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Any Cushing syndrome due to macronodular adrenal hyperplasia in which the cause of the disease is a mutation in the GNAS1 gene.
Features include: Neoplasm, Weak and brittle bones (osteoporosis), Depression, and Macronodular adrenal hyperplasia and 18 more.
Organ System | Phenotype Count | Example Features |
|---|---|---|
Brain and nerves | 6 | Depression, Anxiety, Emotional lability |
Bones and joints | 4 | Weak and brittle bones (osteoporosis), Mild bone density loss (osteopenia), Skeletal muscle atrophy |
Hormones | 3 | Macronodular adrenal hyperplasia, Adrenal hyperplasia, Increased circulating cortisol level |
Neoplasm | 1 | Neoplasm |
Head and neck | 1 | Round face |
Muscles | 1 | Skeletal muscle atrophy |
Heart and blood vessels | 1 | Hypertension |
Skin | 1 | Thin skin |
Disorders of GNAS inactivation include pseudohypoparathyroidism Ia (PHP-Ia), Ib (PHP-Ib), and Ic (PHP-Ic), as well as pseudopseudohypoparathyroidism (PPHP), progressive osseous heteroplasia (POH), and osteoma cutis (OC) . The term pseudohypoparathyroidism (PHP) refers to disorders with hypocalcemia and hyperphosphatemia (which are typical of hypoparathyroidism) that result from end-organ resistance to rather than deficiency of parathyroid hormone (PTH).
PHP-Ia and PHP-Ic have a similar phenotype and are distinguished only by ex vivo assays of Gs protein function that are based on hormone receptor activation of Gs; in these assays Gs activity is reduced by approximately 50% in PHP-Ia and normal in PHP-Ic. Endocrine.
Source: GeneReviews — "Disorders of GNAS Inactivation"
GNAS encodes GNAS complex locus (1,037 aa). Guanine nucleotide-binding proteins (G proteins) function as transducers in numerous signaling pathways controlled by G protein-coupled receptors (GPCRs). Highest expression in Pituitary (1,324 TPM) and Thyroid (727.3 TPM).
ACTH-independent macronodular adrenal hyperplasia 1 is associated with mutations in the GNAS gene on chromosome 20.
The GNAS protein participates in G alpha (s):GTP:SRC dissociates and G alpha (s):GTP:SRC catalyzes SRC to p-Y419-SRC pathways.
GNAS is classified as a druggable target (Clinically Actionable, Drug Resistance, Druggable Genome, G Protein Coupled Receptor, and Transporter categories) with score 1.5.
No clear correlation appears to exist between the type and location of GNAS complex locus / STX16 pathogenic variants and disease onset, severity of endocrine resistance, or number of AHO features. However, two unique variants affecting both the stability and the activity of Gs have been described in three unrelated individuals with PHP1a who presented with additional clinical features reflecting enhanced Gs activity:
Source: GeneReviews — "Disorders of GNAS Inactivation"
Disorders of GNAS inactivation show complete penetrance, with manifestations typically appearing during childhood. However, the exact manifestations and severity vary significantly among individuals.
Source: GeneReviews — "Disorders of GNAS Inactivation"
No specific clinical criteria establish the diagnosis of a disorder of GNAS inactivation.
A disorder of GNAS inactivation should be suspected in individuals with the following phenotypes. Pseudohypoparathyroidism Ia (PHP-Ia) and pseudohypoparathyroidism Ic (PHP-Ic). The most readily recognized form of PHP is PHP-Ia, which has clinical and endocrine features similar to PHP-Ic. Note: PHP-Ic differs from PHP-Ia on the basis of normal functional activity of Gs (the protein encoded by GNAS) determined in some biochemical assays based on receptor-independent activation of Gs . PHP-Ia and PHP-Ic should be suspected in individuals with some of the following clinical and endocrine findings (which may emerge over time):
Source: GeneReviews — "Disorders of GNAS Inactivation"
Conditions to be considered in the differential diagnosis include the following:
Source: GeneReviews — "Disorders of GNAS Inactivation"
Genetic testing for GNAS is available. Testing is considered confirmatory for diagnosis.
Biomarker and diagnostic research for ACTH-independent macronodular adrenal hyperplasia 1 has been reported in the published literature.
No approved treatments are currently available for ACTH-independent macronodular adrenal hyperplasia 1. The disease remains an area of unmet medical need.
