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A type of glycogenosis due to G6P deficiency.
Features include always present findings: Enlarged liver (hepatomegaly), Inflammation of the large intestine, Cyclically decreased total neutrophil count, and Stomatitis and others. 43 total HPO annotations.
Organ System | Phenotype Count | Example Features |
|---|---|---|
Digestive system | 10 | Hepatoblastoma, Enlarged liver (hepatomegaly), Hepatocellular carcinoma |
Kidneys and urinary system | 7 | Reduced kidney function (renal insufficiency), Focal segmental glomerulosclerosis, Blood in the urine (hematuria) |
Blood and immune system | 5 | Cyclically decreased total neutrophil count, Recurrent upper respiratory tract infections, Recurrent bacterial infections |
Lungs and breathing | 3 | High blood pressure in lung arteries (pulmonary arterial hypertension), Recurrent upper respiratory tract infections, Absence of bactericidal oxidative respiratory burst in phagocytes |
Metabolism | 2 | High blood fat levels (hyperlipidemia), Metabolic acidosis |
Heart and blood vessels | 2 | High blood pressure in lung arteries (pulmonary arterial hypertension), Hypertension |
Hormones | 1 | Delayed puberty |
Eyes | 1 | Lipemia retinalis |
Growth and development | 1 | Short stature |
Bones and joints | 1 | Weak and brittle bones (osteoporosis) |
Lab test results | 1 | Elevated circulating hepatic transaminase concentration |
Age of onset: adolescence.
The clinical manifestations of glycogen storage disease type I (GSD I) are poor growth (leading to short stature) and accumulation of glycogen and fat in liver and kidneys (resulting in hepatomegaly and nephromegaly, respectively) . Although some neonates present with severe hypoglycemia, untreated infants more commonly present at age three to four months or a little later (when the feeding interval is typically increased or when infants start sleeping through the night) with additional symptoms of hepatomegaly, lactic acidosis, hyperuricemia, hyperlipidemia, hypertriglyceridemia, and/or hypoglycemic seizures. Hypoglycemia and lactic acidosis can develop after a short fast (2-4 hours).
Source: GeneReviews — "Glycogen Storage Disease Type I"
SLC37A4 function has not been fully characterized.
Glycogen storage disease Ib is associated with mutations in the SLC37A4 gene on chromosome 11.
No strong genotype-phenotype correlations that can explain the clinical and biochemical features or the response to treatment have been identified for GSD I . G6PC1. Two case reports suggested that individuals with GSD Ia who are homozygous for the pathogenic splicing variant may be at increased risk of developing hepatocellular carcinoma (HCC) . However, it should be noted that this pathogenic variant is the most common cause of GSD Ia in individuals of Japanese descent. Of 19 Japanese adults who were homozygous for c.648GT, three had HCC, one had cholangiocellular carcinoma, and seven had hepatic adenoma . A study of 40 individuals who were homozygous for this pathogenic variant found that c.648GT is associated with a milder phenotype with respect to hypoglycemia .
Source: GeneReviews — "Glycogen Storage Disease Type I"
The two major subtypes of glycogen storage disease type I (GSD I) are:
GSD type Ia, caused by the deficiency of glucose-6-phosphatase (G6Pase) catalytic activity; and
GSD type Ib, caused by a defect in glucose-6-phosphate exchanger SLC37A4 (transporter).
The lack of either G6Pase catalytic activity or glucose-6-phosphate exchanger SLC37A4 (transporter) activity in the liver leads to inadequate conversion of glucose-6-phosphate into glucose through normal glycogenolysis and gluconeogenesis pathways, resulting in severe hypoglycemia and many other signs and symptoms typical of the GSD I disorders. Guidelines for diagnosis and management have been published by the American College of Medical Genetics and Genomics (full text).
GSD I should be suspected in individuals with the f...
Source: GeneReviews — "Glycogen Storage Disease Type I"
Disorders that can present clinically like glycogen storage disease type I (GSD I) include those summarized in . Table 2. Disorders in the Differential Diagnosis of Glycogen Storage Disease Type I
Gene | DiffDx Disorder | MOI | Features of DiffDx Disorder |
|---|---|---|---|
AGL | Debranching enzyme deficiency (GSD III) | AR | Hepatomegaly; Fasting hypoglycemia; AST/ALT; Hyperlipidemia |
FBP1 | Fructose-1,6-bisphosphatase deficiency1 |
Genetic testing for SLC37A4 is available. Testing is considered confirmatory for diagnosis.
Biomarker and diagnostic research for glycogen storage disease Ib has been reported in the published literature.
No approved treatments are currently available for glycogen storage disease Ib. An additional 1 compound holds orphan drug designation.
