Biochemistry • PPP · Glycolysis · Sugar metabolisms

Pentose Phosphate Pathway

The only reason your red blood cells haven't oxidized into rust.

Key Insight

Every RBC in your body is protected by one enzyme. One. No mitochondria, no TCA cycle, no other backup plan. Just G6PD, a handful of NADPH molecules, and a protein called glutathione standing between your blood cells and complete oxidative collapse. What happens when it's gone? You'll know it the hard way after a bowl of fava beans.

The Two Phases
Click either phase box to expand details. Click outputs to learn more.

Pentose Phosphate Pathway Overview

Oxidative Phase
IRREVERSIBLE · one-way commitment
  • 1 G6PD (rate-limiting) converts Glucose-6-Phosphate to 6-Phosphogluconate
  • 2 6-Phosphogluconate dehydrogenase continues oxidation
  • 3 Final product: Ribulose-5-Phosphate + 2 NADPH + CO2
Why irreversible? The first oxidation step (G6PD) is so energetically favorable it doesn't reverse. Once you commit G6P to this pathway, it doesn't come back to glycolysis.

Key board yield: 2 NADPH per glucose-6-phosphate entering. NADPH is NOT NADH. They do completely different jobs (NADH = energy; NADPH = protection/synthesis).

Tap to expand

2 NADPH
per G6P • tap for uses
NADPH fuels:
1. Glutathione reductase (GSSG → 2 GSH) · RBC defense
2. Fatty acid synthesis
3. Cholesterol synthesis
4. Cytochrome P450 reactions
5. Respiratory burst (NADPH-oxidase in neutrophils)
Ribose-5-P
nucleotide synthesis • tap
Ribose-5-Phosphate is the sugar backbone for ALL nucleotides (ATP, GTP, DNA, RNA). This is why rapidly dividing cells run the PPP hard.
CO2
released during oxidation
One carbon is lost as CO2 during the decarboxylation step (6-phosphogluconate → ribulose-5-P). This is how a 6-carbon sugar becomes a 5-carbon sugar.
Non-Oxidative Phase
REVERSIBLE · bidirectional traffic
  • 1 Transketolase (requires Thiamine/B1) shuffles 2- and 3-carbon units
  • 2 Transaldolase transfers 3-carbon units; bridges to glycolysis
  • 3 Produces Fructose-6-P and Glyceraldehyde-3-P (glycolysis intermediates)
Why reversible? The cell can run this phase in both directions depending on what it needs. Need more ribose? Go forward. Have extra ribose and need ATP? Run it backward into glycolysis.

Transketolase + B1: No thiamine = transketolase fails. Ribose intermediates back up. More importantly, thiamine is also required by PDH and alpha-KG dehydrogenase → their failure is the primary cause of ATP depletion and neuronal death in Wernicke's encephalopathy. Osmotic stress from sugar accumulation is a secondary/minor effect.

Tap to expand

Board Trap

The oxidative phase is irreversible. The non-oxidative phase is reversible. clinical medicine love to flip this. The clue is NADPH production: anything that makes NADPH is going forward and can't come back.

What NADPH Actually Does
Four jobs. If one fails, a cell pays for it in a specific, testable way.
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RBC Defense: The Glutathione Cycle

Red blood cells have no mitochondria, so they cannot run the TCA cycle or oxidative phosphorylation. Their only source of NADPH is the pentose phosphate pathway. And NADPH's most critical job in RBCs is keeping glutathione in its reduced form.


The cycle: Oxidative stress generates hydrogen peroxide (H2O2). Glutathione peroxidaseUses reduced glutathione (GSH) as the electron donor to neutralize H2O2 into water. Found in all cells but especially critical in RBCs. converts H2O2 to water using 2 GSH → GSSG. Then glutathione reductaseUses NADPH to reduce oxidized glutathione (GSSG) back to 2 GSH. This is the step that depends on the PPP. uses NADPH to regenerate 2 GSH from GSSG. Cycle complete.


