Amino Acid & Nucleotide Metabolism

Amino Acid & Nucleotide Metabolism

1. Amino Acid Metabolism

Nitrogen Assimilation · Biosynthesis · Catabolism · Bioactive Derivatives

1. Amino Acid Metabolism

Living organisms vary widely in their capacity to synthesize the 20 standard amino acids required for protein synthesis. While plants and many microorganisms can produce all 20 standard amino acids from readily available inorganic precursors, mammals and other animals have lost this capacity for a subset of these molecules and must obtain them from the diet.

1.1 Amino Acid Synthesis and Nitrogen Assimilation

1.1.1 Essential versus Non-Essential Amino Acids

Mammals can synthesize only 12 non-essential amino acids, using carbon skeletons derived from common metabolic intermediates. The remaining 8 essential amino acids (plus two that are essential specifically during infancy) cannot be synthesized de novo and must be obtained preformed through the diet.

Essential amino acidsNon-essential amino acids
IsoleucineAlanine
LeucineProline
LysineAsparagine
MethionineAspartate
PhenylalanineCysteine
ThreonineGlutamate
TryptophanGlutamine
ValineGlycine
Arginine#Serine
Histidine#Tyrosine

# Amino acids that are essential specifically for infants.

1.1.2 Molecular Pathways of Nitrogen Assimilation

Nitrogen is a key component of amino acids, proteins, and nucleotides. In living systems, the ammonium ion (NH4+) is the ultimate source of nitrogen for all biomolecules. Ammonium is first incorporated into the amino acids glutamate and glutamine, which serve as the primary nitrogen donors for transamination reactions. There are two principal enzymatic pathways by which inorganic ammonium is assimilated into organic molecules.

1. Reductive amination of α-keto acids. This pathway represents a minor route in eukaryotes and is located within the mitochondrial matrix. The reaction is catalyzed by glutamate dehydrogenase, an unusual enzyme that does not discriminate between NADH and NADPH as reducing equivalents.

α-Ketoglutarate + NH4+ + NAD(P)H + H+ Glutamate Dehydrogenase L-Glutamate + NAD(P)+ + H2O

2. Formation of the amides of glutamic acid. Ammonium ions are also incorporated into cell metabolites by forming glutamine, the amide derivative of glutamate. This amidation reaction is catalyzed by glutamine synthetase (present in all organisms) and is driven by ATP hydrolysis.

Glutamate + NH4+ + ATP Glutamine Synthetase Glutamine + ADP + Pi

Mechanism: ATP participates directly in the reaction by phosphorylating the side-chain carboxyl group of glutamate to form an acyl-phosphate intermediate, which then undergoes nucleophilic attack by ammonia to yield glutamine.

  1. Phosphorylation: Glutamate + ATP → γ-Glutamyl phosphate (acyl-phosphate intermediate) + ADP
  2. Nucleophilic attack: γ-Glutamyl phosphate + NH4+ → Glutamine + Pi + H+
GOGAT pathway: in plants and many bacteria, after ammonium is incorporated into glutamine, the amide nitrogen is transferred to the 2-keto group of α-ketoglutarate. This reaction is catalyzed by glutamate synthase (GOGAT, glutamine:2-oxoglutarate aminotransferase), forming two molecules of glutamate.
Glutamine + α-Ketoglutarate + NADH + H+ Glutamate Synthase (GOGAT) 2 L-Glutamate + NAD+
1.1.3 Transamination and the Role of PLP

Once nitrogen is assimilated into glutamate, it is distributed to other carbon skeletons via transamination reactions. In these reactions, the α-amino group of an amino acid is transferred to the α-carbon of an acceptor α-keto acid to produce a new amino acid and a new α-keto acid.

Donor amino acid + Acceptor α-keto acid Aminotransferase New amino acid + New α-keto acid

Enzymes: these reversible reactions are catalyzed by aminotransferases (transaminases), found in both the cytoplasm and mitochondria.

