Ketolysis (Ketone Body Utilization)
- Compartment
- Mitochondrial matrix
- Main tissue
- Brain, heart, skeletal muscle, renal cortex (NOT liver)
- Rate-limiting
- Succinyl-CoA:3-ketoacid CoA transferase (SCOT / OXCT1)
- Steps
- 4
Reaction steps
In source order, 4 total
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1
D-β-hydroxybutyrate + NAD+ → acetoacetate + NADH + H+
› Notes
Mitochondrial D-β-hydroxybutyrate dehydrogenase oxidizes D-β-hydroxybutyrate to acetoacetate. This produces one NADH, and the reaction direction in extrahepatic tissue is favored by the local mitochondrial redox state.
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2
Acetoacetate + succinyl-CoA → acetoacetyl-CoA + succinate
› Notes
Succinyl-CoA:3-ketoacid CoA transferase (SCOT; 3-oxoacid CoA-transferase, OXCT1) activates acetoacetate by transferring CoA from succinyl-CoA. This is the committed, functionally rate-determining step of ketone-body utilization; it bypasses succinyl-CoA synthetase and therefore sacrifices the GTP that would otherwise be generated in the TCA cycle. Liver lacks SCOT, preventing futile cycling.
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3
Acetoacetyl-CoA + CoA-SH → 2 acetyl-CoA
Mitochondrial thiolase (acetyl-CoA acetyltransferase, T2/ACAT1) 2.3.1.9 ST-0089 Irreversible/directional CoA-SHOut Acetyl-CoA› Notes
Mitochondrial thiolase cleaves acetoacetyl-CoA. The two acetyl-CoA molecules then enter the TCA cycle.
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4
2 acetyl-CoA → 4 CO2 through two TCA-cycle turns
In Acetyl-CoA› Notes
Citrate synthase, isocitrate dehydrogenase, α-ketoglutarate dehydrogenase, succinyl-CoA synthetase, succinate dehydrogenase, malate dehydrogenase, and associated reactions oxidize the acetyl groups. This downstream oxidation yields reducing equivalents and GTP, but the SCOT reaction has displaced one GTP equivalent per acetoacetate activated.
Showing all 4 steps.
Regulation
What speeds each enzyme up and what slows it down
SCOT/OXCT1
Acetoacetate availability; tissue mitochondrial oxidative capacity
No dominant acute allosteric inhibitor; absent in liver by tissue-specific expression
Primarily controlled by substrate availability and tissue expression rather than acute hormonal regulation
D-β-hydroxybutyrate dehydrogenase
NAD+ availability in the consuming tissue
High NADH/NAD+ ratio
Indirectly governed by mitochondrial redox state
TCA-cycle dehydrogenases
ADP, Ca2+ (muscle), NAD+
ATP, NADH, citrate/succinyl-CoA at relevant steps
Insulin promotes carbohydrate oxidation; fasting increases ketone supply, while use depends on tissue energy demand
Electron-transport chain
ADP and oxygen availability
Hypoxia; high ATP/low ADP
No direct ketolysis-specific hormonal switch
Overview
Ketolysis converts circulating acetoacetate or D-β-hydroxybutyrate into acetyl-CoA for oxidation in extrahepatic mitochondria. It is an important fuel pathway in cardiac muscle, oxidative skeletal muscle, renal cortex, and the brain after adaptation to prolonged fasting. The liver exports ketone bodies but cannot use them, preserving its role as a producer.
Cellular location
Ketolysis occurs in the mitochondrial matrix of extrahepatic tissues. It is absent from hepatocytes because they lack SCOT and absent from erythrocytes because they lack mitochondria. The brain increasingly uses ketones during prolonged fasting, although it still requires some glucose.
