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An autosomal dominant tumor predisposition disorder caused by pathogenic variants in the SDHD gene, characterized by an increased risk of paraganglioma and pheochromocytoma, as well as an increased risk of renal cell carcinoma and gastrointestinal stromal tumors (GIST).
Features include common findings: Adrenal pheochromocytoma and Extraadrenal pheochromocytoma; and sometimes findings: Carotid paraganglioma and Paraganglioma of head and neck. 21 total HPO annotations.
Organ System | Phenotype Count | Example Features |
|---|---|---|
Brain and nerves | 3 | Cranial nerve paralysis, Recurrent paroxysmal headache, Episodic paroxysmal anxiety |
Heart and blood vessels | 2 | Hypertension associated with pheochromocytoma, Tachycardia |
Ears | 2 | Pulsatile tinnitus, Conductive hearing impairment |
Lab test results | 1 | Elevated circulating catecholamine level |
Hormones | 1 | Adrenal pheochromocytoma |
Skin | 1 | Excessive sweating (hyperhidrosis) |
In individuals with hereditary paraganglioma-pheochromocytoma (PGL/PCC) syndromes, tumors arise within the paraganglia – collections of neural crest cells distributed along the paravertebral axis from the base of the skull to the pelvis – as well as in some visceral locations. The 2022 World Health Organization (WHO) Classification of Endocrine Tumours classifies paragangliomas by location and (directly or indirectly) secretory status (adrenal paraganglioma [called pheochromocytoma], sympathetic abdominal paraganglioma, sympathetic head and neck paraganglioma, and parasympathetic paraganglioma) . Paragangliomas (paraganglion tumors) arise from neuroendocrine tissues (paraganglia) distributed along the paravertebral axis from their predominant location at the skull base to the pelvis.
Source: GeneReviews — "Hereditary Paraganglioma-Pheochromocytoma Syndromes"
SDHD function has not been fully characterized.
Pheochromocytoma/paraganglioma syndrome 1 is associated with mutations in the SDHD gene on chromosome 11.
Age-related penetrance. Penetrance estimates vary . Penetrance was initially believed to be quite high, but larger studies with less bias from probands suggest a much lower penetrance. No reliable penetrance data are currently available for MAX, SDHAF2, or TMEM127 pathogenic variants. Table 3. Estimated Penetrance for SDHx Pathogenic Variants
Gene | Penetrance of PGL/PCC | By Age | Reference(s) |
|---|---|---|---|
SDHA | 10% | 50% | 70 years |
SDHB | 21.8%-26.4% | 23.9%-57.6% | 60 years |
SDHC | 25%1 | Unknown | 60 years |
SDHD | 43.2% | Unknown | 60 years PCC = pheochromocytoma; PGL = paraganglioma 1. This estimate is higher than expected based on clinical experience. |
Source: GeneReviews — "Hereditary Paraganglioma-Pheochromocytoma Syndromes"
The Endocrine Society guidelines for pheochromocytoma and paraganglioma , American College of Medical Genetics guidelines for cancer predisposition , and North American Neuroendocrine Tumor Society guidelines for metastatic or unresectable pheochromocytoma and paraganglioma recommend that all individuals with paraganglioma or pheochromocytoma (PGL/PCC) be referred for molecular genetic testing to evaluate for a hereditary PGL/PCC syndrome.
A hereditary PGL/PCC syndrome should be suspected in any individual with a paraganglioma or pheochromocytoma, particularly individuals with the following findings [, , , ]:
Source: GeneReviews — "Hereditary Paraganglioma-Pheochromocytoma Syndromes"
The differential diagnosis of hereditary paraganglioma-pheochromocytoma (PGL/PCC) syndromes includes sporadic pheochromocytoma and sporadic paraganglioma or other syndromes that predispose to pheochromocytomas or paragangliomas. Sporadic pheochromocytoma. The incidence of all pheochromocytoma is ~0.6 in 100,000, and 75% are thought to be sporadic (not associated with hereditary predisposition). Sporadic paraganglioma. The incidence of sporadic paraganglioma is not known. It is believed to be less common than sporadic pheochromocytoma, but the association with hereditary predisposition is higher than for pheochromocytoma. Several genetic disorders associated with an increased risk of pheochromocytomas and/or paragangliomas have additional clinical features that are not seen in individuals with hereditary PGL/PCC syndromes. Table 5. Disorders to Consider in the Differential Diagnosis of Hereditary Paraganglioma-Pheochromocytoma Syndromes
Gene | Disorder | MOI | Typical Clinical Features of Disorder1 |
|---|---|---|---|
EPAS1 |
Genetic testing for SDHD is available. Testing is considered confirmatory for diagnosis.
