the cautious approach is to wait one week post packed red cell transfusion before collecting a sample for genetic testing. Consult the on-service Molecular Geneticist as needed.

Test results should be interpreted in the context of clinical findings, family history, and other laboratory data. Errors in our interpretation of results may occur if information given is inaccurate or incomplete.

Categories
Conditions/Tests

Spinocerebellar Ataxia Panel

Spinocerebellar Ataxia Panel

Machado-Joseph Disease; Olivopontocerebellar Atrophy (OPCA); Cerebelloparenchymal Disease; Menzel type OPCA; Schut-Haymaker type OPCA; Holguin Ataxia; Wadia-Swami Syndrome; Azorean Ataxia; Spinopontine Atrophy; Nigrospinodentatal Degeneration

It is the responsibility of the ordering physician to ensure that informed consent has been obtained from the patient/legal guardian before ordering genetic testing. Please review the following Pre-Test Counselling Information with your patient before requesting any of our genetic tests.

Clinical Features

The spinocerebellar ataxias (SCA) are characterized by slowly progressive gait ataxia, and are often associated with poor coordination of hands, speech, and eye movement.

Genetics

SCA type 1, 2, 3, 6, and 7 are autosomal dominant conditions caused by expansion of the CAG repeat in ATXN1, ATXN2, ATXN3, CACNA1A, and ATXN7 respectively. 

SCA alleles are classified based on size, and reported based on classification, as outlined below.  Exact repeat sizes are not reported:

SCA1 (ATXN1):

  • Normal: ≤38 repeats or 39-44 interrupted repeats
  • Full Penetrance (pathogenic): 39-44 uninterrupted repeats or ≥45 repeats

SCA2 (ATXN2)

  • Normal: ≤31 repeats
  • Uncertain: 32-34 repeats
  • Full Penetrance (pathogenic): ≥35 repeats

SCA3 (ATXN3)

  • Normal: ≤44 repeats
  • Uncertain: 45-~59 repeats*
  • Full Penetrance (pathogenic): ≥~60 repeats*

           *The repeat size of the smallest full penetrance pathogenic allele is not well-defined.

SCA6 (CACNA1A)

  • Normal: ≤18 repeats
  • Uncertain: 19 repeats
  • Full Penetrance (pathogenic): ≥20 repeats

SCA7 (ATXN7)

  • Normal: ≤33 repeats
  • Uncertain: 34-36 repeats
  • Full Penetrance (pathogenic): ≥37 repeats

Alleles in the uncertain category are rare and as such their clinical significance has not been well established.  This category includes alleles that may be associated with either mild/late-onset symptoms or with reduced penetrance.

Indications for Testing

  1. Confirmation of diagnosis:
    1. In individuals with clinical features suggestive of SCA1, 2, 3, 6 or 7.
  2. Prenatal testing (prenatal diagnosis requests are not normally accepted from physicians other than Medical Geneticists; technically feasible, but not routinely performed – contact MGL to discuss):
    1. Pregnancies at risk of being affected with one of these ataxias
  3. Presymptomatic testing:
    1. Adults at risk to develop one of these ataxias due to a molecularly confirmed family history. Predictive testing will only be performed following genetic counselling by a recognized genetic service.

Description of this Assay

Sizing of the CAG repeats associated with each gene is carried out on an ABI genetic analyzer following fluorescence-based PCR amplification.  Digestion with SfaN1 is performed on SCA1 alleles between 39 – 44 repeats to differentiate between interrupted (normal) and uninterrupted (pathogenic) repeats.  Alleles ≤44 CAG repeats that are interrupted by CAT repeats are normal, whereas alleles with 39-44 uninterrupted CAG repeats are considered fully penetrant (pathogenic).  As required, triplet-primed (tp) PCR is performed for SCA2 and SCA7.

Sensitivity and Limitations

The accuracy of sizing of alleles on an ABI genetic analyzer is approximately +/- 1 repeat in the normal range; however, the accuracy of sizing with PCR amplification decreases as the allele increases in repeat number.  For juvenile patients (<10 years old), as required, tp-PCR is performed to assess for the presence of large SCA2/SCA7 expanded alleles refractory to standard PCR amplification; tp-PCR is otherwise not performed/indicated except on request after discussion with a clinical Molecular Geneticist, or if the age of onset is indicated as juvenile/infant on the test requisition.  Approximately 100% of individuals with SCA1/SCA2/SCA3/SCA6/SCA7 will have an expanded CAG repeat.  The sensitivity of detection for the CAG repeat expansion is approximately 100%.

Turnaround Time

Routine

6 weeks

Specimen Requirements

Blood: 4 mL EDTA is optimal (Minimum: 1 mL EDTA)
DNA: 100 μL at 200 ng/μL is optimal (Minimum: 30 μL at 200 ng/μL)

Label each sample with three patient identifiers; preferably patient name, PHN, and date of birth and ship to the address below. Samples should be shipped at room temperature with a completed MGL Requisition to arrive Monday to Friday (not on Canadian statutory holidays). 

Test Price and Billing

Testing is only available to residents of Canada, except in very specific circumstances where testing is urgent or emergent.  Payment is not required when requests are made for individuals who are insured by Health Insurance BC (administered through the BC Medical Services Plan (MSP)) AND eligible for testing according to the test utilization guidelines / policy. If the individual undergoing testing is not insured by these providers or does not meet utilization guidelines or policy, please complete a billing form; testing will only commence after receipt of billing informationTest prices can be found here.

Cautions

Molecular genetic testing is limited by the current understanding of the genome and the genetics of a particular disease, as well as by the method of detection used. This method will not detect all mutations (e.g., point mutations in the coding region of the gene, large genomic deletions, promoter mutations, regulatory element mutations). For some trinucleotide repeat disorders, repeat expansions have been described that cannot be amplified by PCR. Consideration should be given to this particularly in cases with severe clinical features or early onset; consult the on-service Molecular Geneticist to discuss specific repeat disorders.

For carrier/predictive testing due to family history, it is generally important to first document the gene mutation in an affected or carrier family member. This information should be provided to the laboratory for assessment of whether the assay is appropriate for detection of the familial mutation, and to aid in the interpretation of data.

In some cases, DNA alterations of undetermined or unclear clinical significance may be identified.

In certain scenarios of repeat size mosaicism, false negative results may occur. If results obtained do not match the clinical findings, consult the on-service Molecular Geneticist.

Rare single nucleotide variants or polymorphisms could lead to false-negative or false-positive results. If results obtained do not match the clinical findings, consult the on-service Molecular Geneticist.

A previous bone marrow transplant from an allogenic donor will result in molecular data that reflects the donor genotype rather than the recipient (patient) genotype. Consult the on-service Molecular Geneticist for approach to testing in such individuals.

Transfusions performed with packed red blood cells will generally not affect the outcome of molecular genetic testing. However, if there is no clinical urgency, the cautious approach is to wait one week post packed red cell transfusion before collecting a sample for genetic testing. Consult the on-service Molecular Geneticist as needed.