Without G6PD: No NADPH → no glutathione regeneration → H2O2 oxidizes hemoglobin → hemoglobin denatures and precipitates into Heinz bodies → macrophages in the spleen "bite" them out, creating bite cells → the structurally compromised RBC cannot survive intact.


Important: G6PD deficiency often drives both extravascular and intravascular hemolysis at the same time, not one clean label.

Extravascular (the sequence above): splenic macrophages target Heinz-body damage and create bite cells; those weakened cells are then trapped and destroyed in the spleen.

Intravascular: severe oxidative stress from unchecked H2O2 also injures the RBC lipid bilayer directly, so red cells can rupture inside the circulation. That intravascular component is what produces free hemoglobin and the classic hemoglobinuria (dark/tea-colored urine).

Fatty Acid & Cholesterol Synthesis

Both fatty acid synthase and HMG-CoA reductase (the cholesterol synthesis rate-limiting enzyme) require NADPH as the electron donor for their reductive reactions. Liver and adrenal cortex cells run the PPP heavily for this reason.


Board cross-link: Statins block HMG-CoA reductase (cholesterol synthesis). Fatty acid synthesis happens in the cytosol and requires NADPH. The PPP is the primary NADPH supplier in the cytosol. Mitochondrial NADPH (from ISOCITRATE DEHYDROGENASE in the TCA cycle) stays in the mitochondria and can't cross the inner membrane.

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Cytochrome P450 & Drug Metabolism

Hepatic cytochrome P450 enzymes use NADPH to oxidize drugs, steroids, and xenobiotics. Each cycle consumes one NADPH. This is a very high-demand process in the liver and is why the liver has one of the highest PPP activity rates in the body.


Connection: Drugs metabolized by CYP450 (like primaquine, dapsone) generate reactive oxygen species as byproducts. In a normal person, NADPH handles this. In a G6PD-deficient person, NADPH is already insufficient under baseline conditions. Add a CYP450-activating drug and the RBC is overwhelmed.

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Respiratory Burst in Neutrophils

Neutrophils intentionally use NADPH to generate the oxidative burst · a controlled explosion of reactive oxygen species to kill bacteria. The enzyme NADPH-oxidase converts NADPH + O2 → superoxide (O2•−). Superoxide is then converted to other killing agents (H2O2, hypochlorous acid via MPO).


Disease: Chronic Granulomatous Disease (CGD) · NADPH-oxidase is non-functional (X-linked recessive, same inheritance as G6PD). Neutrophils engulf bacteria but cannot kill catalase-positive organisms. Classic presentation: recurrent Staphylococcus, Aspergillus, Serratia, Nocardia infections. Diagnosis: negative dihydrorhodamine (DHR) flow cytometry or nitroblue tetrazolium (NBT) test.

Board Trap

CGD and G6PD both affect NADPH but in opposite directions. G6PD = not enough NADPH (no defense for RBCs). CGD = NADPH-oxidase broken (neutrophils can't weaponize NADPH). Know which enzyme is affected in each.

G6PD Deficiency
400 million people worldwide. Most will never know. Until one trigger finds them.

Fast Facts

Feature Detail
Inheritance X-linked recessive · males affected, females carriers (can have mild disease if lyonization is skewed)
Population 400 million worldwide; highest in sub-Saharan Africa, Mediterranean, Middle East, Southeast Asia
Malaria connection G6PD-deficient RBCs are resistant to Plasmodium falciparum. This is why the allele is maintained at high frequency (heterozygote advantage, like sickle cell)
Baseline Most patients are completely asymptomatic at baseline. Enzymopathy requires a trigger to become clinically apparent
Type of hemolysis Both · typically occurs simultaneously.
Extravascular (dominant): Heinz bodies form → splenic macrophages "bite" them out → bite cells are trapped and destroyed in the spleen. Raises unconjugated bilirubin.
Intravascular: severe oxidative stress ruptures the RBC lipid bilayer directly inside the circulation → free Hb in plasma → hemoglobinuria (dark/tea-colored urine), low haptoglobin.
Memory Hook
The Bodyguard Rule: G6PD is the bouncer. He's calm until someone throws a punch.
G6PD deficiency is silent until oxidative stress hits. Think of it as a bouncer who looks fine standing there but the moment a drunk guy shows up (primaquine, dapsone, fava beans, infection), the bouncer is unexpectedly too weak to handle it. The "fight" = oxidative damage. The bouncer collapsing = RBCs lysing. The trick in clinical practice is that they'll show you a STABLE patient until they add that one trigger. That's your clue.