The PLP cofactor: all aminotransferases require the coenzyme pyridoxal-5-phosphate (PLP), a derivative of pyridoxine (vitamin B6). PLP is covalently bound to the enzyme's active site via a Schiff base linkage, formed by condensation of its aldehyde group with the ε-amino group of a specific active-site lysine residue.

Enzyme–PLP Schiff Base (resting state) Amino Acid–PLP Schiff Base Pyridoxamine Phosphate Intermediate New Amino Acid–PLP Schiff Base + Donor amino acid (displaces Lys) releases Donor α-keto acid + Acceptor α-keto acid releases New amino acid

Figure: the transamination Schiff-base cycle. An incoming amino acid displaces the active-site lysine to form a new Schiff base with PLP, transferring its α-amino group to the coenzyme and releasing its carbon skeleton as an α-keto acid; this leaves PLP in its reduced pyridoxamine-phosphate form. An acceptor α-keto acid then reacts with pyridoxamine phosphate, gaining the amino group to form a new amino acid and regenerating the aldehyde form of PLP bound to the enzyme.

Aminotransferase specificity: eukaryotic cells express a variety of aminotransferases, distinguished by (1) the donor α-amino acid that donates the amino group, and (2) the acceptor α-keto acid that receives it. Although substrate preferences vary widely, most aminotransferases use the glutamate/α-ketoglutarate pair as their amino donor/acceptor pair — consequently, amino nitrogen from degraded amino acids is concentrated in the form of L-glutamate.
1.1.4 The Six Biosynthetic Families of Amino Acids

The carbon skeletons of all 20 standard amino acids are derived from commonly available metabolic intermediates of glycolysis, the citric acid cycle, or the pentose phosphate pathway. Based on their primary precursor molecule, amino acids are grouped into six biosynthetic families.

Glucose Ribose-5-P Glycerate-3-P PEP / Erythrose-4-P Pyruvate Oxaloacetate (via TCA cycle) α-Ketoglutarate (via TCA cycle) Histidine Family Histidine Aspartate Family Asp, Asn, Met, Thr, Lys Serine Family Serine, Glycine, Cysteine Pyruvate Family Alanine, Valine, Leucine, Isoleucine Glutamate Family Glu, Gln, Pro, Arg Aromatic Family Phe, Tyr, Trp via TCA via TCA

Figure: the six amino acid biosynthetic families. Glutamate family – derived from the TCA intermediate α-ketoglutarate (glutamate, glutamine, proline, arginine). Serine family – derived from the glycolytic intermediate glycerate-3-phosphate (serine, glycine, cysteine). Aspartate family – derived from the TCA intermediate oxaloacetate (aspartate, asparagine, lysine, methionine, threonine). Pyruvate family – derived from the glycolytic end-product pyruvate (alanine, valine, leucine, isoleucine). Aromatic family – derived from phosphoenolpyruvate (PEP) and the pentose phosphate pathway intermediate erythrose-4-phosphate (phenylalanine, tyrosine, tryptophan). Histidine family – derived from the pentose phosphate pathway intermediate ribose-5-phosphate (histidine).

1.2 Amino Acid Catabolism

In mammals, when amino acids are degraded, their amine groups and carbon skeletons are processed differently. Catabolism involves three common stages: removal of the α-amino group and its conversion into free ammonia; incorporation of ammonia into urea for safe excretion, or recycling for biosynthesis; and conversion of the remaining carbon skeletons (α-keto acids) into common metabolic intermediates that can be oxidized to CO2 and H2O or converted to glucose, acetyl-CoA, or ketone bodies.

Proteins (dietary / intracellular) Free Amino Acids α-Keto Acids NH4+ CO₂ + H₂O (TCA) Glucose / Acetyl-CoA / Ketones Urea Excretion Amino Acids & Nucleotides

Figure: overview of protein degradation. Amino acid carbon skeletons (α-keto acids) are oxidized via the TCA cycle or converted to glucose, acetyl-CoA, or ketone bodies; released ammonium is either excreted as urea or recycled into new amino acids and nucleotides.

