Fructose-6-phosphate
Reactions involving Fructose-6-phosphate
Every recorded step where this molecule takes part
-
Fructose-6-phosphate ↔ glucose-6-phosphate
-
Fructose-6-phosphate + ATP -> fructose-1,6-bisphosphate + ADP
-
consumed Phosphofructokinase-1 (PFK-1) Anaerobic Glycolysis / Lactic Acid Fermen… ST-0290 rate-limiting
Fructose-6-phosphate + ATP → fructose-1,6-bisphosphate + ADP
-
Alternative extrahepatic entry: fructose + ATP → fructose-6-phosphate + ADP
-
Fructose-1,6-bisphosphate + H2O → fructose-6-phosphate + Pi
-
Glucose-6-phosphate → fructose-6-phosphate
-
Sedoheptulose-7-phosphate + glyceraldehyde-3-phosphate → fructose-6-phosphate + erythrose-4-phosphate
-
Xylulose-5-phosphate + erythrose-4-phosphate → glyceraldehyde-3-phosphate + fructose-6-phosphate
-
Glucose-6-phosphate ⇌ fructose-6-phosphate
Showing all 9 reactions.
Pathway junctions through this molecule
Produced in one pathway, consumed in another
| Produced in | Consumed in | Link | |
|---|---|---|---|
| Anaerobic Glycolysis / Lactic Acid Fermenta… | → | Gluconeogenesis | cross-category |
| Anaerobic Glycolysis / Lactic Acid Fermenta… | → | Glycolysis | cross-category |
| Fructose Metabolism (Fructolysis) | → | Anaerobic Glycolysis / Lactic Acid Fermenta… | cross-category |
| Fructose Metabolism (Fructolysis) | → | Gluconeogenesis | within category |
| Fructose Metabolism (Fructolysis) | → | Glycolysis | within category |
| Gluconeogenesis | → | Anaerobic Glycolysis / Lactic Acid Fermenta… | cross-category |
| Gluconeogenesis | → | Glycolysis | within category |
| Glycolysis | → | Anaerobic Glycolysis / Lactic Acid Fermenta… | cross-category |
| Glycolysis | → | Gluconeogenesis | within category |
| Pentose Phosphate Pathway (Oxidative and No… | → | Anaerobic Glycolysis / Lactic Acid Fermenta… | cross-category |
| Pentose Phosphate Pathway (Oxidative and No… | → | Gluconeogenesis | within category |
| Pentose Phosphate Pathway (Oxidative and No… | → | Glycolysis | within category |
Recent literature
Europe PMC · from cache · sorted by publication date
-
1
Metabolic engineering of <i>Vibrio natriegens</i> for the efficient biosynthesis of ergothioneine from sucrose using non-sterile fed-batch fermentation.
Liang X, Wang Y, Lv Y, Huang C, Huang Z, Wei J, Jiang S, Dong Z, Zhou Z, Lin M. · 2026-06-12
open access unreviewed -
2
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 -
3
Metabolic engineering of <i>Saccharomyces cerevisiae</i> for co-production of ergothioneine, salidroside and gadusol.
Zhang L, Xiao S, Wang D, Zhang P, Xu R, Hu L, Kang Z. · 2026-06-10
open access unreviewed -
4
Engineering of fructose-6-phosphate aldolase for one-carbon conversion to mannitol in a designed biotransformation system.
Wang D, Dong Q, Chen P, Zeng Y, Liu Y, Sun Y, Tan J, Yang J. · 2026-06-05
open access unreviewed -
5
Systems engineering of <i>Escherichia coli</i> for high-level hydroxytyrosol production.
Zuo J, Zhang S, Huang W, Liu J, Gao C, Hu GP, Song W, Li X, Wei W, Wu J, Liu L, Liu K, Xu N. · 2026-06-01
open access unreviewed -
6
The plasma metabolome and clinical features of patients with coeliac disease in Northwest China.
Zhang W, Wu X, Li Y, Huang Z, Hui W, Shi T, Lu W, Bai H, Wu Q, Wang M, Liu K, Xu L, Gao F, Wu J. · 2026-05-16
open access unreviewed -
7
Gut microbiota reshapes host energy metabolism to modulate depressive behaviors.
Lei P, Qi Z, Ma Q, Zhao B, Wen B, Jiang W, Xi W, Liu Y, Xun Y, Zhang S, Wang Y, Guo Y, Wang W, Ma X, Jia M, F… · 2026-04-23
open access unreviewed -
8
Human fecal transplantation from stunted children promotes metabolic dysfunction in mice fed with a high-fat and high-fructose corn syrup diet.
Valdez-Palomares F, Noriega LG, Reyes-Romo D, Canizales-Quinteros S, Nambo-Venegas R, Salinas-Lara C, Tovar-P… · 2026-04-02
cited 1× open access unreviewed -
9
Metabolic pathway analysis reveals hierarchical pentose sugar utilization and metabolic flexibility of <i>Bifidobacterium longum</i>.
Friess L, McAuliffe FM, Cotter PD, Shiver AL, Huang KC, de Jong A, van Sinderen D. · 2026-03-23
open access unreviewed -
10
The sugar transporter ZmSWEET11 participates in plant autophagy to respond to salt stress.
Xing Z, Tian Z, Chen T, Zang H, Wang J, Zheng S, Guo Y. · 2026-03-18
cited 1× open access unreviewed
External claims. These come from an index outside this database and are not checked against it. Treat them as leads.