To establish the extent of disease and needs in an individual diagnosed with a disorder of GNAS inactivation, the following evaluations are recommended:
Assessment of height, weight, body mass index, growth velocity, and pubertal development
X-ray of hands and feet to classify the type and extent of brachydactyly; bone age study to determine whether skeletal maturation is advanced
Endocrinology evaluation, with studies that may include the following:
Serum concentration of calcium and phosphorous
Serum concentration of 25-hydroxyvitamin D and magnesium to evaluate respectively for severe vitamin D deficiency and hypomagnesemia, either of which can cause decreased responsiveness to PTH or secondary hyperparathyroidism
Parathyroid hormone (PTH)
Thyroid-stimulating hormone (TSH) and free T4
Growth hormone evaluation (IGF1, IGFBP3, stimulated GH testing)
Urinary calcium excretion and tubular reabsorption of phosphorus
Note: Renal responsiveness to PTH (via measurement of the serum or urinary nephrogenous cyclic AMP response to administered PTH) is rarely indicated.
Psychoeducational profile/developmental assessment
Ophthalmologic examination for cataracts
Consultation with nutritionist when obesity is present
Consultation with a clinical geneticist and/or genetic counselor
Hypocalcemia. Therapy of hypocalcemia is similar to the treatment of other forms of hypoparathyroidism: restoring serum calcium to the normal level ...
Source: GeneReviews — "Disorders of GNAS Inactivation"
Limit dietary intake of phosphorus (dairy products and meats) in persons with persistently elevated serum levels of phosphate.
Source: GeneReviews — "Disorders of GNAS Inactivation"
Dr Emily Germain-Lee at the University of Connecticut is recruiting individuals with PHP-Ia and AHO to determine whether growth hormone therapy can improve short stature and obesity. Researchers at Vanderbilt University Medical Center are investigating whether theophylline treatment promotes weight loss, improves glucose tolerance, and slows growth plate closure in children and young adults. Search ClinicalTrials.gov in the US and EU Clinical Trials Register in Europe for access to information on clinical studies for a wide range of diseases and conditions.
Source: GeneReviews — "Disorders of GNAS Inactivation"
View trials for ACTH-independent macronodular adrenal hyperplasia 1
Surveillance includes the following:
Once the diagnosis is established, annual monitoring for endocrine abnormalities with measurement of serum concentration of PTH, calcium, and phosphate; TSH and free T4, and urinary calcium excretion (either 24-hour urine collection or random urine collections for determination of the calcium/creatinine ratio). These studies should be begun as soon an individual begins treatment, and may be performed more frequently in growing children who may experience increasing requirements for thyroid hormone and/or activated forms of vitamin D.
Growth velocity and growth hormone status (serum IGF1 and/or stimulated growth hormone testing) should be evaluated annually. Individuals who receive growth hormone replacement should be monitored every three to four months per customary protocols.
Routine physical examination including assessment of: (1) height to identify changes in growth velocity; (2) the hands and feet for evidence of brachydactyly; and (3) new and/or enlarging ectopic ossifications
Annual examination by an ophthalmologist to monitor development of and/or progression of cataracts
Periodic assessment of psychoeducational needs regarding school assistance/educational support and developmental therapies (e.g., physical, occupational, and speech therapy)
Monitoring of post-pubertal females for disturbances in hypothalamic-pituitary-ovarian function
Source: GeneReviews — "Disorders of GNAS Inactivation"
No clinical trials have been registered for ACTH-independent macronodular adrenal hyperplasia 1.
4 publications have been identified in PubMed for ACTH-independent macronodular adrenal hyperplasia 1. Research spans Review / Meta-Analysis (50%), Diagnostic / Biomarker (25%), and Case Report / Case Series (25%).
Yanase T (2026). [PMID: 40707183](https://pubmed.ncbi.nlm.nih.gov/40707183/). *Endocr J*. [Review / Meta-Analysis]
Yüksek Acınıklı K (2026). [PMID: 38084047](https://pubmed.ncbi.nlm.nih.gov/38084047/). *J Clin Res Pediatr Endocrinol*. [Case Report / Case Series]
Barlas T (2025). [PMID: 40921153](https://pubmed.ncbi.nlm.nih.gov/40921153/). *Exp Clin Endocrinol Diabetes*. [Diagnostic / Biomarker]
Ghanbari Boroujeni MR (2024). [PMID: 39465833](https://pubmed.ncbi.nlm.nih.gov/39465833/). *Medicine (Baltimore)*. [Review / Meta-Analysis]
Data assembled from 6 of 12 sources · Last updated Sep 20, 2026, 4:09 PM UTC
Online Mendelian Inheritance in Man
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Updated Aug 25, 2026
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