Gluconeogenesis
- Compartment
- Cytosol + mitochondrion + ER
- Main tissue
- Liver (90%), renal cortex
- Rate-limiting
- Fructose-1,6-bisphosphatase (FBPase-1)
- Steps
- 13
Reaction steps
In source order, 13 total
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1
Pyruvate + HCO3− + ATP → oxaloacetate + ADP + Pi
Mitochondrial pyruvate carboxylase 6.4.1.1 ST-0016 Irreversible ATP Biotin (B7) Mg2+ Pi Bicarbonate/CO2› Notes
Mitochondrial pyruvate carboxylase requires covalently bound biotin, ATP, Mg2+, and bicarbonate as the CO2 source. This is the first bypass of pyruvate kinase and is effectively irreversible; it is allosterically activated by acetyl-CoA, linking fatty-acid oxidation to glucose production.
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2
Oxaloacetate + NADH + H+ ↔ malate + NAD+
› Notes
Mitochondrial malate dehydrogenase reduces oxaloacetate to malate using NADH when oxaloacetate must be exported and cytosolic NADH is needed. Oxaloacetate cannot directly cross the inner mitochondrial membrane; malate is transported to the cytosol and reoxidized by cytosolic malate dehydrogenase in the next step. When gluconeogenic carbon enters as lactate, cytosolic lactate dehydrogenase supplies NADH, and mitochondrial PEP formation/export can be used instead.
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3
Malate + NAD+ ↔ oxaloacetate + NADH + H+
› Notes
Cytosolic malate dehydrogenase regenerates oxaloacetate and produces cytosolic NADH. The malate transport step itself is carrier-mediated rather than enzymatic; the two dehydrogenase reactions constitute the redox shuttle.
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4
Oxaloacetate + GTP → phosphoenolpyruvate + GDP + CO2
› Notes
Cytosolic or mitochondrial phosphoenolpyruvate carboxykinase (PEPCK) requires GTP and Mg2+/Mn2+. Decarboxylation drives phosphorylation to PEP; together with step 1, it bypasses pyruvate kinase and is effectively irreversible. Mitochondrially formed PEP can be exported when the mitochondrial isoenzyme is used.
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5
Phosphoenolpyruvate + H2O ↔ 2-phosphoglycerate
› Notes
Enolase (Mg2+-dependent) catalyzes the reverse of glycolytic dehydration. This reaction is reversible.
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6
2-Phosphoglycerate ↔ 3-phosphoglycerate
› Notes
Phosphoglycerate mutase reversibly transfers the phosphate from carbon 2 to carbon 3; the catalytic 2,3-bisphosphoglycerate-dependent mechanism is used by the corresponding isoenzyme.
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7
3-Phosphoglycerate + ATP → 1,3-bisphosphoglycerate + ADP
› Notes
Phosphoglycerate kinase requires ATP and Mg2+. This is the reverse of glycolytic substrate-level phosphorylation and occurs twice for each glucose produced.
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8
1,3-Bisphosphoglycerate + NADH + H+ → glyceraldehyde-3-phosphate + Pi + NAD+
› Notes
Glyceraldehyde-3-phosphate dehydrogenase uses NADH and is the reverse of glycolytic step 6. It occurs twice per glucose; the required cytosolic NADH may derive from lactate oxidation or from the malate shuttle.
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9
Glyceraldehyde-3-phosphate ↔ dihydroxyacetone phosphate
› Notes
Triose phosphate isomerase reversibly interconverts the trioses. One glyceraldehyde-3-phosphate remains unchanged, while the other is isomerized for condensation.
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10
Glyceraldehyde-3-phosphate + dihydroxyacetone phosphate → fructose-1,6-bisphosphate
› Notes
Fructose-bisphosphate aldolase catalyzes reversible aldol condensation. No ATP is used.
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11
Fructose-1,6-bisphosphate + H2O → fructose-6-phosphate + Pi
› Notes
Fructose-1,6-bisphosphatase (FBPase-1) hydrolyzes the C1 phosphate. This is the key rate-limiting, bypass, and irreversible gluconeogenic reaction opposing PFK-1; it is not the same enzyme as the bifunctional PFK-2/FBPase-2 regulatory protein.
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12
Fructose-6-phosphate ↔ glucose-6-phosphate
› Notes
Phosphoglucose isomerase reversibly forms the aldose phosphate. No nucleotide cofactor is required.
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13
Glucose-6-phosphate + H2O → glucose + Pi
› Notes
The endoplasmic-reticulum glucose-6-phosphatase system hydrolyzes glucose-6-phosphate after transport into the ER lumen by glucose-6-phosphate translocase; the glucose and phosphate are returned to the cytosol through transporters. Hydrolysis requires water and is the final bypass of hexokinase/glucokinase, is irreversible, and permits hepatic or renal release of free glucose.
Showing all 13 steps.