1.2.1 Amino Acid Deamination

The removal of the α-amino group is achieved through the combined actions of transamination and oxidative deamination.

1. Transamination: transamination reactions funnel nitrogen from all free amino acids into L-glutamate. All amino acids except lysine, threonine, and proline participate in transamination during catabolism.

2. Oxidative deamination: glutamate is the only amino acid that undergoes oxidative deamination at an appreciable rate. This reaction occurs in the mitochondrial matrix and is catalyzed by glutamate dehydrogenase, releasing free ammonium ions and regenerating α-ketoglutarate.

L-Glutamate + NAD(P)+ + H2O Glutamate Dehydrogenase α-Ketoglutarate + NH4+ + NAD(P)H + H+
Allosteric regulation: glutamate dehydrogenase is tightly regulated to coordinate nitrogen excretion with cellular energy demands. It is allosterically inhibited by GTP and NADH (signaling abundant energy and reducing equivalents) and allosterically activated by ADP and NAD+ (signaling a low-energy state).
1.2.2 The Urea Cycle (Krebs–Henseleit Cycle)

Living organisms must safely eliminate excess nitrogen. Depending on water availability, species use different forms of nitrogen excretion: ammonotelic organisms excrete nitrogen directly as highly soluble but toxic ammonia (typical of aquatic animals); uricotelic organisms excrete nitrogen as insoluble, dry uric acid (birds and reptiles, minimizing water loss); ureotelic organisms excrete nitrogen as water-soluble, non-toxic urea (land mammals). In ureotelic organisms, urea is synthesized in the liver via the five-step urea cycle. The first two reactions occur in the mitochondrial matrix, and the remaining three take place in the cytosol.

MITOCHONDRIAL MATRIX CYTOSOL Ornithine Citrulline Argininosuccinate Arginine Ornithine Step 1–2: CPSI, OTC + HCO₃⁻ + NH₄⁺ + 2 ATP (via carbamoyl phosphate) exported to cytosol Step 3: ASS + Aspartate + ATP Step 4: ASL − Fumarate Step 5: Arginase Urea transported back to matrix

Figure: the urea cycle. The dashed boxes are not reaction steps — they mark the two cellular compartments the cycle spans. Step 1 – carbamoyl phosphate synthetase I (CPSI) condenses NH4+ and HCO3 (2 ATP) into carbamoyl phosphate. Step 2 – ornithine transcarbamoylase (OTC) transfers the carbamoyl group to ornithine, forming citrulline, exported to the cytosol. Step 3 – argininosuccinate synthetase (ASS) condenses citrulline with aspartate (ATP → AMP + PPi) to form argininosuccinate. Step 4 – argininosuccinate lyase (ASL) cleaves off fumarate, yielding arginine. Step 5 – arginase hydrolyzes arginine to release urea and regenerate ornithine, which is transported back into the mitochondria.

  1. Synthesis of carbamoyl phosphate (mitochondria): ammonium and bicarbonate are condensed to form carbamoyl phosphate, catalyzed by the rate-limiting enzyme carbamoyl phosphate synthetase I (CPSI). This reaction requires two ATP molecules and is irreversible.
    HCO3 + NH4+ + 2 ATP CPSI Carbamoyl phosphate + 2 ADP + Pi
  2. Synthesis of citrulline (mitochondria): carbamoyl phosphate transfers its carbamoyl group to ornithine to form citrulline, catalyzed by ornithine transcarbamoylase. Citrulline is then exported from the mitochondria into the cytosol.
  3. Synthesis of argininosuccinate (cytosol): citrulline condenses with aspartate (which supplies the second nitrogen atom for urea) in an ATP-dependent reaction catalyzed by argininosuccinate synthetase. This step converts ATP to AMP and pyrophosphate (PPi), consuming two high-energy phosphate equivalents.
    Citrulline + Aspartate + ATP Argininosuccinate Synthetase Argininosuccinate + AMP + PPi
  4. Cleavage of argininosuccinate (cytosol): argininosuccinate is cleaved by argininosuccinate lyase to yield free fumarate (which can enter the citric acid cycle or be used for glucose synthesis) and arginine.
  5. Cleavage of arginine to urea (cytosol): the cytosolic enzyme arginase hydrolytically cleaves arginine, releasing urea and regenerating ornithine, which is transported back into the mitochondria to sustain another turn of the cycle.