Biomarker and diagnostic research for pheochromocytoma/paraganglioma syndrome 1 has been reported in the published literature.
No approved treatments are currently available for pheochromocytoma/paraganglioma syndrome 1. The disease remains an area of unmet medical need.
Gene therapy approaches for pheochromocytoma/paraganglioma syndrome 1 have been reported in the published literature.
Clinical practice guidelines for the management of individuals with hereditary paraganglioma-pheochromocytoma (PGL/PCC) syndromes due to SDHx pathogenic variants have been published [, , , ].
To establish the extent of disease and needs in an individual diagnosed with a hereditary PGL/PCC syndrome, the evaluations summarized (if not performed as part of the evaluation that led to the diagnosis) are recommended.
Table 6.
Hereditary Paraganglioma-Pheochromocytoma Syndromes: Recommended Evaluations Following Initial Diagnosis
System/Concern | Evaluation | Comment
| Refer to expert on hereditary PGL/PCC syndromes (e.g., endocrinologist, oncologist); the specialist w/expertise in PGL/PCC should then complete the evaluations in this table. | Referral to other subspecialists (e.g., ENT, cardiology, gastroenterology) as needed
| • Cross-sectional imaging (CT/MRI) is preferred method to define tumor extent.
Functional studies, such as somatostatin receptor-based imaging (e.g., 68Ga- DOTATATE PET-CT) or less commonly other functional studies (e.g., FDG-PET) can aid in defining cross-sectional imaging findings as PGL/PCC or allow for defining therapeutic options for metastatic disease.
| CT or MRI may be preferable based on suspected tumor location:
HNPGLs are often best characterized by MRI.
Thoracic PGLs are best characterized by CT.
Abdominal tumors by either MRI or CT
Source: GeneReviews — "Hereditary Paraganglioma-Pheochromocytoma Syndromes"
View trials for pheochromocytoma/paraganglioma syndrome 1
Individuals known to have a hereditary PGL/PCC syndrome and relatives at risk based on family history who have not undergone DNA-based testing need regular clinical monitoring by a physician or medical team with expertise in treatment of hereditary PGL/PCC syndromes. Although no clear data regarding when to start, best method, and how frequent biochemical studies and imaging should be done in at-risk individuals exist, it is reasonable to consider surveillance for all at-risk individuals . Surveillance recommendations should take into account the associated gene and penetrance. Gene-specific recommendations from expert consensus groups have been published but are based on limited data .
Table 8.
Hereditary Paraganglioma-Pheochromocytoma Syndromes: Surveillance for Individuals at Risk and Affected Individuals
Gene | Evaluation | Frequency1
SDHA | Clinical assessment for manifestations of PGL/PCC GIST | Annually | Beginning at age 6-15 yrs2
Plasma-free fractionated metanephrines or 24-hour urine fractionated metanephrines (optional dopamine or 3-methoxytyramine) for secreting PGL/PCC | Every 2 yrs in childhood; then annually in adults
Whole-body MRI to assess for PGL, PCC, RCC, GIST | Every 2-3 yrs
EGD for those w/unexplained anemia GI symptoms | As needed
Note: Surveillance is not recommended in persons w/SDHA pathogenic variant no personal or family history of PGL/PCC or other SDHA-related tumors (i.e., incidental finding) due to low penetrance .
Source: GeneReviews — "Hereditary Paraganglioma-Pheochromocytoma Syndromes"
Phenotype severity distribution: 2 common features.
No clinical trials have been registered for pheochromocytoma/paraganglioma syndrome 1.
57 publications have been identified in PubMed for pheochromocytoma/paraganglioma syndrome 1. Research spans Review / Meta-Analysis (28%), Case Report / Case Series (26%), and Basic Science / Preclinical (21%).