Test results should be interpreted in the context of clinical findings, family history, and other laboratory data. Errors in our interpretation of results may occur if information given is inaccurate or incomplete.

Categories
Conditions/Tests

Dystonia, Early Onset Primary (DYT1)

Dystonia, Early Onset Primary (DYT1)

Dystonia Musculorum Deformans 1; Early Onset Primary Dystonia; Early Onset Torsion Dystonia

It is the responsibility of the ordering physician to ensure that informed consent has been obtained from the patient/legal guardian before ordering genetic testing. Please review the following Pre-Test Counselling Information with your patient before requesting any of our genetic tests.

Clinical Features

Early Onset Primary Dystonia (DYT1) typically presents in childhood or adolescence.  The most common presentation is with dystonic muscle contractions causing posturing of a foot, leg, or arm.  The disorder is usually first apparent with movement of specific body parts for specific actions (e.g., writing or walking); however, over time the contractions frequently manifest with more generalized movements and spread to other body regions.  Disease severity varies considerably even within the same family; writer’s cramp may be the only sign in some affected individuals.

Genetics

DYT1 is an autosomal dominant disorder caused by a three base-pair deletion, c.907_909delGAG, in the TOR1A gene.  No other mutation has been unequivocally identified.  Penetrance is approximately 30%.

Indications for Testing

  1. Confirmation of diagnosis
    1. In individuals with clinical features suggestive of early-onset primary dystonia.
  2. Carrier testing:
    1. Although this is an autosomal dominant condition, because of the reduced penetrance, carrier testing may be relevant to identify non-penetrant mutation carriers.  Please refer to limitations section for further information.
  3. Prenatal testing (technically feasible but not routinely performed – contact MGL to discuss):
    1. Pregnancies of couples in which one person has DYT1

Description of this Assay

PCR amplification across the region of the TOR1A gene containing the c.907_909delGAG mutation is performed to determine whether a deletion is present.

Sensitivity and Limitations

This test detects only the common TOR1A trinucleotide deletion.  This deletion is seen in > 99% of cases of familial early onset primary dystonia.  The mutation has been reported in 72% of patients with early onset generalized dystonia, 13% of patients with unclassified movement disorders, and only 1% of patients with late onset/focal dystonia.  Given the significantly reduced penetrance of this condition, care must be taken when counselling presymptomatic individuals.  Symptoms are extremely variable both within and between families and up to 70% of individuals will never present with symptoms.  This test cannot determine who will and who will not go on to develop symptoms.

Turnaround Time

Routine

8 weeks

Specimen Requirements

Blood: 4 mL EDTA is optimal (Minimum: 1 mL EDTA)
DNA: 100 μL at 200 ng/μL is optimal (Minimum: 30 μL at 200 ng/μL)

Label each sample with three patient identifiers; preferably patient name, PHN, and date of birth and ship to the address below. Samples should be shipped at room temperature with a completed MGL Requisition to arrive Monday to Friday (not on Canadian statutory holidays). 

Test Price and Billing

Testing is only available to residents of Canada, except in very specific circumstances where testing is urgent or emergent.  Payment is not required when requests are made for individuals who are insured by Health Insurance BC (administered through the BC Medical Services Plan (MSP)) AND eligible for testing according to the test utilization guidelines / policy. If the individual undergoing testing is not insured by these providers or does not meet utilization guidelines or policy, please complete a billing form; testing will only commence after receipt of billing informationTest prices can be found here.

Cautions

Molecular genetic testing is limited by the current understanding of the genome and the genetics of a particular disease, as well as by the method of detection used.

Rare single nucleotide variants or polymorphisms could lead to false-negative or false-positive results. If results obtained do not match the clinical findings, consult the on-service Molecular Geneticist.

A previous bone marrow transplant from an allogenic donor will result in molecular data that reflects the donor genotype rather than the recipient (patient) genotype. Consult the on-service Molecular Geneticist for approach to testing in such individuals.

Transfusions performed with packed red blood cells will generally not affect the outcome of molecular genetic testing. However, if there is no clinical urgency, the cautious approach is to wait one week post packed red cell transfusion before collecting a sample for genetic testing. Consult the on-service Molecular Geneticist as needed.

Test results should be interpreted in the context of clinical findings, family history, and other laboratory data. Errors in our interpretation of results may occur if information given is inaccurate or incomplete.

Categories
Conditions/Tests

Hyperkalemic Periodic Paralysis

Hyperkalemic Periodic Paralysis

Gamstorp Disease; Adynamia Episodica Hereditaria With Myotonia; Adynamia Episodica Hereditaria Without Myotonia; Normokalemic Periodic Paralysis; Sodium Channel Muscle Disease

It is the responsibility of the ordering physician to ensure that informed consent has been obtained from the patient/legal guardian before ordering genetic testing. Please review the following Pre-Test Counselling Information with your patient before requesting any of our genetic tests.

Clinical Features

Hyperkalemic periodic paralysis is characterized by attacks of flaccid limb weakness, which may be accompanied by weakness of the eyes, throat and trunk. During attacks, serum potassium concentration is >5 mmol/L or has increased by at least 1.5 mmol/L over baseline. Muscle strength and serum postassium concentration are normal between attacks. Onset is generally before 20 years of age.

Genetics

SCN4A is the only gene identified to date that is known to be associated with hyperkalemic periodic paralysis. Four recurrent mutations account for almost all of the SCN4A disease alleles; together these account for approximately 55% of cases.

Indications for Testing

  1. Confirmation of diagnosis:
    1. In individuals with clinical features suggestive of hyperkalemic periodic paralysis.
  2. Prenatal testing (technically feasible but not routinely performed – contact MGL to discuss):
    1. Pregnancies known to be at risk of hyperkalemic periodic paralysis and the SCN4A mutation is known.
  3. Presymptomatic testing:
    1. Asymptomatic children and adults at risk of this condition because of a family history. The SCN4A mutation must be known.

Description of this Assay

Bidirectional Sanger sequencing of SCN4A exons 13 and 24 and their flanking intronic sequences, which encompass the four common mutations associated with hyperkalemic periodic paralysis: c.2065C>A (p.Leu689Ile), c.2078T>C (p.Ile693Thr), c.2111C>T (p.Thr704Met) and c.4774A>G (p.Met1592Val).

Reference Sequence

NM_000334.4 The ‘A’ within the initiation codon, ATG, is designated as nucleotide number 1.

Sensitivity and Limitations

The four mutations tested account for approximately 55% of mutations seen in affected individuals. Less common mutations exist that are not detected by our assay. In cases with negative results, where the clinical suspicion remains high, consideration may be given to pursuing funding for full gene sequencing in an out-of-province laboratory. Please see our Out of Province Testing Protocol for further information.

