Cholesterol Biosynthesis (Mevalonate Pathway)
- Compartment
- Cytosol + ER
- Main tissue
- Liver (mainly), intestine, adrenal, gonads, skin
- Rate-limiting
- HMG-CoA reductase (HMGCR)
- Steps
- 14
Reaction steps
In source order, 14 total
-
1
2 acetyl-CoA → acetoacetyl-CoA + CoA-SH
In Acetyl-CoA› Notes
Cytosolic acetoacetyl-CoA thiolase condenses two acetyl-CoA molecules. This reversible reaction supplies the C4 intermediate.
-
2
Acetoacetyl-CoA + acetyl-CoA + H2O → HMG-CoA + CoA-SH
› Notes
Cytosolic HMG-CoA synthase (HMGCS1) forms 3-hydroxy-3-methylglutaryl-CoA. It is distinct from mitochondrial HMGCS2 of ketogenesis.
-
3
HMG-CoA + 2 NADPH + 2 H+ → mevalonate + 2 NADP+ + CoA-SH
› Notes
ER-associated HMG-CoA reductase (HMGCR) performs a two-stage reduction via mevaldehyde. This is the rate-limiting, committed, and essentially irreversible step of cholesterol biosynthesis and the target of statins.
-
4
Mevalonate + ATP → 5-phosphomevalonate + ADP
› Notes
Mevalonate kinase phosphorylates the C5 hydroxyl group. ATP is required.
-
5
5-Phosphomevalonate + ATP → 5-pyrophosphomevalonate + ADP
› Notes
Phosphomevalonate kinase adds a second phosphate using ATP.
-
6
5-Pyrophosphomevalonate + ATP → 3-phospho-5-pyrophosphomevalonate + ADP
› Notes
Mevalonate-5-pyrophosphate decarboxylase phosphorylates the C3 hydroxyl. ATP is consumed; this preparatory phosphorylation enables the subsequent decarboxylation.
-
7
3-Phospho-5-pyrophosphomevalonate → isopentenyl pyrophosphate (IPP) + CO2 + Pi
› Notes
The same mevalonate-5-pyrophosphate decarboxylase catalyzes decarboxylation/elimination to form activated C5 isoprene unit IPP. Together, steps 4–7 consume three ATP per IPP.
-
8
IPP ⇌ dimethylallyl pyrophosphate (DMAPP)
› Notes
Isopentenyl pyrophosphate isomerase rearranges IPP to the allylic isomer DMAPP. No net ATP or NADPH is required.
-
9
DMAPP + IPP → geranyl pyrophosphate (GPP) + PPi
› Notes
Geranyl pyrophosphate synthase carries out a head-to-tail prenyl transfer to form the C10 isoprenoid. Pyrophosphate release helps drive the reaction.
-
10
GPP + IPP → farnesyl pyrophosphate (FPP) + PPi
› Notes
Farnesyl pyrophosphate synthase performs the next head-to-tail condensation, forming C15 FPP. FPP is also a branch-point precursor for ubiquinone, dolichol, and protein prenylation.
-
11
2 FPP + NADPH + H+ → squalene + 2 PPi + NADP+
› Notes
ER-associated squalene synthase makes the C30 hydrocarbon through presqualene pyrophosphate. This is the first committed step toward sterol formation after FPP; NADPH is required.
-
12
Squalene + O2 + NADPH + H+ → (S)-2,3-oxidosqualene + NADP+ + H2O
Squalene monooxygenase (squalene epoxidase) 1.14.14.17 ST-0102 Irreversible/directional NADP+ NADPH FAD O2 H2O› Notes
Squalene monooxygenase (squalene epoxidase), an FAD-dependent ER monooxygenase, uses NADPH and oxygen to form the epoxide. This is an important secondary regulatory point.
-
13
(S)-2,3-Oxidosqualene → lanosterol
Out Lanosterol› Notes
Lanosterol synthase (oxidosqualene cyclase) protonates and cyclizes the linear epoxide through a concerted carbocation cascade to generate the tetracyclic sterol nucleus. No ATP is directly consumed.
-
14
Lanosterol → zymosterol/intermediate sterols → cholesterol
↪ zymosterol/intermediate sterols → cholesterol
In Lanosterol› Notes
A series of ER enzymes removes three methyl groups, reduces double bonds, and rearranges the sterol skeleton. Key human enzymes include lanosterol 14α-demethylase (CYP51A1), sterol C4-methyl oxidase complex, sterol Δ14-reductase (TM7SF2/LBR), sterol Δ8–Δ7 isomerase (EBP), sterol C5-desaturase (SC5D), and 24-dehydrocholesterol reductase (DHCR24) or 7-dehydrocholesterol reductase (DHCR7), depending on the terminal route. These oxygenase/reductase reactions require molecular oxygen and reducing equivalents, chiefly NADPH; the overall pathway is effectively irreversible.
Showing all 14 steps.