While no drugs are FDA-approved specifically for glycogen storage disease Ib, some of the following designated compounds may be used off-label in clinical practice. Treatment decisions should be made in consultation with a specialist familiar with this condition.
The following drugs have received orphan drug designation from the FDA for glycogen storage disease Ib. Orphan designation reflects regulatory interest and does not indicate approval for treatment.
Brand Name | Generic Name | Sponsor | Designated | Exclusivity End | Designation Status |
|---|---|---|---|---|---|
Lipid nanoparticles containing prime editing components (mRNA, pegRNA and ngRNA) capable of editing genetic mutations in the SLC37A4 gene | Lipid nanoparticles containing prime editing components (mRNA, pegRNA and ngRNA) capable of editing genetic mutations in the SLC37A4 gene | Prime Medicine | 2024 | — | Designated |
Evaluations Following Initial Diagnosis To establish the extent of disease and needs in an individual diagnosed with glycogen storage disease type I (GSD I), the evaluations summarized (if not performed as part of the evaluation that led to the diagnosis) are recommended. Table 3. Recommended Evaluations at Initial Diagnosis in Individuals with Glycogen Storage Disease Type I
System/Concern | Evaluation | Comment |
|---|---|---|
Skeletal | Measurement of bone density | Beginning at age 10 yrs or as clinically indicated Serum 25-hydroxyvitamin D |
Cardiovascular | Blood pressure | At diagnosis; Echocardiogram to detect pulmonary hypertension when indicated; Lipid panel incl triglycerides |
Avoid sucrose, galactose, fructose, high-fructose corn syrup, honey, maple syrup, molasses, agave nectar, and sorbitol. Due to potential negative effects of sex hormones (containing estrogen) on hepatic adenomas, combined oral contraception (including high-dose estrogen) should be avoided in women with GSD I, especially those with adenomas . Progestin-only contraceptives may be considered; however, given the potential risk to develop low BMD and osteoporosis, follow-up assessment for bone disease is recommended. Metformin and lactate-containing infusions such as Ringers lactate should be avoided. Amoxicillin/clavulanic acid has been associated with an increased risk of diarrhea in individuals with GSD I (common); there is also a risk for idiopathic liver failure due to clavulanic acid (rare). Glucagon should not be used to treat hypoglycemia because it is ineffective and may increase the risk of lactic acidosis.
Source: GeneReviews — "Glycogen Storage Disease Type I"
Current dietary treatment prevents hypoglycemia and greatly improves the life expectancy of individuals with GSD I. However, long-term complications – including progressive kidney failure and development of hepatic adenomas that progress to hepatocellular carcinoma – still occur. The development of new therapies for GSD I has recently evolved into new concepts involving the following:
Source: GeneReviews — "Glycogen Storage Disease Type I"
2 trials found
Follow GSD I guidelines published by a group of experts in the field . Perform home blood glucose monitoring using a glucometer or continuous glucose monitoring (CGM) when available. CGM is a reliable noninvasive tool that assesses glucose trends in real time with good concordance with finger-stick glucose values. The benefits of CGM include improved self-monitoring and management of blood sugars while assessing the effect of treatment regimens on glucose levels in the outpatient setting rather than the hospital, which does not reflect or capture situations that the individual is likely to encounter. Under supervision of a metabolic dietitian, individuals are able to adjust dietary and cornstarch regimens, empowering them to take control of their own management. CGM allows 24-hour glucose monitoring for hypoglycemia and hyperglycemia (due to overtreatment) in those who may be asymptomatic – information that may be missed if monitoring is done by glucose finger stick. The data generated by CGM are useful for comparing trends and adjusting cornstarch doses and dietary plans as indicated without need for hospitalization .
Table 4.
Recommended Surveillance for Individuals with Glycogen Storage Disease Type I
System/Concern | Evaluation | Frequency
| Serum AST, ALT, albumin, bilirubin, PT/INR, aPTT to monitor for liver damage | Every 6-12 mos
Liver ultrasound to assess for adenomas | Every 12-24 mos until age 16 yrs
Source: GeneReviews — "Glycogen Storage Disease Type I"
Phenotype severity distribution: 10 always present features.
Estimated prevalence: Unknown (Unknown prevalence).
2 clinical trials registered, 1 recruiting. Interventions under study include other interventions and medical devices. Research is primarily sponsored by academic and government institutions.
28 publications have been identified in PubMed for glycogen storage disease Ib. Research spans Basic Science / Preclinical (39%), Case Report / Case Series (29%), and Clinical Trial Publication (11%).