Turnaround Time

Routine

8 weeks

Specimen Requirements

Blood: 4 mL EDTA is optimal (Minimum: 1 mL EDTA)
DNA: 100 μL at 200 ng/μL is optimal (Minimum: 30 μL at 200 ng/μL)

Label each sample with three patient identifiers; preferably patient name, PHN, and date of birth and ship to the address below. Samples should be shipped at room temperature with a completed MGL Requisition to arrive Monday to Friday (not on Canadian statutory holidays). 

Test Price and Billing

Testing is only available to residents of Canada, except in very specific circumstances where testing is urgent or emergent.  Payment is not required when requests are made for individuals who are insured by Health Insurance BC (administered through the BC Medical Services Plan (MSP)) AND eligible for testing according to the test utilization guidelines / policy. If the individual undergoing testing is not insured by these providers or does not meet utilization guidelines or policy, please complete a billing form; testing will only commence after receipt of billing informationTest prices can be found here.

Cautions

Molecular genetic testing is limited by the current understanding of the genome and the genetics of a particular disease, as well as by the method of detection used. This method will not detect all mutations (e.g., mutations outside the regions tested as described above, large genomic deletions, promoter mutations, regulatory element mutations).

For carrier/predictive testing due to family history, it is generally important to first document the gene mutation in an affected or carrier family member. This information should be provided to the laboratory for assessment of whether the assay is appropriate for detection of the familial mutation, and to aid in the interpretation of data.

In rare cases, DNA alterations of undetermined or unclear clinical significance may be identified.

Rare single nucleotide variants or polymorphisms could lead to false-negative results. If results obtained do not match the clinical findings, consult the on-service Molecular Geneticist.

A previous bone marrow transplant from an allogenic donor will result in molecular data that reflects the donor genotype rather than the recipient (patient) genotype. Consult the on-service Molecular Geneticist for approach to testing in such individuals.

Transfusions performed with packed red blood cells will generally not affect the outcome of molecular genetic testing. However, if there is no clinical urgency, the cautious approach is to wait one week post packed red cell transfusion before collecting a sample for genetic testing. Consult the on-service Molecular Geneticist as needed.

Test results should be interpreted in the context of clinical findings, family history, and other laboratory data. Errors in our interpretation of results may occur if information given is inaccurate or incomplete.

Categories
Conditions/Tests

Spinocerebellar Ataxia Type 1

Spinocerebellar Ataxia Panel

Machado-Joseph Disease; Olivopontocerebellar Atrophy (OPCA); Cerebelloparenchymal Disease; Menzel type OPCA; Schut-Haymaker type OPCA; Holguin Ataxia; Wadia-Swami Syndrome; Azorean Ataxia; Spinopontine Atrophy; Nigrospinodentatal Degeneration

It is the responsibility of the ordering physician to ensure that informed consent has been obtained from the patient/legal guardian before ordering genetic testing. Please review the following Pre-Test Counselling Information with your patient before requesting any of our genetic tests.

Clinical Features

The spinocerebellar ataxias (SCA) are characterized by slowly progressive gait ataxia, and are often associated with poor coordination of hands, speech, and eye movement.

Genetics

SCA type 1, 2, 3, 6, and 7 are autosomal dominant conditions caused by expansion of the CAG repeat in ATXN1, ATXN2, ATXN3, CACNA1A, and ATXN7 respectively. 

SCA alleles are classified based on size, and reported based on classification, as outlined below.  Exact repeat sizes are not reported:

SCA1 (ATXN1):

  • Normal: ≤38 repeats or 39-44 interrupted repeats
  • Full Penetrance (pathogenic): 39-44 uninterrupted repeats or ≥45 repeats

SCA2 (ATXN2)

  • Normal: ≤31 repeats
  • Uncertain: 32-34 repeats
  • Full Penetrance (pathogenic): ≥35 repeats

SCA3 (ATXN3)

  • Normal: ≤44 repeats
  • Uncertain: 45-~59 repeats*
  • Full Penetrance (pathogenic): ≥~60 repeats*

           *The repeat size of the smallest full penetrance pathogenic allele is not well-defined.

SCA6 (CACNA1A)

  • Normal: ≤18 repeats
  • Uncertain: 19 repeats
  • Full Penetrance (pathogenic): ≥20 repeats

SCA7 (ATXN7)

  • Normal: ≤33 repeats
  • Uncertain: 34-36 repeats
  • Full Penetrance (pathogenic): ≥37 repeats

Alleles in the uncertain category are rare and as such their clinical significance has not been well established.  This category includes alleles that may be associated with either mild/late-onset symptoms or with reduced penetrance.

Indications for Testing

  1. Confirmation of diagnosis:
    1. In individuals with clinical features suggestive of SCA1, 2, 3, 6 or 7.
  2. Prenatal testing (prenatal diagnosis requests are not normally accepted from physicians other than Medical Geneticists; technically feasible, but not routinely performed – contact MGL to discuss):
    1. Pregnancies at risk of being affected with one of these ataxias
  3. Presymptomatic testing:
    1. Adults at risk to develop one of these ataxias due to a molecularly confirmed family history. Predictive testing will only be performed following genetic counselling by a recognized genetic service.

Description of this Assay

Sizing of the CAG repeats associated with each gene is carried out on an ABI genetic analyzer following fluorescence-based PCR amplification.  Digestion with SfaN1 is performed on SCA1 alleles between 39 – 44 repeats to differentiate between interrupted (normal) and uninterrupted (pathogenic) repeats.  Alleles ≤44 CAG repeats that are interrupted by CAT repeats are normal, whereas alleles with 39-44 uninterrupted CAG repeats are considered fully penetrant (pathogenic).  As required, triplet-primed (tp) PCR is performed for SCA2 and SCA7.

Sensitivity and Limitations

The accuracy of sizing of alleles on an ABI genetic analyzer is approximately +/- 1 repeat in the normal range; however, the accuracy of sizing with PCR amplification decreases as the allele increases in repeat number.  For juvenile patients (<10 years old), as required, tp-PCR is performed to assess for the presence of large SCA2/SCA7 expanded alleles refractory to standard PCR amplification; tp-PCR is otherwise not performed/indicated except on request after discussion with a clinical Molecular Geneticist, or if the age of onset is indicated as juvenile/infant on the test requisition.  Approximately 100% of individuals with SCA1/SCA2/SCA3/SCA6/SCA7 will have an expanded CAG repeat.  The sensitivity of detection for the CAG repeat expansion is approximately 100%.

Turnaround Time

Routine

6 weeks

Specimen Requirements

Blood: 4 mL EDTA is optimal (Minimum: 1 mL EDTA)
DNA: 100 μL at 200 ng/μL is optimal (Minimum: 30 μL at 200 ng/μL)

Label each sample with three patient identifiers; preferably patient name, PHN, and date of birth and ship to the address below. Samples should be shipped at room temperature with a completed MGL Requisition to arrive Monday to Friday (not on Canadian statutory holidays). 

Test Price and Billing

Testing is only available to residents of Canada, except in very specific circumstances where testing is urgent or emergent.  Payment is not required when requests are made for individuals who are insured by Health Insurance BC (administered through the BC Medical Services Plan (MSP)) AND eligible for testing according to the test utilization guidelines / policy. If the individual undergoing testing is not insured by these providers or does not meet utilization guidelines or policy, please complete a billing form; testing will only commence after receipt of billing informationTest prices can be found here.

