Glycogenolysis (Glycogen Breakdown)
- Compartment
- Cytosol + ER (liver)
- Main tissue
- Liver, skeletal muscle
- Rate-limiting
- Glycogen phosphorylase
- Steps
- 5
Reaction steps
In source order, 5 total
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1
Glycogen(n) + Pi → glycogen(n−1) + glucose-1-phosphate
› Notes
Glycogen phosphorylase uses inorganic phosphate (Pi) and the cofactor pyridoxal phosphate (PLP; vitamin B6) to phosphorolyze successive alpha(1→4) bonds at nonreducing ends. It stops four residues before an alpha(1→6) branch (a limit dextrin); this is the principal rate-limiting step and conserves the bond energy in glucose-1-phosphate rather than using ATP.
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2
Limit dextrin: transfer of a three-residue alpha(1→4)-linked segment to a neighboring nonreducing end
Glycogen debranching enzyme (AGL) - 4-alpha-glucanotransferase activity 2.4.1.25 ST-0036 Irreversible/directional› Notes
The 4-alpha-glucanotransferase activity of the bifunctional glycogen debranching enzyme moves a block of three glucosyl residues from the short branch to another alpha(1→4) chain. No nucleotide cofactor is required.
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3
Remaining alpha(1→6)-linked branch glucose + H2O → free glucose
↪ 6)-linked branch glucose + H2O → free glucose
Glycogen debranching enzyme (AGL) - amylo-alpha(1,6)-glucosidase activity 3.2.1.33 ST-0037 Irreversible H2O› Notes
The amylo-alpha(1,6)-glucosidase activity of the same glycogen debranching enzyme hydrolyzes the single branch-point residue using water. Approximately one glucose per branch is released free; the reaction is effectively irreversible.
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4
Glucose-1-phosphate ↔ glucose-6-phosphate
› Notes
Cytosolic phosphoglucomutase reversibly transfers the phosphate via glucose-1,6-bisphosphate. In muscle, glucose-6-phosphate enters glycolysis; in liver it is prepared for export.
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5
Glucose-6-phosphate + H2O → glucose + Pi
› Notes
In liver and renal cortex, the endoplasmic-reticulum glucose-6-phosphatase system hydrolyzes glucose-6-phosphate after its transport into the ER lumen. This irreversible step enables release of glucose to blood; it is absent from skeletal muscle, explaining why muscle glycogen cannot directly correct hypoglycemia.
Showing all 5 steps.
Regulation
What speeds each enzyme up and what slows it down
Glycogen phosphorylase
Phosphorylation by phosphorylase kinase; AMP in muscle; Ca2+ indirectly through calmodulin on phosphorylase kinase
ATP and glucose-6-phosphate in muscle; glucose in liver promotes inactivation
Glucagon activates liver phosphorylase through cAMP/protein kinase A; epinephrine activates liver and muscle pathways; insulin promotes dephosphorylation/inactivation
Phosphorylase kinase
Ca2+–calmodulin, phosphorylation by protein kinase A
Dephosphorylation by protein phosphatase 1
Epinephrine and glucagon (liver) promote cAMP/protein kinase A activation; insulin favors inactivation
Glucose-6-phosphatase (liver/kidney)
Substrate availability
—
Expression rises in fasting with glucagon/cortisol and falls with insulin
Overview
Glycogenolysis mobilizes glucosyl units from glycogen as glucose-1-phosphate, with limited free glucose released at branch points. In liver it maintains circulating glucose during early fasting; in skeletal muscle it rapidly supplies glucose-6-phosphate for glycolysis during contraction. The pathway is activated by energy demand and counter-regulatory hormones.
Cellular location
Glycogenolysis occurs on cytosolic glycogen granules in hepatocytes and skeletal muscle, with final glucose-6-phosphatase-dependent release of glucose occurring in the endoplasmic reticulum of liver and renal cortex. Muscle lacks glucose-6-phosphatase, so its glucose-6-phosphate remains intracellular. Lysosomal acid alpha-glucosidase also degrades a small fraction of glycogen in lysosomes but is distinct from the main cytosolic pathway.