Net energetics
Oxidation of acetoacetate yields two acetyl-CoA (about 20 ATP by modern P/O accounting) but forfeits one GTP because SCOT consumes succinyl-CoA; its net yield is therefore approximately 19 ATP per acetoacetate. Oxidation of D-β-hydroxybutyrate yields the same 19 ATP plus approximately 2.5 ATP from the NADH formed in step 1, or approximately 21.5 ATP per D-β-hydroxybutyrate. Older ATP conventions give higher integer values; the key distinction is the loss of one GTP equivalent during acetoacetate activation.
Clinical significance
Ketolysis permits extrahepatic tissues to conserve glucose and, in the brain during prolonged fasting, substantially reduces dependence on amino-acid-derived gluconeogenesis. SCOT deficiency causes episodic ketoacidosis because ketone bodies cannot be efficiently consumed despite being produced; episodes often follow fasting or infection. Unlike DKA, which reflects excessive production in insulin deficiency, impaired ketolysis represents a defect in peripheral disposal. The absence of SCOT in liver is physiologically essential because hepatic consumption would waste the ketones it produces.
Recent literature
Live Europe PMC search
Europe PMC · from cache · sorted by publication date
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1
International Society of Sports Nutrition position stand: effects of dietary antioxidants on exercise and sports performance.
Gonzalez DE, Dickerson BL, Roberts BM, Kurtz JA, S Waldman H, Gonzalez AM, McAllister MJ, Heileson JL, Bloome… · 2026-02-17
open access unreviewed -
2
Renal Ketogenesis Protects Against Ischemic Kidney Injury.
Feola K, Venable AH, Rasouli M, Haley EG, Jadhav C, Monroy R, McCoy T, Huen SC. · 2026-01-21
cited 1× unreviewed -
3
Ketogenic diet mediates intestinal tumorigenesis through lipids not ketones.
Shay JES, Chi F, Tzouanas CN, Han S, Zhang X, Ten Hoeve J, Williams KJ, Neptun S, Sever T, Fuentes I, Bhatia … · 2026-07-15
unreviewed -
4
Conditional dependency of oncogenic KRAS in driving ketone body catabolism and pancreatic cancer growth.
Wang R, Li X, Zhang T, Chen Y, Liu J, Wang Y, Wang X, Cao L, Lu Z, Ma L. · 2026-07-14
unreviewed -
5
Cardioprotective Effects of 1,3 Butanediol in MASLD via Reversal of Cardiac Lipid Accumulation and Suppression of Cardiac Fibrosis
Badmus O, Parrow L, McGowen K, Bell L, Greer J, Cruz M, Hinds T, Stec D. · 2026-06-01
open access unreviewed -
6
Determinants of Colorectal Cancer: An Integrative Immunometabolic Framework Linking Biomarkers, Therapy, and the Diet-Microbiota Axis.
Aguiari G, Bianchi N, Franzese O. · 2026-06-13
open access unreviewed -
7
Hepatic ketogenic insufficiency blunts exercise-induced energy expenditure and alters mitochondrial proteins in skeletal muscle.
Davis XC, McCoin CS, Salathe SF, Franczak E, Allen JA, Queathem ED, Fulghum KL, Puchalska P, Crawford PA, Thy… · 2026-05-18
open access unreviewed -
8
Ketone body metabolism activates the immune response against <i>Staphylococcus aureus</i> infection by fueling the tricarboxylic acid cycle and affecting histone β-hydroxybutyrylation.
Cai H, Yue X, Chen Y, Chen X, Qiao R, Zhong G, Rong S, Zhang L, Li Z, Liao A, Xiong W, Guo C, Zhu Y, Deng K, … · 2026-04-03
open access unreviewed -
9
Identification of the regulatory elements and protein substrates of lysine acetoacetylation.
Fu Q, Nguyen T, Kumar B, Azadi P, Zheng YG. · 2026-05-14
open access unreviewed -
10
Endothelial energy failure as a therapeutic target in elderly strokes.
Nasoohi S, Ebrahimi F, Brown CM, Huber JD. · 2026-05-06
open access unreviewed
External claims. These come from an index outside this database and are not checked against it. Treat them as leads.