Cautions

Molecular genetic testing is limited by the current understanding of the genome and the genetics of a particular disease, as well as by the method of detection used. This method will not detect all mutations (e.g., point mutations in the coding region of the gene, large genomic deletions, promoter mutations, regulatory element mutations). For some trinucleotide repeat disorders, repeat expansions have been described that cannot be amplified by PCR. Consideration should be given to this particularly in cases with severe clinical features or early onset; consult the on-service Molecular Geneticist to discuss specific repeat disorders.

For carrier/predictive testing due to family history, it is generally important to first document the gene mutation in an affected or carrier family member. This information should be provided to the laboratory for assessment of whether the assay is appropriate for detection of the familial mutation, and to aid in the interpretation of data.

In some cases, DNA alterations of undetermined or unclear clinical significance may be identified.

In certain scenarios of repeat size mosaicism, false negative results may occur. If results obtained do not match the clinical findings, consult the on-service Molecular Geneticist.

Rare single nucleotide variants or polymorphisms could lead to false-negative or false-positive results. If results obtained do not match the clinical findings, consult the on-service Molecular Geneticist.

A previous bone marrow transplant from an allogenic donor will result in molecular data that reflects the donor genotype rather than the recipient (patient) genotype. Consult the on-service Molecular Geneticist for approach to testing in such individuals.

Transfusions performed with packed red blood cells will generally not affect the outcome of molecular genetic testing. However, if there is no clinical urgency, the cautious approach is to wait one week post packed red cell transfusion before collecting a sample for genetic testing. Consult the on-service Molecular Geneticist as needed.

Test results should be interpreted in the context of clinical findings, family history, and other laboratory data. Errors in our interpretation of results may occur if information given is inaccurate or incomplete.

Categories
Conditions/Tests

Dystrophinopathies (DMD, BMD)

Dystrophinopathies (DMD, BMD)

Duchenne Muscular Dystrophy; Becker Muscular Dystrophy; DMD-Related Dilated Cardiomyopathy

It is the responsibility of the ordering physician to ensure that informed consent has been obtained from the patient/legal guardian before ordering genetic testing. Please review the following Pre-Test Counselling Information with your patient before requesting any of our genetic tests.

Clinical Features

The dystrophinopathies manifest as a spectrum of muscle diseases. The mildest of the phenotypes includes an asymptomatic increase in serum concentration of creatine phosphokinase (CK or CpK), muscle cramps with myoglobinuria, and isolated quadriceps myopathy. At the opposite end of the spectrum is Duchenne muscular dystrophy (DMD), usually presenting in early childhood with delay in the motor milestones. DMD is rapidly progressive; patients are usually wheelchair-bound by 12 years of age and death usually occurs before age 30, due most frequently to respiratory complications and/or cardiomyopathy. Becker muscular dystrophy (BMD) is characterized by later-onset skeletal muscle weakness; individuals with BMD usually remain ambulatory well into their 20s. Despite the milder skeletal muscle involvement in BMD, cardiomypathy is a common cause of morbidity and the most common cause of death (on average in the mid-40s). Finally, DMD-associated dilated cardiomyopathy (DCM) is characterized by left ventricular dilation and congestive heart failure. Female carriers of DMD mutations are at increased risk for cardiomyopathy.

Genetics

The dystrophinopathies are due to mutations in dystrophin (DMD), an X-linked gene encoding a membrane-associated protein that is found in muscle and a subset of neurons. The Duchenne phenotype is almost invariably caused by mutations that disrupt the reading frame including: deletions or duplications; nonsense mutations, and splice-site mutations. These produce a dystrophin protein molecule that is degraded. The milder Becker phenotype, on the other hand, results from mutations that reduce but do not completely eliminate the production of functional dystrophin protein, including deletions or duplications that maintain the open reading frame of the transcript, some splicing mutations, and most non-truncating single-base changes that result in translation of a protein product with intact N and C termini. DMD-associated dilated cardiomyopathy is caused by mutations in DMD that affect the muscle promoter (PM) and the first exon (E1), resulting in no dystrophin transcript being produced in cardiac muscle; expression (under different promoters) is retained in skeletal muscle and the central nervous system.

Indications for Testing

  1. Confirmation of diagnosis:
    1. Testing of males with a suspected diagnosis of DMD.
    2. Testing of females is warranted if there is a clinical presentation consistent with the disease.
  2. Carrier testing:
    1. Testing of adult females at risk to be carriers because of a family history. NB: Carriers have the potential for health problems in addition to the ability to transmit disease to offspring; genetic counselling is recommended prior to testing.
  3. Prenatal testing (prenatal diagnosis requests are not normally accepted from physicians other than Medical Geneticists):
    1. Pregnancies at risk of inheriting a known DMD deletion or duplication. Prior to testing for the DMD mutation, fetal sexing is performed; if the fetus is female, further testing is not indicated.
      NB: If the mutation segregating in the mother is not known, consult the on-service Molecular Geneticist for assessment of whether linkage analysis is available for prenatal diagnosis
  4. Presymptomatic testing:
    1. Requests for presymptomatic testing are only accepted following genetic counselling by a recognized genetic service.

Description of this Assay

Multiplex ligation-dependant probe amplification (MLPA) is carried out with the P034-A2 and P035-A2 probe mixes (MRC-Holland) to detect whole exon deletions and duplications; each of the 79 exons of DMD and the alternate exon 1 (DP427c) are assessed.

Sensitivity and Limitations

Approximately 70 – 75% of DMD patients and 85 – 90% of BMD patients will have a deletion or duplication detectable by this assay. Therefore, a negative result does not rule out the diagnosis. Further, a negative result does not exclude the possibility that a woman is a carrier if the mutation segregating in the family is not known. If, based on a combination of the serum creatinine phosphokinase (CpK) levels, muscle biopsy results, clinical features and family history there remains a significant suspicion for a dystrophinopathy, consideration may be given to obtaining funding for sequencing of the DMD gene in an out-of-province laboratory. Please see our Out of Province Testing Protocol for further information. In the event that the diagnosis of a dystrophinopathy cannot be confirmed using either MLPA or sequencing, linkage testing may be available in our laboratory; consult on-service Molecular Geneticist.

Turnaround Time

Routine

6 weeks

Pregnancy-related/Prenatal

If pregnancy management will be altered, 3 weeks; otherwise, routine TAT.

Specimen Requirements

Blood: 4 mL EDTA is optimal (Minimum: 1 mL EDTA)
DNA: NOT ACCEPTED

Label each sample with three patient identifiers; preferably patient name, PHN, and date of birth and ship to the address below. Samples should be shipped at room temperature with a completed MGL Requisition to arrive Monday to Friday (not on Canadian statutory holidays). 