Regulation
What speeds each enzyme up and what slows it down
HMG-CoA reductase
Low intracellular sterol via SREBP-2; dephosphorylation; insulin
Cholesterol/sterols (feedback, accelerated degradation); phosphorylation by AMPK; statins
Insulin activates and induces expression; glucagon and energy stress inhibit through phosphorylation; thyroid hormone can increase expression
Squalene monooxygenase
Low cholesterol; increased substrate squalene
Cholesterol-dependent degradation
Responds predominantly to sterol-dependent proteostasis, with indirect insulin/feeding effects
Squalene synthase
FPP availability
Sterol feedback and pathway-specific inhibitors
Fed-state/insulin signaling tends to favor expression; fasting suppresses lipogenic/sterol programs
LDL receptor (homeostatic uptake, not synthetic enzyme)
SREBP-2 during low cellular cholesterol
Intracellular cholesterol; PCSK9-mediated receptor degradation
Insulin can support receptor expression; hepatic sterol status is dominant
Overview
Cholesterol biosynthesis converts acetyl-CoA to cholesterol through the mevalonate pathway and provides precursors for steroid hormones, bile acids, vitamin D, and membrane sterols. Cholesterol is synthesized in many tissues, but liver is a quantitatively important site for whole-body cholesterol homeostasis. The pathway is highly energy- and NADPH-intensive and is controlled principally at HMG-CoA reductase.
Cellular location
Early reactions occur in the cytosol; HMG-CoA reductase is an integral protein of the smooth endoplasmic reticulum (ER) with a cytosolic catalytic domain. Squalene epoxidation, oxidosqualene cyclization, and later sterol remodeling occur on or in the smooth ER. Hepatocytes, enterocytes, adrenal cortex, gonads, and rapidly proliferating cells are active sites of synthesis.
Net energetics
Six isopentenyl units are needed for one cholesterol molecule; thus synthesis uses 18 acetyl-CoA and 18 ATP for conversion of six mevalonate molecules into six activated C5 units. The commonly quoted minimum reducing-power cost is 16 NADPH (12 at HMG-CoA reductase, one at squalene synthase, one at squalene monooxygenase, and additional reductive sterol-remodeling steps), with molecular oxygen required during sterol oxygenation. The exact net balance of NADPH and O2 across lanosterol-to-cholesterol remodeling depends on the detailed route and accounting convention, but cholesterol synthesis is unambiguously ATP- and NADPH-expensive.
Clinical significance
Cholesterol maintains membrane order and is the obligate precursor of steroid hormones, bile acids, and vitamin D. HMG-CoA reductase inhibition by statins lowers hepatic cholesterol, increases LDL-receptor expression, and thereby reduces circulating LDL cholesterol. Defects in late sterol synthesis cause severe developmental syndromes; for example, DHCR7 deficiency causes Smith–Lemli–Opitz syndrome with low cholesterol and elevated 7-dehydrocholesterol. Excess hepatic cholesterol and impaired LDL clearance contribute to atherosclerotic cardiovascular disease.
Recent literature
Live Europe PMC search
Europe PMC · from cache · sorted by publication date
-
1
Key molecular networks underlying retinol's biphasic effects on cell proliferation through multi-omics integrative analysis using genome-scale metabolic modeling.
He P, Xiang G, Yan Y, Zhong J, Liang Y, Shu P, Lu H. · 2026-06-19
unreviewed -
2
Proteomic Mendelian randomization and machine learning reveal causal plasma biomarkers in cardiorenal comorbidity.
Huang H, Liu W, Yan Y, Cao J, Wang J, Fang C. · 2026-06-16
open access unreviewed -
3
MITF-Driven melanoma plasticity as a core mechanism of therapy resistance: integrating microenvironmental signaling, mechanotransduction, and metabolic reprogramming.
Kisielewska M, Suwała S, Drąg-Zalesińska M, Rembiałkowska N. · 2026-06-15
open access unreviewed -
4
The "oral-gut axis" transmission of microorganisms in colorectal cancer: Insights from <i>Peptostreptococcus'</i> perspective.
Zhu Y, Luo S, Luo Y, Guo Z, Jiang Y, Ma Q, Fu X, Zheng C, You F, Kuang Q, Li X. · 2026-05-26
open access unreviewed -
5
Gut microbiota and diet in colorectal cancer: Converging determinants of carcinogenesis.
Thakur BK, Choudhury SR, Turpin W, Martin A. · 2026-05-04
open access unreviewed -
6
The gut microbiome-bile acid-FXR interplay: a pivotal axis in metabolic and gastrointestinal diseases.
Shou J, Fu T. · 2026-05-01
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
<i>Helicobacter pylori</i> activates histone lactylation to promote gastric cancer progression and immune evasion through the HAS2/c-MYC/PD-L1 axis.
Chen H, Wang Y, Wang Z, Su W, Shao Y, Zhang G, Wang Z, Ge Y, Zhou X. · 2026-04-22
open access unreviewed -
9
Emerging roles of ATP citrate lyase in kidney diseases: from pathogenic driver to therapeutic target.
Wei M, Tao M, Tan H, Jin Z, Yang Y, Xiao Z, Li G, Chen Y. · 2026-04-09
open access unreviewed -
10
Molecular mechanisms of folliculogenesis and oogenesis.
Ezz MA, Balboula AZ. · 2026-04-02
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.