Biopsy in cardiac amyloidosis remains an important diagnostic tool even though many patients with transthyretin cardiac amyloidosis (ATTR-CM) can now be diagnosed without cardiac tissue sampling. Biopsy provides direct evidence of amyloid deposition and, crucially, allows the amyloid precursor protein to be identified (1, 2).
The histologic hallmark of amyloidosis is extracellular deposition of amyloid fibrils that bind Congo red and demonstrate characteristic birefringence under polarized light. However, identifying amyloid deposits is only the first step. Clinicians must also determine whether the deposits are composed of immunoglobulin light chains, transthyretin, serum amyloid A, or another amyloidogenic protein (1, 2).
This distinction is critical because the major forms of cardiac amyloidosis require completely different treatments. Therefore, a biopsy report stating only that “amyloid is present” is incomplete when the precursor protein has not been identified.
Modern imaging has substantially reduced the need for endomyocardial biopsy in ATTR-CM. In appropriately selected patients, Grade 2 or Grade 3 myocardial uptake on bone scintigraphy together with a negative monoclonal protein screen can establish ATTR-CM without tissue biopsy (1, 2).
However, biopsy remains essential when the non-invasive diagnostic pathway cannot confidently establish the amyloid type.
Biopsy may be required when:
The ACC specifically identifies endomyocardial biopsy as appropriate when clinical suspicion remains high despite negative or equivocal scintigraphy, when a monoclonal protein is present and cardiac amyloidosis remains suspected, or when cardiac scintigraphy is unavailable (1).

Figure 1. When Is Biopsy Needed in Suspected Cardiac Amyloidosis? Initial evaluation combines monoclonal protein testing with bone scintigraphy. In appropriately selected patients with grade 2–3 cardiac uptake and no evidence of a monoclonal protein, ATTR-CM may be diagnosed non-invasively. Biopsy is generally required when a monoclonal protein is detected or when imaging and clinical findings are equivocal or discordant. When tissue is obtained, Congo red staining confirms amyloid deposition, followed by accurate amyloid typing to establish the amyloid type.
Amyloid can be demonstrated in the affected organ or in a surrogate tissue site. The optimal biopsy site depends on the suspected amyloid type, organs involved, local expertise, and the balance between diagnostic yield and procedural risk.
Common biopsy sites include:
Biopsy of an involved organ generally provides a higher diagnostic yield than biopsy of a surrogate site. However, it may also carry greater procedural risk.
Endomyocardial biopsy directly samples myocardial tissue and remains the definitive invasive method for confirming cardiac amyloid deposition.
According to the ESC, cardiac amyloidosis is definitively confirmed when amyloid deposits are identified in endomyocardial tissue by Congo red staining, irrespective of the degree of ventricular wall thickness (2).
The procedure is usually performed through venous access, commonly from the right side of the heart, with small myocardial tissue samples obtained from the interventricular septum.
Endomyocardial biopsy is particularly valuable when the heart is the dominant affected organ and extracardiac biopsy does not establish the diagnosis.
Abdominal fat sampling is attractive because it is minimally invasive and can often be performed in an outpatient setting. Amyloid may be demonstrated within small vessels and connective tissue in subcutaneous fat.
However, diagnostic sensitivity differs substantially according to amyloid type. The ACC reports approximate sensitivities of 84% for AL cardiac amyloidosis, 45% for ATTRv-CM, and only 15% for ATTRwt-CM (1).
Therefore, a positive fat pad biopsy is useful, but a negative result does not exclude cardiac amyloidosis.
Bone marrow biopsy plays a different but complementary role in suspected AL amyloidosis. It assesses the underlying plasma-cell or B-cell clone responsible for producing the amyloidogenic immunoglobulin light chain.
Amyloid deposits may also be identified directly in the bone marrow. However, the ACC reports that the sensitivity of detecting amyloid deposits in bone marrow in systemic AL amyloidosis is approximately 69% (1).
Consequently, a bone marrow biopsy may establish the clonal plasma-cell disorder even when amyloid itself is not identified in that sample.
When AL amyloidosis is suspected, bone marrow evaluation can also help distinguish AL associated with a small plasma-cell clone from multiple myeloma or less-common B-cell lymphoproliferative disorders (1).
If a less-invasive surrogate biopsy is negative but clinical suspicion remains high, biopsy of an affected organ may provide the highest diagnostic yield.
Renal biopsy may be appropriate in patients with significant proteinuria, nephrotic syndrome, or unexplained renal dysfunction when renal amyloidosis is suspected. Kidney biopsy can demonstrate both the presence and distribution of amyloid within glomeruli, vessels, and interstitial structures.
Endoscopic biopsy can demonstrate gastrointestinal amyloid deposition, particularly when patients have compatible gastrointestinal symptoms. The ACC notes that Congo red staining should be specifically requested because amyloid may otherwise be missed on routine histology (1).
Minor salivary gland, liver, nerve, skin, or other clinically affected tissues may also be sampled in selected patients. The choice should be guided by the suspected amyloid type, clinical manifestations, procedural safety, and local expertise.
The classic histologic method for identifying amyloid is Congo red staining.
Amyloid fibrils bind Congo red because of their characteristic beta-sheet structure. Under ordinary light microscopy, amyloid deposits appear red or salmon-colored. When viewed under polarized light, Congo red-positive deposits demonstrate characteristic birefringence (2).
This property remains a cornerstone of pathologic diagnosis.