Prenatal Specimens
Prenatal testing REQUIRES LABORATORY CONSULTATION PRIOR TO THE PROCEDURE and can only be ordered by a Medical Geneticist. Contact the laboratory at 604-875-2852 and choose the appropriate option for the Molecular Geneticist on service.
Chorionic Villi: 20 mg.
Direct Amniotic fluid: 25 mL collected in two separate tubes of equal volume.
Cultured Amniocytes: Two (2) 100% confluent T-25 flasks.

Label each sample with three patient identifiers; preferably patient name, PHN, and date of birth. Ship samples by overnight courier with a completed MGL Requisition to arrive Monday to Friday (not on Canadian statutory holidays) as follows:

  • Villi – on wet ice or in media at room temperature
  • Amniocytes, Amniotic fluid, DNA – at room temperature

Shipping Address

Specimen Receiving Room 2J20

Children’s & Women’s Health Centre of British Columbia – Laboratory

4500 Oak Street, Vancouver, BC, V6H 3N1

Test Price and Billing

Testing is only available to residents of Canada, except in very specific circumstances where testing is urgent or emergent.  Payment is not required when requests are made for individuals who are insured by Health Insurance BC (administered through the BC Medical Services Plan (MSP)) AND eligible for testing according to the test utilization guidelines / policy. If the individual undergoing testing is not insured by these providers or does not meet utilization guidelines or policy, please complete a billing form; testing will only commence after receipt of billing informationTest prices can be found here.

Cautions

Molecular genetic testing is limited by the current understanding of the genome and the genetics of a particular disease, as well as by the method of detection used. This method will not detect all mutations (e.g., point mutations in the coding region, promoter mutations, and regulatory element mutations). In rare cases, a point mutation could be detected.

For carrier/predictive testing due to family history, it is generally important to first document the gene mutation in an affected or carrier family member. This information should be provided to the laboratory for assessment of whether the assay is appropriate for detection of the familial mutation, and to aid in the interpretation of data.

In some cases, DNA alterations of undetermined or unclear clinical significance may be identified.

Rare single nucleotide variants or polymorphisms could lead to false-negative results. If results obtained do not match the clinical findings, consult the on-service Molecular Geneticist.

A previous bone marrow transplant from an allogenic donor will result in molecular data that reflects the donor genotype rather than the recipient (patient) genotype. Consult the on-service Molecular Geneticist for approach to testing in such individuals.

Transfusions performed with packed red blood cells will generally not affect the outcome of molecular genetic testing. However, if there is no clinical urgency, the cautious approach is to wait one week post packed red cell transfusion before collecting a sample for genetic testing. Consult the on-service Molecular Geneticist as needed.

Test results should be interpreted in the context of clinical findings, family history, and other laboratory data. Errors in our interpretation of results may occur if information given is inaccurate or incomplete.

Categories
Conditions/Tests

Hypochondroplasia

Hypochondroplasia

It is the responsibility of the ordering physician to ensure that informed consent has been obtained from the patient/legal guardian before ordering genetic testing. Please review the following Pre-Test Counselling Information with your patient before requesting any of our genetic tests.

Clinical Features

Hypochondroplasia is a skeletal dysplasia characterized by short stature; stocky build; disproportionately short arms and legs; broad, short hands and feet; mild joint laxity; and macrocephaly. The skeletal features are very similar to achondroplasia but tend to be milder. Medical complications common to achondroplasia (e.g., spinal stenosis, tibial bowing, obstructive apnea) occur less frequently in hypochondroplasia, but deficits in mental capacity and/or function may be more prevalent. Children usually present as toddlers or school-age children with short stature; limb disproportion and other features become more prominent with time. Individuals with mild achondroplasia and severe hypochondroplasia present similarly.

Genetics

The majority of cases of hypochondroplasia are due to mutations in the FGFR3 gene. Inheritance is autosomal dominant, although most cases are due to de novo mutations (i.e., both parents are of normal stature). Approximately 70% of probands with hypochondroplasia are heterozygous for the FGFR3 p.Asn540Lys mutation, due to one of two recurrent FGFR3 mutations, c. 1620C>A (in 70%) and c.1620C>G (in 30%). The achondroplasia mutation, p.Glu380Arg (c.1138G>A; c.1138G>C), may present clinically as severe hypochondroplasia . Other rare FGFR3 mutations have been reported.

Indications for Testing

  1. Confirmation of diagnosis:
    1. In individuals with clinical features suggestive of hypochondroplasia.
  2. Prenatal testing (technically feasible, but not routinely performed – contact MGL to discuss):
    1. In pregnancies born to a couple in which one or both parents has hypochondroplasia

Description of this Assay

Bidirectional Sanger sequencing of the regions of FGFR3 encompassing the common hypochondroplasia mutation p.Asn540Lys (c.1620C>A; c.1620C>G), the rare p.Asn540Thr (c.1619A>C), p.Asn540Ser (c.1619A>G), and p.Ile538Val (c.1612A>G) mutations and the achondroplasia mutation p.Glu380Arg (c.1138G>A; c.1138G>C).

Reference Sequence

NM_000142.4 The ‘A’ within the initiation codon, ATG, is designated as nucleotide number 1.

Sensitivity and Limitations

The sensitivity of this test is approximately 70%. The currently understanding of the genetics of hypochondroplasia predicts that a very small number of individuals with hypochondroplasia will have the condition due to a mutation in the FGFR3 gene that cannot be detected by this assay. The remaining individuals likely have hypochondroplasia due to mutations in genes that have not yet been identified.

Turnaround Time

Routine

8 weeks

Specimen Requirements

Blood: 4 mL EDTA is optimal (Minimum: 1 mL EDTA)
DNA: 100 μL at 200 ng/μL is optimal (Minimum: 30 μL at 200 ng/μL)

Label each sample with three patient identifiers; preferably patient name, PHN, and date of birth and ship to the address below. Samples should be shipped at room temperature with a completed MGL Requisition to arrive Monday to Friday (not on Canadian statutory holidays).  

Prenatal Specimens
Prenatal testing REQUIRES LABORATORY CONSULTATION PRIOR TO THE PROCEDURE and can only be ordered by a Medical Geneticist. Contact the laboratory at 604-875-2852 and choose the appropriate option for the Molecular Geneticist on service.
Chorionic Villi: 20 mg.
Direct Amniotic fluid: 25 mL collected in two separate tubes of equal volume.
Cultured Amniocytes: Two (2) 100% confluent T-25 flasks.
DNA extracted from prenatal specimens: 100 μL at 200 ng/μL is optimal (Minimum: 30 μL at 200 ng/μL)

Label each sample with three patient identifiers; preferably patient name, PHN, and date of birth. Ship samples by overnight courier with a completed MGL Requisition to arrive Monday to Friday (not on Canadian statutory holidays) as follows:

  • Villi – on wet ice or in media at room temperature
  • Amniocytes, Amniotic fluid, DNA – at room temperature

Shipping Address

Specimen Receiving Room 2J20

Children’s & Women’s Health Centre of British Columbia – Laboratory

4500 Oak Street, Vancouver, BC, V6H 3N1


Test Price and Billing

Testing is only available to residents of Canada, except in very specific circumstances where testing is urgent or emergent.  Payment is not required when requests are made for individuals who are insured by Health Insurance BC (administered through the BC Medical Services Plan (MSP)) AND eligible for testing according to the test utilization guidelines / policy. If the individual undergoing testing is not insured by these providers or does not meet utilization guidelines or policy, please complete a billing form; testing will only commence after receipt of billing informationTest prices can be found here.