Stoichiometry and energetics: synthesizing one molecule of urea consumes four high-energy ATP equivalents (2 ATP for carbamoyl phosphate, and 1 ATP cleaved to AMP + PPi for argininosuccinate).

HCO3 + NH4+ + Aspartate + 3 ATP + H2O Urea + Fumarate + 2 ADP + AMP + PPi + 2 Pi
1.2.3 Hyperammonemia
Hyperammonemia: genetic defects in any of the five urea cycle enzymes impair ammonium ion clearance, leading to an elevated concentration of ammonium in the blood. Ammonia is highly toxic to the central nervous system; intoxication causes lethargy and tremors, slurred speech and blurred vision, protein-induced vomiting, and coma or death.
1.2.4 Regulation of the Urea Cycle

Long-term (genetic) regulation: high-protein diets or prolonged starvation increase the rate of amino acid catabolism, generating excess nitrogen. Under these conditions, the synthesis of all five urea cycle enzymes is transcriptionally upregulated, showing 20-fold or greater increases in enzyme concentration.

Short-term (allosteric) regulation: carbamoyl phosphate synthetase I (CPSI) is relatively inactive without its obligate allosteric activator, N-acetylglutamate, synthesized from acetyl-CoA and glutamate.

Acetyl-CoA + Glutamate N-Acetylglutamate Synthase N-Acetylglutamate + CoA
An increase in amino acid breakdown rates raises intracellular glutamate levels, stimulating N-acetylglutamate synthesis and activating CPSI to accelerate the cycle.
1.2.5 Catabolism of Carbon Skeletons

The carbon skeletons of the 20 standard amino acids are degraded into seven primary metabolic products: acetyl-CoA, acetoacetyl-CoA, pyruvate, α-ketoglutarate, succinyl-CoA, fumarate, and oxaloacetate. Based on their degradative end products, amino acids are classified into two metabolic categories: glucogenic amino acids, degraded to pyruvate or citric acid cycle intermediates (precursors for glucose synthesis via gluconeogenesis), and ketogenic amino acids, degraded to acetyl-CoA or acetoacetyl-CoA (used to synthesize fatty acids or ketone bodies).

Glucogenic Pathways Ketogenic Pathways Pyruvate Oxaloacetate Succinyl-CoA Fumarate α-Ketoglutarate Acetyl-CoA Acetoacetyl-CoAAla, Ser, Gly, Cys, Thr Asp, Asn Met, Ile, Val Arg, Pro, His, Glu, Gln Lys, Trp, Tyr, Phe, Leu

Figure: metabolic destinations of amino acid carbon skeletons. Amino acids feeding pyruvate or TCA-cycle intermediates are glucogenic; those feeding the two ketone-body precursors, acetyl-CoA and acetoacetyl-CoA, are ketogenic.

Exclusively ketogenic: lysine and leucine are the only two amino acids that are solely ketogenic and cannot support net glucose synthesis.
Dual-fate amino acids: five amino acids — tryptophan, phenylalanine, tyrosine, threonine, and isoleucine — are both glucogenic and ketogenic.
1.2.6 Hereditary Disorders of Amino Acid Catabolism

Enzyme deficiencies in amino acid degradation pathways lead to severe clinical pathologies due to accumulation of toxic intermediates.