Net energetics
Most residues are released as glucose-1-phosphate and converted to glucose-6-phosphate without ATP expenditure; therefore, their anaerobic glycolytic conversion to lactate yields net 3 ATP per glucosyl residue, one more than free glucose entering glycolysis. Branch-point residues released by alpha(1,6)-glucosidase are free glucose and require hexokinase if metabolized in muscle, yielding the usual net 2 ATP anaerobically. Glycogenolysis itself directly produces no NADH, NADPH, FADH2, or GTP.
Clinical significance
Hormonal and allosteric control allows liver to respond to systemic hypoglycemia and muscle to respond locally to AMP and Ca2+ during contraction. Hepatic glucose-6-phosphatase deficiency causes GSD I (von Gierke disease), with severe fasting hypoglycemia, lactic acidosis, hyperuricemia, and hepatomegaly. Muscle glycogen phosphorylase deficiency causes GSD V (McArdle disease), characterized by exercise intolerance, cramps, myoglobinuria, and a "second-wind" phenomenon; lysosomal acid alpha-glucosidase deficiency causes Pompe disease (GSD II), a separate lysosomal glycogen disorder with cardiomyopathy and myopathy.
Recent literature
Live Europe PMC search
Europe PMC · fetched just now · sorted by publication date
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1
The impact of (poly)phenol-rich sugarcane extract intervention on markers of gastrointestinal integrity and systemic inflammation in response to exertional-heat stress.
Hewawansa UHAJ, Henningsen K, Vilela Silva Daniel N, In S, Sugay G, Houghton MJ, Barber E, Williamson G, Cost… · 2026-06-18
open access unreviewed -
2
Effects of acute caffeine ingestion combined with post-activation potentiation enhancement on the anaerobic capacity of male collegiate basketball players.
Ma Y, He T, Li H, Yan Q, Sun J, Li D. · 2026-05-12
open access unreviewed -
3
Wubie Fanchun Formula-inducible metabolites in primary ovarian insufficiency model mice that facilitate ovarian renovation.
Chen Y, Chen S, Song B, Xia X, Zhang K, Chen L, Chi L, Wang Q. · 2026-05-12
open access unreviewed -
4
Carbohydrate supplementation for endurance exercise in the heat: a systematic review with practical recommendations.
Salame A, Brown D, Oueijan K, McCullough D. · 2026-05-09
open access unreviewed -
5
The putative role of the microbiota in the development of neuropsychiatric disorders following early childhood malnutrition.
Jama Y, Khan W, Collins SM. · 2026-03-17
open access unreviewed -
6
Gut microbiota metabolic reprogramming drives the development of metabolic diseases in the host.
Wang Y, Huang B, Wei X, Guan Y, Li L, Zheng Y, Sun W. · 2026-03-14
cited 10× open access unreviewed -
7
cAMP-PKA/EPAC signaling pathways: crucial regulators of lipid homeostasis.
Chen C, Gao H, Tian Q, Cao J. · 2026-01-07
open access unreviewed -
8
Vitamin D attenuates metabolic dysfunction-associated steatotic liver disease (MASLD) and downregulates hepatic gluconeogenesis in obesity.
Cordeiro MM, Lucredi NC, Pateis VO, Souza GH, Duarte ALR, Scomparin DX, Natali MRM, Sá-Nakanishi AB, Bracht L… · 2026-06-20
unreviewed -
9
Genotype-phenotype spectrum and clinical outcomes of glycogen storage disease type I: A 15-year experience at Vietnam National Children's Hospital.
Nguyen HT, Vu DC, Cao TV, Tran VK, Bui TP, Can NBT, Nguyen LH, Nguyen NL, Tran TH, Tu NH, Phuong LT, Nguyen K… · 2026-07-10
unreviewed -
10
Association of physiological parameters with final pH in beef.
Maia Júnior RDS, Fernandes EC, Malavazi PFNDS, Souza JRDS, Mesquita AA, de Marchi PGF, Messias CT, Rosa BL. · 2026-06-03
open access unreviewed
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