Research Type | Count | % of Total |
|---|---|---|
Research summaries | 16 | 28% |
Patient case studies | 15 | 26% |
Laboratory research | 12 | 21% |
Disease patterns and progression | 8 | 14% |
Testing and diagnosis research | 4 | 7% |
Clinical study results | 1 | 2% |
New treatment approaches | 1 | 2% |
Cole Y (2026). [PMID: 41518596](https://pubmed.ncbi.nlm.nih.gov/41518596/). *J Clin Endocrinol Metab*. [Review / Meta-Analysis]
Rojas-Romero P (2026). [PMID: 41972240](https://pubmed.ncbi.nlm.nih.gov/41972240/). *Eur Heart J Case Rep*. [Case Report / Case Series]
Agrawal R (2026). [PMID: 42077574](https://pubmed.ncbi.nlm.nih.gov/42077574/). *World J Nucl Med*. [Case Report / Case Series]
Svendsen LK (2026). [PMID: 41183483](https://pubmed.ncbi.nlm.nih.gov/41183483/). *J Clin Endocrinol Metab*. [Review / Meta-Analysis]
Nakamura R (2026). [PMID: 42005593](https://pubmed.ncbi.nlm.nih.gov/42005593/). *IJU Case Rep*. [Case Report / Case Series]
Lian X (2026). [PMID: 41986136](https://pubmed.ncbi.nlm.nih.gov/41986136/). *J Med Genet*. [Review / Meta-Analysis]
V G (2026). [PMID: 41689042](https://pubmed.ncbi.nlm.nih.gov/41689042/). *Diagn Pathol*. [Gene Therapy / Novel Therapeutics]
Lai HP (2026). [PMID: 41556632](https://pubmed.ncbi.nlm.nih.gov/41556632/). *Genes Chromosomes Cancer*. [Basic Science / Preclinical]
Bayley JP (2026). [PMID: 41915642](https://pubmed.ncbi.nlm.nih.gov/41915642/). *PLoS One*. [Basic Science / Preclinical]
Karaman I (2026). [PMID: 41569310](https://pubmed.ncbi.nlm.nih.gov/41569310/). *Cancer Chemother Pharmacol*. [Review / Meta-Analysis]
Data assembled from 6 of 12 sources · Last updated Sep 20, 2026, 9:47 PM UTC
Online Mendelian Inheritance in Man
Genetic and Rare Diseases Info Center
Polycythemia-paraganglioma-somatostatinoma syndrome1
See footnote 2. |
PGL |
FH | FH tumor predisposition syndrome (hereditary leiomyoma renal cell carcinoma syndrome) | AD | PCC/PGL are rare. |
Multiple endocrine neoplasia type 1 | AD | PCC/PGL are rare. | Parathyroid tumors; Pituitary tumors; Foregut neuroendocrine tumors, incl pancreatic, lung, duodenal neuroendocrine tumors; Adrenocortical adenomas NF1 |
Neurofibromatosis 1 | AD | PCC that secrete epinephrine /or norepinephrine; PGL are rare. | Caf au lait macules; Axillary inguinal freckling; Neurofibromas (cutaneous plexiform); Long bone dysplasia; Optic glioma RET |
Multiple endocrine neoplasia type 2 | AD | PCC that secrete epinephrine/metanephrine /or norepinephrine/normetanephrine; PGL are rare. | MEN2A:; Medullary thyroid carcinoma; Hyperparathyroidism MEN2B:; Medullary thyroid carcinoma; Mucocutaneous neuromas; Ganglioneuromatosis; Slender body habitus; Joint laxity; Skeletal malformations VHL |
Von Hippel-Lindau disease | AD | PCC that secrete norepinephrine/normetanephrine; PGL are infrequent.; Clear cell renal cell carcinoma | CNS hemangioblastomas; Renal, pancreatic, epididymal, broad ligament cysts; Pancreatic neuroendocrine tumors AD = autosomal dominant; CNS = central nervous system; MOI = mode of inheritance; PCC = pheochromocytoma; PGL = paraganglioma 1. 2. |
Source: GeneReviews — "Hereditary Paraganglioma-Pheochromocytoma Syndromes"