ConditionDefective processDefective enzymeMajor symptoms
Phenylketonuria (PKU)Conversion of phenylalanine to tyrosinePhenylalanine hydroxylaseAccumulation of phenylalanine in body fluids; neonatal vomiting, mental retardation.
AlkaptonuriaTyrosine degradationHomogentisate 1,2-dioxygenaseHomogentisic acid accumulates; excreted urine oxidizes and polymerizes on standing, turning dark.
AlbinismMelanin synthesis from tyrosineTyrosinase (tyrosine 3-monooxygenase)Complete lack of pigmentation in hair and skin; white hair and pink skin.
Maple Syrup Urine DiseaseBranched-chain amino acid degradation (Leu, Ile, Val)Branched-chain α-keto acid dehydrogenase complexSevere neonatal vomiting, convulsions, mental retardation, early death.
HomocystinuriaMethionine degradationCystathionine β-synthaseFaulty bone development, mental retardation.
Phenylalanine Tyrosine Phenylketonuria — blocked Phenylalanine hydroxylase p-Hydroxyphenylpyruvate Homogentisic Acid Alkaptonuria — blocked Homogentisate oxidase Fumarate + Acetoacetate DOPA Melanin Albinism — blocked Tyrosinase

Figure: phenylalanine and tyrosine pathway blocks. Enzyme deficiencies at three points in this pathway produce three distinct hereditary disorders: phenylketonuria, albinism, and alkaptonuria. The red dashed connector marked ⊘ points from each blocked step to the disorder it causes.

1.3 Bioactive Molecules Derived from Amino Acids

Amino acids serve as essential precursors for several hormones, neurotransmitters, and specialized structural molecules.

Precursor amino acidBioactive product(s)
TryptophanAuxin (indole-3-acetic acid) & Serotonin
TyrosineCatecholamines (dopamine, norepinephrine, epinephrine) & lignin
GlutamateGABA (γ-aminobutyrate)
HistidineHistamine
ArginineNitric oxide (NO) & creatine (with glycine)
GlycinePorphyrins (heme) & glutathione (with glutamate & cysteine)
1.3.1 Specific Synthesis Pathways
TryptophanAminotransferase Indole-3-pyruvateDecarboxylase Indole-3-acetate (Auxin) + CO2
TyrosineTyrosine Hydroxylase DOPADecarboxylase Dopamine Norepinephrine Epinephrine
GlutamateGlutamate Decarboxylase γ-Aminobutyrate (GABA) + CO2
TryptophanTryptophan Hydroxylase 5-HydroxytryptophanDecarboxylase Serotonin + CO2
HistidineHistidine Decarboxylase Histamine + CO2
ArginineNitric Oxide Synthase HydroxyarginineNitric Oxide Synthase Citrulline + NO
Porphyrins (heme): heme, chlorophylls, phycobilins, and cobalamins contain a tetrapyrrole ring constructed from δ-aminolevulinic acid (ALA). In animals, this is synthesized via the succinate–glycine pathway, where all nitrogen atoms of heme are derived from glycine, and all carbons are derived from succinate and glycine. Biosynthesis proceeds in three stages: synthesis of the substituted pyrrole porphobilinogen from ALA, condensation of four porphobilinogens to yield porphyrinogen, and side-chain modification / iron insertion to produce heme.

2. Nucleotide Metabolism

De Novo Biosynthesis · Salvage Pathways · Deoxyribonucleotides · Catabolic Disorders

2. Nucleotide Metabolism

Nucleotides are phosphate esters of a pentose sugar (ribose or deoxyribose) linked to a purine or pyrimidine base. They are synthesized via two distinct routes: de novo pathways, which build nucleotides anew from simpler precursors, and salvage pathways, which recover preformed bases released during nucleic acid degradation.

The sugar component of nucleotides can be catabolized for energy, but the nitrogenous bases themselves are not used as energy sources.

2.1 De Novo Purine Nucleotide Biosynthesis

Unlike pyrimidines, where the base is assembled before attachment to ribose, the purine ring is assembled piece-by-piece directly onto a ribose ring, starting with 5-phosphoribosyl-1-pyrophosphate (PRPP) as a foundation.