Cautions

Molecular genetic testing is limited by the current understanding of the genome and the genetics of a particular disease, as well as by the method of detection used.

Rare single nucleotide variants or polymorphisms could lead to false-negative or false-positive results. If results obtained do not match the clinical findings, consult the on-service Molecular Geneticist.

A previous bone marrow transplant from an allogenic donor will result in molecular data that reflects the donor genotype rather than the recipient (patient) genotype. Consult the on-service Molecular Geneticist for approach to testing in such individuals.

Transfusions performed with packed red blood cells will generally not affect the outcome of molecular genetic testing. However, if there is no clinical urgency, the cautious approach is to wait one week post packed red cell transfusion before collecting a sample for genetic testing. Consult the on-service Molecular Geneticist as needed.

Test results should be interpreted in the context of clinical findings, family history, and other laboratory data. Errors in our interpretation of results may occur if information given is inaccurate or incomplete.

Categories
Conditions/Tests

Spinocerebellar Ataxia Type 2

Spinocerebellar Ataxia Panel

Machado-Joseph Disease; Olivopontocerebellar Atrophy (OPCA); Cerebelloparenchymal Disease; Menzel type OPCA; Schut-Haymaker type OPCA; Holguin Ataxia; Wadia-Swami Syndrome; Azorean Ataxia; Spinopontine Atrophy; Nigrospinodentatal Degeneration

It is the responsibility of the ordering physician to ensure that informed consent has been obtained from the patient/legal guardian before ordering genetic testing. Please review the following Pre-Test Counselling Information with your patient before requesting any of our genetic tests.

Clinical Features

The spinocerebellar ataxias (SCA) are characterized by slowly progressive gait ataxia, and are often associated with poor coordination of hands, speech, and eye movement.

Genetics

SCA type 1, 2, 3, 6, and 7 are autosomal dominant conditions caused by expansion of the CAG repeat in ATXN1, ATXN2, ATXN3, CACNA1A, and ATXN7 respectively. 

SCA alleles are classified based on size, and reported based on classification, as outlined below.  Exact repeat sizes are not reported:

SCA1 (ATXN1):

  • Normal: ≤38 repeats or 39-44 interrupted repeats
  • Full Penetrance (pathogenic): 39-44 uninterrupted repeats or ≥45 repeats

SCA2 (ATXN2)

  • Normal: ≤31 repeats
  • Uncertain: 32-34 repeats
  • Full Penetrance (pathogenic): ≥35 repeats

SCA3 (ATXN3)

  • Normal: ≤44 repeats
  • Uncertain: 45-~59 repeats*
  • Full Penetrance (pathogenic): ≥~60 repeats*

           *The repeat size of the smallest full penetrance pathogenic allele is not well-defined.

SCA6 (CACNA1A)

  • Normal: ≤18 repeats
  • Uncertain: 19 repeats
  • Full Penetrance (pathogenic): ≥20 repeats

SCA7 (ATXN7)

  • Normal: ≤33 repeats
  • Uncertain: 34-36 repeats
  • Full Penetrance (pathogenic): ≥37 repeats

Alleles in the uncertain category are rare and as such their clinical significance has not been well established.  This category includes alleles that may be associated with either mild/late-onset symptoms or with reduced penetrance.

Indications for Testing

  1. Confirmation of diagnosis:
    1. In individuals with clinical features suggestive of SCA1, 2, 3, 6 or 7.
  2. Prenatal testing (prenatal diagnosis requests are not normally accepted from physicians other than Medical Geneticists; technically feasible, but not routinely performed – contact MGL to discuss):
    1. Pregnancies at risk of being affected with one of these ataxias
  3. Presymptomatic testing:
    1. Adults at risk to develop one of these ataxias due to a molecularly confirmed family history. Predictive testing will only be performed following genetic counselling by a recognized genetic service.

Description of this Assay

Sizing of the CAG repeats associated with each gene is carried out on an ABI genetic analyzer following fluorescence-based PCR amplification.  Digestion with SfaN1 is performed on SCA1 alleles between 39 – 44 repeats to differentiate between interrupted (normal) and uninterrupted (pathogenic) repeats.  Alleles ≤44 CAG repeats that are interrupted by CAT repeats are normal, whereas alleles with 39-44 uninterrupted CAG repeats are considered fully penetrant (pathogenic).  As required, triplet-primed (tp) PCR is performed for SCA2 and SCA7.

Sensitivity and Limitations

The accuracy of sizing of alleles on an ABI genetic analyzer is approximately +/- 1 repeat in the normal range; however, the accuracy of sizing with PCR amplification decreases as the allele increases in repeat number.  For juvenile patients (<10 years old), as required, tp-PCR is performed to assess for the presence of large SCA2/SCA7 expanded alleles refractory to standard PCR amplification; tp-PCR is otherwise not performed/indicated except on request after discussion with a clinical Molecular Geneticist, or if the age of onset is indicated as juvenile/infant on the test requisition.  Approximately 100% of individuals with SCA1/SCA2/SCA3/SCA6/SCA7 will have an expanded CAG repeat.  The sensitivity of detection for the CAG repeat expansion is approximately 100%.

Turnaround Time

Routine

6 weeks

Specimen Requirements

Blood: 4 mL EDTA is optimal (Minimum: 1 mL EDTA)
DNA: 100 μL at 200 ng/μL is optimal (Minimum: 30 μL at 200 ng/μL)

Label each sample with three patient identifiers; preferably patient name, PHN, and date of birth and ship to the address below. Samples should be shipped at room temperature with a completed MGL Requisition to arrive Monday to Friday (not on Canadian statutory holidays). 

Test Price and Billing

Testing is only available to residents of Canada, except in very specific circumstances where testing is urgent or emergent.  Payment is not required when requests are made for individuals who are insured by Health Insurance BC (administered through the BC Medical Services Plan (MSP)) AND eligible for testing according to the test utilization guidelines / policy. If the individual undergoing testing is not insured by these providers or does not meet utilization guidelines or policy, please complete a billing form; testing will only commence after receipt of billing informationTest prices can be found here.

Cautions

Molecular genetic testing is limited by the current understanding of the genome and the genetics of a particular disease, as well as by the method of detection used. This method will not detect all mutations (e.g., point mutations in the coding region of the gene, large genomic deletions, promoter mutations, regulatory element mutations). For some trinucleotide repeat disorders, repeat expansions have been described that cannot be amplified by PCR. Consideration should be given to this particularly in cases with severe clinical features or early onset; consult the on-service Molecular Geneticist to discuss specific repeat disorders.