Research Type | Count | % of Total |
|---|---|---|
Laboratory research | 11 | 39% |
Patient case studies | 8 | 29% |
Clinical study results | 3 | 11% |
Disease patterns and progression | 3 | 11% |
Research summaries | 2 | 7% |
Testing and diagnosis research | 1 | 4% |
Zhang W (2026). [PMID: 41911224](https://pubmed.ncbi.nlm.nih.gov/41911224/). *PLoS biology*. [Basic Science / Preclinical]
Uçar SK (2026). [PMID: 42070995](https://pubmed.ncbi.nlm.nih.gov/42070995/). *J Inherit Metab Dis*. [Epidemiology / Natural History]
Chen Z (2026). [PMID: 41603948](https://pubmed.ncbi.nlm.nih.gov/41603948/). *Acta Diabetol*. [Review / Meta-Analysis]
Lynch G (2026). [PMID: 41767122](https://pubmed.ncbi.nlm.nih.gov/41767122/). *JIMD reports*. [Clinical Trial Publication]
Lai Q (2026). [PMID: 41225050](https://pubmed.ncbi.nlm.nih.gov/41225050/). *Nature structural & molecular biology*. [Basic Science / Preclinical]
Zhou D (2026). [PMID: 41225049](https://pubmed.ncbi.nlm.nih.gov/41225049/). *Nature structural & molecular biology*. [Basic Science / Preclinical]
Chaudhary A (2025). [PMID: 41407497](https://pubmed.ncbi.nlm.nih.gov/41407497/). *BMJ case reports*. [Case Report / Case Series]
Parezanovic M (2025). [PMID: 39803753](https://pubmed.ncbi.nlm.nih.gov/39803753/). *Molecular genetics & genomic medicine*. [Basic Science / Preclinical]
Akyüz A (2025). [PMID: 40781175](https://pubmed.ncbi.nlm.nih.gov/40781175/). *European journal of pediatrics*. [Clinical Trial Publication]
Veiga-da-Cunha M (2025). [PMID: 40958355](https://pubmed.ncbi.nlm.nih.gov/40958355/). *Journal of inherited metabolic disease*. [Review / Meta-Analysis]
Data assembled from 9 of 12 sources · Last updated Sep 19, 2026, 11:55 AM UTC
Online Mendelian Inheritance in Man
European rare disease database
Genetic and Rare Diseases Info Center
AR
Hepatomegaly; Fasting hypoglycemia; AST/ALT |
Fasting hyperlactatemia GBA1 (GBA) | Gaucher disease2 | AR | Hepatomegaly; Growth failure; Hyperlipidemia; Pulmonary hypertension (rare); Bone disease / osteoporosis |
GBE1 | Branching enzyme deficiency (See GSD IV.) | AR | Hepatomegaly; AST/ALT |
GK | Glycerol kinase deficiency (OMIM 307030) | XL | Hypoglycemia |
GYS2 | Hepatic glycogen synthase deficiency (GSD 0) (OMIM 240600) | AR | Fasting hypoglycemia; Ketosis |
PHKG2 | Liver phosphorylase kinase deficiency (GSD IX) | XLAR | Hepatomegaly; Fasting ketosis; Hypoglycemia; AST/ALT; lipids |
SLC2A2 | GLUT2 deficiency (Fanconi-Bickel syndrome; GSD XI) (OMIM 227810) | AR | Hepatomegaly; Fasting hypoglycemia; Fasting ketosis; AST/ALT |
SMPD1 | Chronic visceral ASMD (Niemann-Pick disease type B)2 (See ASM Deficiency.) | AR | Hepatomegaly; Growth failure; Hyperlipidemia; Bone pulmonary involvement |
Source: GeneReviews — "Glycogen Storage Disease Type I"
Renal | Kidney function tests incl BUN, creatinine, urine microalbumin/creatinine ratio, urinary citrate excretion | At diagnosis Kidney imaging to evaluate for nephromegaly kidney stones |
counseling | By genetics professionals1 | To inform affected persons their families re nature, MOI, implications of GSD I to facilitate medical personal decision making Family support resources |
Source: GeneReviews — "Glycogen Storage Disease Type I"
AI-curated news mentioning glycogen storage disease Ib
Updated Mar 2, 2026
A case report details a 17-year history of renal involvement in a patient with glycogen storage disease type Ia. This study contributes to the understanding of long-term complications associated with this rare metabolic disorder.
FDA has accepted Ultragenyx's Biologics License Application for DTX401, a gene therapy targeting Glycogen Storage Disease Type Ia, with a PDUFA action date set for August 23, 2026. If approved, DTX401 will be the first treatment addressing the underlying cause of GSDIa.
A recent study provides insights into the complication mechanisms and potential circulation biomarkers for patients with glycogen storage disease type Ia and Ib. The proteomics profiling of serum and liver samples enhances understanding of these rare diseases.