N1 C2 N3 C4 C5 C6 N7 C8 N9 Ribose-5-Phosphate Atom origins ① N1 — Aspartate ② N3, N9 — Glutamine (amide N) ③ C2, C8 — N10-Formyl-THF ④ C4, C5, N7 — Glycine ⑤ C6 — CO₂

Figure: origins of the purine ring atoms. The nine ring atoms of the purine base are contributed by five distinct sources — aspartate, glutamine, glycine, CO2, and N10-formyltetrahydrofolate — assembled directly onto a ribose-5-phosphate foundation (as PRPP).

2.1.1 The Ten-Step Synthetic Pathway to IMP
  1. Acquisition of N9: pyrophosphate on PRPP is displaced by ammonia from glutamine to yield 5-phosphoribosyl-1-amine, catalyzed by amidophosphoribosyltransferase — the committed step of the pathway.
    Chemotherapeutic inhibition: the glutamine analogues azaserine and acivicin inhibit this committed step and are used as antitumor agents.
  2. Acquisition of C4, C5, and N7: glycine condenses with 5-phosphoribosyl-1-amine in an ATP-dependent reaction catalyzed by glycinamide ribonucleotide synthetase (GAR synthetase), producing glycinamide ribonucleotide (GAR).
  3. Acquisition of C8: the free amino group of GAR is formylated by N10-formyltetrahydrofolate (catalyzed by GAR transformylase) to yield formylglycinamide ribonucleotide (FGAR).
  4. Acquisition of N3: glutamine transfers its amide group to FGAR in an ATP-dependent reaction catalyzed by FGAR amidotransferase (FGAM synthetase) to yield formylglycinamidine ribonucleotide (FGAM).
  5. Imidazole ring closure: FGAM undergoes ATP-driven cyclisation, catalyzed by AIR synthetase, to form the five-membered imidazole ring of 5-aminoimidazole ribonucleotide (AIR).
  6. Acquisition of C6: carbon dioxide is added to the C4 position of the imidazole ring by AIR carboxylase in an ATP-independent reaction, yielding 4-carboxy-5-aminoimidazole ribonucleotide (CAIR).
  7. Acquisition of N1: aspartate condenses with CAIR in an ATP-dependent reaction catalyzed by SAICAR synthetase, yielding N-succinyl-5-aminoimidazole-4-carboxamide ribonucleotide (SAICAR).
  8. Elimination of fumarate: adenylosuccinate lyase cleaves the four carbon atoms of aspartate from SAICAR as fumarate, leaving 5-aminoimidazole-4-carboxamide ribonucleotide (AICAR).
  9. Acquisition of C2: AICAR transformylase adds a formyl group from N10-formyl-THF to the amino group of AICAR, forming N-formylaminoimidazole-4-carboxamide ribonucleotide (FAICAR).
  10. Cyclisation to IMP: IMP cyclohydrolase (inosinicase) catalyzes dehydration and ring closure of FAICAR to yield the parent purine nucleotide, inosine monophosphate (IMP).
2.1.2 Branching of IMP to AMP and GMP

IMP is converted into either AMP or GMP through two-step branching pathways, regulated by a reciprocal energy requirement: AMP synthesis requires GTP, whereas GMP synthesis requires ATP.

IMP Adenylosuccinate Synthetase (+Asp, GTP) IMP Dehydrogenase (generates NADH) Adenylosuccinate XMP Adenylosuccinate Lyase (releases fumarate) XMP-Glutamine Amidotransferase (+Gln, ATP) AMP GMP
2.1.3 Nucleoside Triphosphate Synthesis

Base-specific kinases convert monophosphates to diphosphates, and nucleoside diphosphate kinase converts diphosphates to triphosphates.

AMP + ATPAdenylate Kinase2 ADP
GMP + ATPGuanylate KinaseGDP + ADP
NDP + ATPNucleoside Diphosphate KinaseNTP + ADP

2.2 De Novo Pyrimidine Nucleotide Biosynthesis

In pyrimidine biosynthesis, the six-membered pyrimidine ring is synthesized first and then attached to PRPP. The atoms of the pyrimidine ring are contributed by aspartic acid (N1, C4, C5, and C6) and carbamoyl phosphate (C2 and N3).