For carrier/predictive testing due to family history, it is generally important to first document the gene mutation in an affected or carrier family member. This information should be provided to the laboratory for assessment of whether the assay is appropriate for detection of the familial mutation, and to aid in the interpretation of data.

In some cases, DNA alterations of undetermined or unclear clinical significance may be identified.

In certain scenarios of repeat size mosaicism, false negative results may occur. If results obtained do not match the clinical findings, consult the on-service Molecular Geneticist.

Rare single nucleotide variants or polymorphisms could lead to false-negative or false-positive results. If results obtained do not match the clinical findings, consult the on-service Molecular Geneticist.

A previous bone marrow transplant from an allogenic donor will result in molecular data that reflects the donor genotype rather than the recipient (patient) genotype. Consult the on-service Molecular Geneticist for approach to testing in such individuals.

Transfusions performed with packed red blood cells will generally not affect the outcome of molecular genetic testing. However, if there is no clinical urgency, the cautious approach is to wait one week post packed red cell transfusion before collecting a sample for genetic testing. Consult the on-service Molecular Geneticist as needed.

Test results should be interpreted in the context of clinical findings, family history, and other laboratory data. Errors in our interpretation of results may occur if information given is inaccurate or incomplete.

Categories
Conditions/Tests

Achondroplasia

Achondroplasia

It is the responsibility of the ordering physician to ensure that informed consent has been obtained from the patient/legal guardian before ordering genetic testing. Please review the following Pre-Test Counselling Information with your patient before requesting any of our genetic tests.

Clinical Features

Achondroplasia is the most common form of inherited disproportionate short stature, with a prevalence of approximately 1/15,000 to 1/40,000 births. It is characterized by arms and legs that are disproportionately short compared to the trunk. Also characteristic are a large head, frontal bossing, and midface hypoplasia.

Genetics

Achondroplasia is caused by mutations in the FGFR3 gene, which encodes fibroblast growth factor receptor 3, a negative regulator of bone growth. Inheritance is autosomal dominant, though more than 80% of cases are the result of de novo mutations (i.e., both parents are of normal stature). The missense substitution c.1138G>A (p.Gly380Arg) accounts for more than 98% of mutant FGFR3 alleles in achondroplasia, with c.1138G>C (p.Gly380Arg) accounting for another 1%.

Indications for Testing

  1. Confirmation of diagnosis:
    1. In individuals with clinical features suggestive of achondroplasia.
  2. Prenatal testing (prenatal diagnosis requests are not normally accepted from physicians other than Medical Geneticists):
    1. In pregnancies born to a couple in which one or both parents has achondroplasia
    2. In pregnancies where ultrasound findings are suggestive of achondroplasia

Description of this Assay

Bidirectional Sanger sequencing of the FGFR3 coding region containing codon 380 is carried out to identify the 2 most common mutations in achondroplasia, which account for over 99% of cases.

Reference Sequence

NM_000142.4 The `A` within the initiation codon, ATG, is designated as nucleotide number 1.

Sensitivity and Limitations

A very small fraction of individuals with achondroplasia will have the condition due to a mutation in the FGFR3 gene that cannot be detected by this assay. Therefore, a negative result does not absolutely exclude a diagnosis of achondroplasia.

Turnaround Time

Routine

8 weeks

Pregnancy-related/Prenatal

If pregnancy management will be altered, 3 weeks; otherwise, routine TAT.

Specimen Requirements

Blood: 4 mL EDTA is optimal (Minimum: 1 mL EDTA)
DNA: 100 μL at 200 ng/μL is optimal (Minimum: 30 μL at 200 ng/μL)

Label each sample with three patient identifiers; preferably patient name, PHN, and date of birth and ship to the address below. Samples should be shipped at room temperature with a completed MGL Requisition to arrive Monday to Friday (not on Canadian statutory holidays).  

Prenatal Specimens
Prenatal testing REQUIRES LABORATORY CONSULTATION PRIOR TO THE PROCEDURE and can only be ordered by a Medical Geneticist. Contact the laboratory at 604-875-2852 and choose the appropriate option for the Molecular Geneticist on service.
Chorionic Villi: 20 mg.
Direct Amniotic fluid: 25 mL collected in two separate tubes of equal volume.
Cultured Amniocytes: Two (2) 100% confluent T-25 flasks.
DNA extracted from prenatal specimens: 100 μL at 200 ng/μL is optimal (Minimum: 30 μL at 200 ng/μL)

Label each sample with three patient identifiers; preferably patient name, PHN, and date of birth. Ship samples by overnight courier with a completed MGL Requisition to arrive Monday to Friday (not on Canadian statutory holidays) as follows:

  • Villi – on wet ice or in media at room temperature
  • Amniocytes, Amniotic fluid, DNA – at room temperature

Shipping Address

Specimen Receiving Room 2J20

Children’s & Women’s Health Centre of British Columbia – Laboratory

4500 Oak Street, Vancouver, BC, V6H 3N1


Test Price and Billing

Testing is only available to residents of Canada, except in very specific circumstances where testing is urgent or emergent.  Payment is not required when requests are made for individuals who are insured by Health Insurance BC (administered through the BC Medical Services Plan (MSP)) AND eligible for testing according to the test utilization guidelines / policy. If the individual undergoing testing is not insured by these providers or does not meet utilization guidelines or policy, please complete a billing form; testing will only commence after receipt of billing informationTest prices can be found here.

Cautions

Molecular genetic testing is limited by the current understanding of the genome and the genetics of a particular disease, as well as by the method of detection used. This method will not detect all mutations (e.g., mutations outside the regions tested as described above, large genomic deletions, promoter mutations, regulatory element mutations).

For carrier/predictive testing due to family history, it is generally important to first document the gene mutation in an affected or carrier family member. This information should be provided to the laboratory for assessment of whether the assay is appropriate for detection of the familial mutation, and to aid in the interpretation of data.

In rare cases, DNA alterations of undetermined or unclear clinical significance may be identified.

Rare single nucleotide variants or polymorphisms could lead to false-negative results. If results obtained do not match the clinical findings, consult the on-service Molecular Geneticist.

A previous bone marrow transplant from an allogenic donor will result in molecular data that reflects the donor genotype rather than the recipient (patient) genotype. Consult the on-service Molecular Geneticist for approach to testing in such individuals.

Transfusions performed with packed red blood cells will generally not affect the outcome of molecular genetic testing. However, if there is no clinical urgency, the cautious approach is to wait one week post packed red cell transfusion before collecting a sample for genetic testing. Consult the on-service Molecular Geneticist as needed.

Test results should be interpreted in the context of clinical findings, family history, and other laboratory data. Errors in our interpretation of results may occur if information given is inaccurate or incomplete.

Categories
Conditions/Tests

Familial Dysautonomia

Ashkenazi Jewish Carrier Screening

It is the responsibility of the ordering physician to ensure that informed consent has been obtained from the patient/legal guardian before ordering genetic testing. Please review the following Pre-Test Counselling Information with your patient before requesting any of our genetic tests.