Figure 2. Endomyocardial Biopsy in Cardiac Amyloidosis. Endomyocardial biopsy involves advancing a biopsy catheter through the venous system into the right ventricle to obtain small myocardial tissue samples. Histological examination with Congo red staining can confirm amyloid deposition, while subsequent amyloid typing, preferably using mass spectrometry where available, identifies the amyloid protein and guides appropriate treatment.
Congo red staining answers one question:
It does not answer the equally important second question:
Accurate typing distinguishes AL, ATTR, AA, and less-common amyloid types. This distinction directly determines treatment.
For example, a patient with ATTR-CM and coincidental monoclonal gammopathy of undetermined significance (MGUS) could easily be misclassified as having AL amyloidosis if clinicians assume that the monoclonal protein explains the tissue deposits.
Therefore, amyloid typing is essential whenever the precursor protein is uncertain (1).
Mass spectrometry-based proteomic analysis is considered the gold standard for tissue amyloid typing (1).
The technique commonly uses liquid chromatography with tandem mass spectrometry (LC-MS/MS). Amyloid-containing tissue is analyzed to identify the proteins contained within the deposits.
The ACC reports a sensitivity of approximately 88% and specificity of approximately 96% for mass spectrometry-based tissue diagnosis (1).
Although LC-MS/MS is not available in every hospital, Congo red-positive tissue blocks can often be transferred to an experienced reference laboratory for analysis.
Experienced pathology laboratories may also use immunohistochemistry or immunogold immunoelectron microscopy to identify amyloid precursor proteins.
However, interpretation can be technically challenging. Therefore, mass spectrometry is preferred when available, particularly when the clinical picture and immunostaining results are discordant.

Figure 3. From Tissue Biopsy to Amyloid Typing. Tissue biopsy can confirm amyloid deposition using Congo red staining, with characteristic birefringence under polarized light. Once amyloid is demonstrated, accurate typing is essential to identify the precursor protein and distinguish AL, ATTR, AA, and other amyloid types. Proteomic analysis using liquid chromatography–tandem mass spectrometry (LC-MS/MS) is a highly reliable method for amyloid typing and helps establish the correct diagnosis and guide disease-specific treatment.
Unlike the validated non-biopsy pathway available for ATTR-CM, diagnosis of AL amyloidosis generally requires tissue evidence of amyloid together with demonstration of the underlying clonal plasma-cell or B-cell disorder (1).
A common practical strategy is to begin with less-invasive sampling, such as abdominal fat aspiration and bone marrow biopsy. If these specimens are negative but clinical suspicion remains strong, biopsy of the clinically involved organ should be pursued.
When cardiac involvement is dominant and surrogate biopsy is unrevealing, endomyocardial biopsy may be necessary.
Many patients with ATTR-CM do not need a biopsy because contemporary bone scintigraphy can establish the diagnosis non-invasively when appropriate criteria are satisfied.
However, biopsy should still be considered when:
Not necessarily.
The diagnostic significance of a negative biopsy depends heavily on the tissue sampled. Surrogate sites such as abdominal fat have imperfect sensitivity, particularly in ATTR-CM (1).
Sampling error, limited tissue, early disease, and technical issues in tissue preparation can also reduce diagnostic yield.
Therefore, when clinical suspicion remains high after a negative surrogate biopsy, clinicians should reconsider the biopsy site and may need to sample the affected organ.
Fat pad biopsy is much less sensitive for ATTRwt-CM than for AL amyloidosis. A negative result therefore cannot reliably exclude cardiac amyloidosis.
Congo red positivity confirms amyloid but does not determine whether the deposits are AL, ATTR, AA, or another type.
MGUS is common in older adults and can coexist with ATTR. Therefore, tissue typing is particularly important when a monoclonal protein is present.
The expected sensitivity of the chosen tissue should be considered before interpreting a negative biopsy. When suspicion remains high, sampling an affected organ may be necessary.
Reliable histopathology and amyloid typing are essential components of an effective cardiac amyloidosis diagnostic pathway in Africa.
Access to Congo red staining may be more widely available than access to advanced proteomic typing. However, confirming amyloid without identifying the precursor protein can leave clinicians unable to select the correct treatment.
Priorities include:
Where local mass spectrometry is unavailable, establishing systems for transferring paraffin-embedded tissue to experienced reference laboratories may provide a practical pathway to definitive amyloid typing.
When considering biopsy in suspected amyloidosis, ask:
Biopsy remains a fundamental component of amyloidosis diagnosis despite the development of highly effective non-invasive imaging pathways. Its role is particularly important in suspected AL amyloidosis, equivocal or discordant cardiac imaging, abnormal monoclonal protein testing, and situations in which the amyloid precursor protein remains uncertain.
The diagnostic process does not end when Congo red confirms amyloid. Accurate typing of the deposits is essential because AL, ATTR, AA, and other forms of amyloidosis require fundamentally different treatment strategies.
The practical principle is straightforward: choose the biopsy site carefully, confirm amyloid with appropriate histology, and always determine the precursor protein before assigning the final amyloid subtype.
This article provides educational and informational content only and does not replace individualized medical advice, pathology review, specialist consultation, or locally applicable diagnostic protocols. The choice of biopsy site and method of amyloid typing should reflect the patient’s clinical presentation, suspected amyloid subtype, procedural risk, and available expertise.
We advance cardiac amyloidosis care across Africa through collaboration, training, and research. Join us to change the future of heart health and empower local clinicians with knowledge and tools.
Leave a Reply