Genetic testing in transthyretin cardiac amyloidosis is essential for distinguishing hereditary transthyretin amyloidosis (ATTRv) from wild-type transthyretin amyloidosis (ATTRwt). Once ATTR amyloidosis has been established, identifying whether a pathogenic or likely pathogenic variant is present in the TTR gene has implications not only for the patient but also for biological relatives (1, 2).
Hereditary ATTR amyloidosis is caused by disease-associated variants in the TTR gene. These variants destabilize the transthyretin protein and increase its tendency to misfold and form amyloid fibrils. Depending on the variant, affected individuals may develop predominantly cardiomyopathy, predominantly polyneuropathy, or a mixed cardiac and neurologic phenotype (2).
Importantly, the absence of a known family history does not exclude hereditary ATTR amyloidosis. Age-dependent penetrance, incomplete recognition in previous generations, small family size, and variable clinical expression can all obscure an inherited pattern (2).
The TTR gene provides instructions for producing transthyretin, a transport protein synthesized mainly in the liver. Transthyretin circulates as a tetramer and transports thyroxine and retinol-binding protein.
In ATTR amyloidosis, transthyretin tetramers become unstable, dissociate into monomers, misfold, and aggregate into amyloid fibrils. These fibrils can deposit in the heart, peripheral nerves, autonomic nervous system, and other tissues.
In hereditary ATTR amyloidosis, a pathogenic or likely pathogenic TTR variant increases this tendency toward protein instability and amyloid formation (2).
ATTRv occurs when an individual carries a pathogenic or likely pathogenic variant in the TTR gene. The phenotype can vary considerably between variants and even among members of the same family.
Some individuals develop predominantly cardiac disease, while others develop peripheral and autonomic neuropathy. Many patients have a mixed phenotype (2).
ATTRwt occurs when structurally normal transthyretin becomes unstable and forms amyloid with increasing age. Patients with ATTRwt do not have a disease-causing TTR variant.
Therefore, genetic testing distinguishes the two forms:
The ACC recommends genetic testing in individuals with clinical evidence supporting a TTR-related phenotype (1).
In clinical practice, genetic testing is particularly important in:
Because hereditary disease can present late in life, advanced age should not automatically be used to exclude genetic testing.

Figure 1. Genetic Testing Pathway in Transthyretin Cardiac Amyloidosis. Following confirmation of ATTR cardiac amyloidosis, TTR genetic testing is used to distinguish hereditary ATTR (ATTRv) from wild-type ATTR (ATTRwt). Identification of a pathogenic or likely pathogenic TTR variant establishes ATTRv and has important implications for genetic counseling, cascade testing of at-risk relatives, and surveillance of variant carriers.
Genetic testing usually analyzes DNA obtained from a blood or saliva sample. The laboratory then examines the TTR gene for sequence variants.
For a patient with an established ATTR phenotype, sequence analysis of the TTR gene is generally the most direct test. Sequence analysis detects the types of pathogenic variants responsible for ATTRv, including missense, nonsense, splice-site, and small insertion or deletion variants (2).
GeneReviews reports that sequence analysis identifies all known disease-causing TTR sequence variants essentially, whereas large deletions or duplications are not recognized as an important mechanism of hereditary ATTR amyloidosis (2).
When the phenotype already strongly supports ATTR amyloidosis, testing the TTR gene directly is often appropriate. This focused approach reduces the likelihood of identifying unrelated variants that may complicate interpretation.
A broader gene panel may be appropriate when the phenotype is uncertain or when another inherited cardiomyopathy or neuropathy remains in the differential diagnosis.
If a multigene panel is used to investigate suspected ATTR, clinicians should confirm that TTR is included. The ACC also recommends using phenotype-focused panels where possible to reduce unnecessary variants of uncertain significance (1).
Clinical genetic laboratories generally classify sequence variants according to standardized categories:
When an individual with ATTR amyloidosis has a pathogenic or likely pathogenic TTR variant, the diagnosis is classified as hereditary ATTR amyloidosis (ATTRv) (2).
A variant of uncertain significance (VUS) means that available evidence is currently insufficient to determine whether the variant causes disease.
A VUS should not be treated as equivalent to a pathogenic variant. Importantly, the ACC states that variants of uncertain significance should not be used for cascade testing of relatives (1).
Hereditary ATTR amyloidosis follows an autosomal dominant inheritance pattern (2).
This means that an individual who carries one pathogenic TTR variant can pass that variant to either sons or daughters.