N1 C2 N3 C4 C5 C6 ① N1, C4, C5, C6 — Aspartate ② C2, N3 — Carbamoyl Phosphate

Figure: origins of the pyrimidine ring atoms. Four ring atoms derive from aspartate and two from carbamoyl phosphate, the two building blocks condensed in step 2 of pyrimidine synthesis.

2.2.1 The Six-Step Synthetic Pathway to UMP
  1. Synthesis of carbamoyl phosphate: bicarbonate and glutamine are condensed to form carbamoyl phosphate, catalyzed by the cytosolic enzyme carbamoyl phosphate synthetase II (CPSII). This reaction consumes two ATP molecules.
    HCO3 + Glutamine + H2O + 2 ATP CPSII Carbamoyl phosphate + Glutamate + 2 ADP + Pi
  2. Synthesis of carbamoyl aspartate: carbamoyl phosphate condenses with aspartate, catalyzed by aspartate transcarbamoylase (ATCase).
  3. Ring closure: dihydroorotase catalyzes an intramolecular condensation of carbamoyl aspartate to yield dihydroorotate.
  4. Oxidation: dihydroorotate is oxidized to orotate by dihydroorotate dehydrogenase, an enzyme located on the outer surface of the inner mitochondrial membrane.
  5. Acquisition of ribose: orotate phosphoribosyltransferase couples orotate with PRPP to yield orotidylate (OMP), driven by pyrophosphate (PPi) hydrolysis, which locks the nucleotide in the β configuration.
  6. Decarboxylation: OMP decarboxylase decarboxylates OMP to produce uridylate (UMP).
2.2.2 Synthesis of CTP from UMP

UMP is phosphorylated to UDP and then to UTP. CTP synthetase (a glutamine amidotransferase) then converts UTP to CTP by replacing a carbonyl group with an amino group, driven by ATP hydrolysis.

UTP + Glutamine + ATP CTP Synthetase CTP + Glutamate + ADP + Pi
Orotate OMP UMP UDP UTP CTP

Figure: pyrimidine nucleotide synthesis, orotate to CTP. Orotate → OMP (orotate phosphoribosyltransferase) → UMP (OMP decarboxylase) → UDP → UTP (kinases) → CTP (CTP synthetase, via CTP synthetase).

2.3 Formation of Deoxyribonucleotides

DNA nucleotides differ from RNA nucleotides by containing 2′-deoxyribose residues instead of ribose, and thymine instead of uracil.

2.3.1 Ribonucleotide Reductase (RNR)

Deoxyribonucleotides are synthesized directly from their corresponding ribonucleoside diphosphates (NDPs) by reducing the C2′ position, catalyzed by ribonucleotide reductase. This reduction requires electrons delivered from NADPH via the regulatory carrier protein thioredoxin, whose active sulfhydryl (–SH) groups reduce the NDP substrate, forming a disulfide (S–S) bond. The active, reduced form of thioredoxin is regenerated by thioredoxin reductase using NADPH.

Ribonucleoside Diphosphate (NDP) Deoxynucleoside Diphosphate (dNDP) Ribonucleotide Reductase Thioredoxin–SH (reduced, active) Thioredoxin–S–S (oxidized) provides electrons S–S bond formed Thioredoxin Reductase (regenerated by NADPH)

Figure: the ribonucleotide reductase / thioredoxin redox cycle. Ribonucleotide reductase oxidizes thioredoxin–SH to thioredoxin–S–S while reducing NDP to dNDP; thioredoxin reductase then regenerates thioredoxin–SH at the expense of NADPH.