Regulation
What speeds each enzyme up and what slows it down
Pyruvate carboxylase
Acetyl-CoA
Low acetyl-CoA availability; ADP decreases gluconeogenic flux
Glucagon indirectly favors flux by promoting fatty-acid oxidation and acetyl-CoA production; insulin suppresses gluconeogenic program
Phosphoenolpyruvate carboxykinase
Substrate availability
ADP
Glucagon and cortisol induce transcription; insulin represses transcription
Fructose-1,6-bisphosphatase
Citrate
AMP, fructose-2,6-bisphosphate
Glucagon lowers fructose-2,6-bisphosphate and favors FBPase-1; insulin raises fructose-2,6-bisphosphate and inhibits it
Glucose-6-phosphatase
Substrate availability
—
Induced by glucagon and cortisol during fasting; repressed by insulin in the fed state
Overview
Gluconeogenesis synthesizes glucose from noncarbohydrate precursors, principally lactate, glucogenic amino-acid carbon skeletons (especially alanine), glycerol, and propionate-derived succinyl-CoA. It maintains blood glucose during fasting, prolonged exercise, and starvation after hepatic glycogen becomes depleted. The pathway is not simply glycolysis in reverse because the three strongly exergonic glycolytic reactions are bypassed by four distinct reactions.
Cellular location
Gluconeogenesis is concentrated in the liver and, during prolonged fasting or acidosis, the renal cortex; small-intestinal enterocytes can contribute under selected conditions. Its enzymes span the mitochondrial matrix (pyruvate carboxylase; often mitochondrial PEPCK), cytosol (most reactions), endoplasmic-reticulum lumen/membrane (glucose-6-phosphatase catalytic system), and the mitochondrial–cytosolic malate shuttle. Skeletal muscle lacks glucose-6-phosphatase and cannot release free glucose into blood.
Net energetics
From two pyruvate, gluconeogenesis consumes 4 ATP + 2 GTP + 2 NADH: 2 pyruvate + 4 ATP + 2 GTP + 2 NADH + 6 H2O → glucose + 4 ADP + 2 GDP + 6 Pi + 2 NAD+ + 2 H+. Thus it costs six high-energy phosphate bonds per glucose; it produces no net ATP, NADPH, FADH2, or GTP. If lactate is the precursor, lactate dehydrogenase generates the required cytosolic NADH as lactate is oxidized to pyruvate.
Clinical significance
The hepatic Cori cycle uses gluconeogenesis to convert lactate released by anaerobic muscle and erythrocytes back to glucose, transferring an energetic burden to the liver. Reciprocal control of PFK-1 and FBPase-1 prevents futile cycling between glycolysis and gluconeogenesis. Fructose-1,6-bisphosphatase deficiency causes fasting hypoglycemia, lactic acidosis, ketosis, and hyperventilation; defects in pyruvate carboxylase similarly impair anaplerosis and gluconeogenesis, producing lactic acidosis and neurologic disease.
Recent literature
Live Europe PMC search
Europe PMC · from cache · sorted by publication date
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1
Paliurus ramosissimus extract partially ameliorates AOM/DSS-induced colitis-associated colorectal cancer in mice: insights from transcriptomic and gut microbiota analyses.
Peng J, Zhao H, Hu J, Lei L, Yu Y, Wu X, Chen Y, Lin X, Niu Y, Bai X, Li D. · 2026-07-21
unreviewed -
2
Cross-feeding and stress response are the basis of increased fruitiness and leavening capacity of a new consortium of the sourdough microorganisms Companilactobacillus crustorum and Wickerhamomyces anomalus.
Pradal I, Verce M, Vanderauwera Q, De Vuyst L, Weckx S. · 2026-05-25
unreviewed -
3
Temporal dynamics of ruminal metabolome and fermentation in response to molasses-treated Guinea grass-cowpea silage.
Sossou APG, Yayota M. · 2026-06-19
unreviewed -
4
Impact of ASO conjugation and receptor binding affinity on intracellular transport of mono- and bispecific TfR- and CD98-Brainshuttle<sup>TM</sup> variants.
Sela T, Wirth T, Sommer A, Larraillet V, Butzer J, Lohmann S, Wittmann P, Klein C, Knoetgen H, Villasenor R, … · 2026-06-22
open access unreviewed -
5
Indole-3-acetic acid production is rare among gut bacteria and reflects OFOR-driven amino acid oxidation in acetogens.
DeFeo ME, Liu Y, Zhou Z, Higginbottom SK, Dodd D. · 2026-06-21
open access unreviewed -
6
Mapping the metagenomic landscape: combined shotgun sequencing and quantitative PCR to profile gut metagenome-assembled genomes in marmosets following treatment with a broad-spectrum antibiotic cocktail.
Hernandez JB, Abiodun M, Hayer SS, Dickson T, Ayayee P, Clayton JB. · 2026-06-21
open access unreviewed -
7
Targeted activation of PPARG or AKT1 alleviates liver injury in mice with type 2 diabetes and sepsis by modulating inflammatory and metabolic pathways.
Ma J, Qi X, Li W, Feng X, Ma J, Ma H, Man J, Ma T, De T, Liu J, Li H, Li J, Liu M, Li S, Gao J, Wang H, Ma G. · 2026-06-19
open access unreviewed -
8
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 -
9
<i>Galleria mellonella</i> proteomic response to infection with <i>Streptococcus pyogenes</i>.
Abt-Becker C, Burzlaff J, Mikkat S, Kreikemeyer B, Patenge N. · 2026-06-19
open access unreviewed -
10
High-throughput signal detection of hepatotoxic drug-drug interactions in hospitalized elderly patients: an NLP-driven pharmacovigilance study.
Ma J, Chen H, Guo C, He G, Yang G. · 2026-06-17
open access unreviewed
External claims. These come from an index outside this database and are not checked against it. Treat them as leads.