However, inheriting a pathogenic variant does not necessarily mean that a person will develop clinically apparent amyloidosis at the same age, with the same organ involvement, or with the same severity as another family member. This phenomenon reflects variable penetrance and variable expression (1, 2).

Figure 2. Autosomal Dominant Inheritance in Hereditary ATTR Amyloidosis. A pathogenic TTR variant is inherited in an autosomal dominant pattern, meaning each child of a variant carrier has a 50% (1 in 2) chance of inheriting the variant. Not all carriers develop clinical disease because penetrance varies according to the specific TTR variant, age, and family background. Identification of a pathogenic variant therefore has implications for genetic counseling, cascade testing of at-risk relatives, and individualized surveillance of carriers.
When a pathogenic or likely pathogenic TTR variant is identified in an affected individual, clinicians can offer cascade genetic testing to at-risk relatives (1, 2).
Instead of sequencing many genes again, relatives can usually undergo targeted testing for the specific familial variant already identified in the proband.
First-degree relatives include:
The ACC recommends considering cascade testing in at-risk first-degree relatives when a pathogenic or likely pathogenic variant has been identified (1).
Genetic testing can have medical, psychological, reproductive, and family implications. Therefore, testing should ideally be accompanied by appropriate genetic counseling.
Genetic counseling can help patients and families understand:
An individual who carries a pathogenic TTR variant but does not yet have clinical evidence of amyloidosis is often referred to as an asymptomatic carrier or pre-symptomatic carrier.
A positive genetic result does not necessarily mean that amyloid deposition or organ dysfunction is already present. Instead, it identifies an individual at increased lifetime risk who may benefit from structured surveillance.
Surveillance may include:
The timing and intensity of surveillance should consider the specific variant, expected age of onset, phenotype within the family, and individual clinical circumstances (1, 2).
Many pathogenic TTR variants have been described. Different variants are associated with different ages of onset and different combinations of cardiac and neurologic disease.
The p.Val142Ile variant, historically known as Val122Ile, is particularly important in populations of African ancestry. It is strongly associated with a predominantly cardiac phenotype that generally becomes clinically apparent later in adulthood (3).
Large studies suggest that approximately 3%–3.5% of people of African descent in well-powered cohorts carry this variant, although prevalence varies geographically (3).
The p.Val50Met variant, historically known as Val30Met, is one of the best characterized hereditary ATTR variants. It has been associated particularly with peripheral and autonomic neuropathy, although cardiac involvement can also occur (2).
Genetic testing has particular relevance for cardiac amyloidosis in Africa because the p.Val142Ile TTR variant has important ancestral origins in West Africa and remains strongly associated with populations of African descent (3, 4).
Available studies suggest that the variant is especially prevalent in parts of West Africa. However, genetic data from many African populations remain limited, and substantial geographic gaps remain (4).
Important priorities include:
Improved access to genetic testing could therefore support earlier diagnosis while also helping define the currently under-characterized genetic landscape of ATTR amyloidosis across Africa.
A genetic result must always be interpreted in the clinical context.
Genetic testing alone cannot reliably determine:
Therefore, genetic information should complement rather than replace careful clinical assessment and disease surveillance.
Hereditary ATTR may present late in life. Therefore, advanced age does not reliably distinguish ATTRwt from ATTRv.
A negative or unknown family history does not exclude hereditary disease. Variable penetrance and late onset can leave multiple generations undiagnosed.
A VUS should not be considered equivalent to a pathogenic or likely pathogenic variant and should not be used for predictive testing in relatives.
Predictive genetic testing has consequences that extend beyond the laboratory result. At-risk relatives should understand the implications of both positive and negative results before testing whenever possible.
When evaluating a patient with ATTR amyloidosis, ask:
Genetic testing is an essential component of modern transthyretin amyloidosis care. Once ATTR amyloidosis has been established, sequencing the TTR gene allows clinicians to distinguish hereditary ATTR from wild-type disease and determines whether biological relatives may also be at risk.
However, genetic results require careful interpretation. Pathogenic and likely pathogenic variants can guide clinical and family management, whereas variants of uncertain significance should not be treated as disease-causing. Genetic counseling and structured follow-up are therefore integral to the process.
The practical principle is straightforward: confirm ATTR, determine whether a pathogenic TTR variant is present, and when hereditary disease is identified, extend appropriate counseling, testing, and surveillance to the family.
This article is intended for educational and informational purposes only and does not replace individualized medical advice or professional genetic counseling. Genetic testing and interpretation should consider the patient’s clinical phenotype, family history, laboratory methodology, variant classification, and applicable local ethical and legal requirements.
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