Clinical Features

Tay-Sachs disease: A progressive neurodegenerative disorder caused by intralysosomal storage of the specific glycosphingolipid GM2 ganglioside. Affected individuals generally die before the age of 4 years. The carrier frequency of this disorder in the Ashkenazi Jewish population is 1/30.

Fanconi anemia type C: A condition characterized by congenital anomalies, aplastic anemia and an increased risk of malignancies. The carrier frequency of this disorder in the Ashkenazi Jewish population is 1/90.

Canavan disease: Characterized by macrocephaly, lack of head control, developmental delays by the age of three to five months, severe hypotonia, and failure to achieve independent sitting, ambulation, or speech. Affected individuals generally live into their teens. The carrier frequency of this disorder in the Ashkenazi Jewish population is 1/40.

Familial dysautonomia: Characterized by gastrointestinal dysfunction, vomiting crises, recurrent pneumonia, altered sensitivity to pain and temperature perception, and cardiovascular instability. The carrier frequency of this disorder in the Ashkenazi Jewish population is 1/30.

Genetics

All of these conditions have an autosomal recessive inheritance pattern. These conditions have an increased incidence in the Ashkenazi Jewish population, relative to other populations, due to founder mutations. 

 

GENE

Reference #

Mutation

Historical Nomenclature

Mutation

HGVS Nomenclature

HEXA NM_000520.4

 

1278insTATC c.1274_1277dupTATC (p.Tyr427IlefsTer5)
G269S c.805G>A (p.Gly269Ser)
IVS12+1G>C c.1421+1G>C
IKBKAP NM_003640.3 R696P c.2087G>C (p.Arg696Pro)
2507+6T>C c.2204+6T>C
ASPA NM_000049.2 693C>A c.693C>A (p.Tyr231Ter)
854A>C c.854A>C (p.Glu285Ala)
FANCC NM_000136.2 IVS4+4A>T c.456+4A>T

 

 

In patients of Ashkenazi Jewish ancestry, these mutations account for 98% of Canavan disease alleles; over 99% of Familial dysautonomia alleles; greater than 90% of Fanconi anemia alleles; and 95% of Tay-Sachs disease alleles.

Indications for Testing

A completed AJ Carrier & Tay Sachs Enzyme Screening Supplemental Info Form must be received before testing will proceed.

  1. Carrier testing:
    1. BOTH members of the couple MUST BE or MAY BE of Ashkenazi Jewish ancestry.  If the couple is NOT pregnant, testing should be sequential (a negative result in one member sufficiently reduces the risk such that additional testing is unnecessary).

NOTE: All four conditions are tested and reported; individual tests cannot be requested.  If a couple wishes Tay-Sachs screening only, see AJ Carrier & Tay Sach Enzyme Screening Algorithm.  

Contraindications

  1. This test is not indicated for:
    1. Individuals of Ashkenazi Jewish ancestry whose partner is non-Ashkenazi (non-Jewish or Sephardi) (i.e. mixed couples). 
    2. Individuals of Sephardi Jewish or French Canadian ancestry seeking carrier screening for Tay-Sachs disease. 

See AJ Carrier & Tay Sachs Enzyme Screening Algorithm and the SOGC/CCMG Clinical Practice Guideline for further details.

     2. This test is not indicated for children who have not yet reached reproductive age.

     3. This test cannot distinguish homozygotes from heterozygotes and so is not generally useful for diagnostic testing or prenatal diagnosis; consult the on-service Molecular Geneticist. 

Description of this Assay

The Elucigene Ashplex 1 Assay (Gen-Probe, Inc) is used to assess the c.1274_1277dup, c.805G>A and c.1421+1G>C mutations in the HEXA gene; the c.693C>A and c.854A>C mutations in the ASPA gene; the c.2087G>C and the c.2204+6T>C mutations in the IKBKAP gene; and the c.456+4A>T mutation in the FANCC gene. The normal sequence is not assessed; detection of a mutation in the context of carrier screening is interpreted as heterozygosity for the mutation. Individual mutations/conditions can not be independently tested.

Sensitivity and Limitations

This test is designed to detect carrier status for the common Ashkenazi founder mutations in these 4 genes only. Mutations other than those analyzed exist and are not detected by this assay. This test cannot distinguish between heterozygous carriers and homozygous affected individuals and so should not be used to confirm a clinical diagnosis of any of these conditions.

Turnaround Time

Routine

6 weeks

Pregnancy-related/Prenatal

If pregnancy management will be altered, 3 weeks; otherwise, routine TAT.

Specimen Requirements

Blood: 4 mL EDTA is optimal (Minimum: 1 mL EDTA)
DNA: 100 μL at 200 ng/μL is optimal (Minimum: 30 μL at 200 ng/μL)

Label each sample with three patient identifiers; preferably patient name, PHN, and date of birth and ship to the address below. Samples should be shipped at room temperature with a completed MGL Requisition to arrive Monday to Friday (not on Canadian statutory holidays). 

Additional Requirements

A completed AJ Carrier & Tay Sachs Enzyme Screening Supplemental Info Form MUST accompany the requisition.

Test Price and Billing

Testing is only available to residents of Canada, except in very specific circumstances where testing is urgent or emergent.  Payment is not required when requests are made for individuals who are insured by Health Insurance BC (administered through the BC Medical Services Plan (MSP)) AND eligible for testing according to the test utilization guidelines / policy. If the individual undergoing testing is not insured by these providers or does not meet utilization guidelines or policy, please complete a billing form; testing will only commence after receipt of billing informationTest prices can be found here.

Cautions

Molecular genetic testing is limited by the current understanding of the genome and the genetics of a particular disease, as well as by the method of detection used. This method will not detect all mutations (e.g., mutations outside the regions tested as described above, large genomic deletions, promoter mutations, regulatory element mutations).

For carrier/predictive testing due to family history, it is generally important to first document the gene mutation in an affected or carrier family member. This information should be provided to the laboratory for assessment of whether the assay is appropriate for detection of the familial mutation, and to aid in the interpretation of data.

In rare cases, DNA alterations of undetermined or unclear clinical significance may be identified.

Rare single nucleotide variants or polymorphisms could lead to false-negative results. If results obtained do not match the clinical findings, consult the on-service Molecular Geneticist.

A previous bone marrow transplant from an allogenic donor will result in molecular data that reflects the donor genotype rather than the recipient (patient) genotype. Consult the on-service Molecular Geneticist for approach to testing in such individuals.

Transfusions performed with packed red blood cells will generally not affect the outcome of molecular genetic testing. However, if there is no clinical urgency, the cautious approach is to wait one week post packed red cell transfusion before collecting a sample for genetic testing. Consult the on-service Molecular Geneticist as needed.

Test results should be interpreted in the context of clinical findings, family history, and other laboratory data. Errors in our interpretation of results may occur if information given is inaccurate or incomplete.