2.3.2 Synthesis of dTMP

Thymidylate (dTMP) is synthesized by methylating dUMP, a reaction catalyzed by thymidylate synthase.

dUMP + N5,N10-Methylenetetrahydrofolate Thymidylate Synthase dTMP + Dihydrofolate (DHF)
2.3.3 Chemotherapeutic Inhibition of dTMP Synthesis

Because rapidly dividing cancer cells require large pools of dTMP for DNA synthesis, this pathway is a common chemotherapeutic target.

dUMP dTMP Thymidylate Synthase Blocked by Fluorouracil (as FdUMP) Dihydrofolate (DHF) Tetrahydrofolate (THF) Dihydrofolate Reductase Blocked by Methotrexate / Aminopterin regenerates N⁵,N¹⁰- methylene-THF

Figure: the thymidylate–folate cycle and its chemotherapeutic blocks. Thymidylate synthase methylates dUMP to dTMP, oxidizing N5,N10-methylenetetrahydrofolate to dihydrofolate (DHF); dihydrofolate reductase (DHFR) then reduces DHF back to the active carrier tetrahydrofolate (THF) using NADPH. Fluorouracil (as FdUMP) is a suicide inhibitor of thymidylate synthase; methotrexate and aminopterin are competitive inhibitors of DHFR — both halt dTMP synthesis.

2.4 Nucleotide Salvage Pathways

Salvage pathways recycle free purine and pyrimidine bases released during nucleic acid degradation, attaching them to PRPP to form nucleotides.

2.4.1 Purine Salvage
Adenine + PRPPAPRTAMP + PPi
Guanine + PRPPHGPRTGMP + PPi
Hypoxanthine + PRPPHGPRTIMP + PPi
2.4.2 Pyrimidine Salvage

Free thymine is salvaged in two steps:

Thymine + Deoxyribose-1-phosphateThymidine PhosphorylaseThymidine + Pi
Thymidine + ATPThymidine KinaseTMP + ADP

2.5 Nucleotide Degradation and Associated Disorders

2.5.1 Degradation of Purines

Purine nucleotides are sequentially degraded to yield uric acid as the final excretion product in humans. Mammals other than primates further oxidize uric acid to allantoin.

AMP GMP AMP Deaminase (−NH₃) IMP 5′-Nucleotidase Guanosine 5′-Nucleotidase Inosine Phosphorylase Guanine Phosphorylase Hypoxanthine Guanase (−NH₃) Xanthine Xanthine Oxidase Xanthine same molecule Xanthine Oxidase Uric Acid (urate excretion)

Figure: purine catabolism. AMP and GMP converge on a shared route through inosine/guanosine, hypoxanthine/guanine, and xanthine, with xanthine oxidase catalyzing the final two oxidation steps to uric acid. The dashed line is not a reaction step — it marks that the xanthine produced from hypoxanthine (left) and the xanthine produced from guanine (right) are the same molecule, both feeding the final oxidation to uric acid.

2.5.2 Clinical Disorders of Purine Degradation
Adenosine deaminase (ADA) deficiency: leads to severe combined immunodeficiency (SCID), where T- and B-lymphocytes fail to develop properly. The absence of ADA causes a high concentration of cellular dATP, which strongly inhibits ribonucleotide reductase, halting synthesis of all other dNTPs in T-lymphocytes and preventing DNA replication.
Gout: elevated serum urate leads to gout, where sodium urate crystals precipitate in the joints, causing severe inflammation. Gout is treated with allopurinol, a structural analogue of hypoxanthine that competitively inhibits xanthine oxidase (a molybdenum- and iron-containing flavoprotein), halting uric acid synthesis.
Lesch–Nyhan syndrome: caused by a complete deficiency of HGPRT. The absence of this salvage pathway leads to accumulation of PRPP, causing a marked increase in de novo purine synthesis and overproduction of urate. Symptoms include compulsive, self-destructive behaviour, mental retardation, and severe gout.
2.5.3 Degradation of Pyrimidines

Unlike the insoluble purine ring, the pyrimidine ring is cleaved and degraded into highly water-soluble structures that are easily excreted.

Cytosine Uracil Dihydrouracil N-Carbamoyl-β-alanine β-Alanine + CO2 + NH3
Thymine Dihydrothymine N-Carbamoyl-β-aminoisobutyrate β-Aminoisobutyrate + CO2 + NH3

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