Hemolytic Triggers

Category Examples Trace It
Antimalarials Primaquine, chloroquine Generate reactive oxygen species via CYP450 metabolism; overwhelm depleted NADPH
Antibiotics/Antiparasitics Dapsone, nitrofurantoin, rasburicase Direct oxidant stress; dapsone especially potent trigger
Food Fava beans (favism) Vicine and convicine in fava beans generate H2O2 directly after gut absorption
Infection Any (bacterial or viral) Most common trigger overall. Fever + inflammatory cytokines + respiratory burst activation all generate oxidative stress
Other oxidants Naphthalene (mothballs), methylene blue Direct oxidant; naphthalene via skin contact, inhalation, or ingestion in children
Clinical Images · tap to expand
Heinz bodies in red blood cells under supravital staining
Heinz Bodies Supravital stain (crystal violet). Denatured hemoglobin precipitates appear as dark inclusions at the RBC membrane edge.
G6PD hemolytic crisis peripheral blood smear
G6PD Hemolytic Crisis MGG-stained peripheral blood smear showing poikilocytosis, blister cells, and bite cells during active hemolytic episode.
RBC morphology reference including bite cells and blister cells
RBC Morphology Reference Poikilocytes including bite cells (cells with membrane chunks removed), blister cells, and other hemolytic anemia morphologies.

Labs During Crisis

TestFindingWhy
Hemoglobin Decreased RBC destruction
Reticulocyte count Elevated Bone marrow compensating with new RBC production
LDH Elevated Released from lysed RBCs
Indirect bilirubin Elevated Heme breakdown product; splenic clearance of damaged cells raises unconjugated bilirubin even when intravascular lysis also contributes
Haptoglobin Decreased Binds free plasma hemoglobin; drops fastest when intravascular lysis dumps Hb into plasma (often alongside splenic clearance in G6PD crises)
Peripheral smear Heinz bodies, bite cells Denatured Hb precipitates; macrophage removal creates the "bite" appearance
G6PD enzyme activity Falsely normal during crisis See board trap below
Board Trap: Test Timing

Do NOT test G6PD enzyme activity during or immediately after a hemolytic crisis. During active hemolysis, the most G6PD-deficient RBCs are destroyed first. The surviving RBCs are the newest reticulocytes (which have more G6PD activity). Result: the blood sample looks like it has adequate G6PD. Test will be falsely normal. Wait 3 months after the crisis resolves.

Cross-Link: Transketolase & Wernicke's Encephalopathy

The non-oxidative phase requires transketolase, which is a thiamine-dependent enzymeThiamine (B1) pyrophosphate is the cofactor for transketolase. It also serves as a cofactor for pyruvate dehydrogenase and alpha-ketoglutarate dehydrogenase in the TCA cycle.. In a thiamine-deficient alcoholic, transketolase fails. 4-carbon and 7-carbon intermediates accumulate. These sugars draw water osmotically into cells, causing neuronal swelling, especially in the mammillary bodies and periaqueductal gray → Wernicke's encephalopathy (confusion, ataxia, ophthalmoplegia).


Critical protocol: Alcoholic patient presenting to the ED → give 100 mg thiamine BEFORE glucose. Giving glucose first accelerates thiamine consumption and can precipitate acute Wernicke's.

Board Traps
The six ways this topic kills scores. Read once. Never fall for them again.
Trap 1: Extravascular vs intravascular hemolysis

Do not force G6PD crises into a single bucket. Extravascular clearance happens when splenic macrophages attack Heinz-body: damaged RBCs (bite cells, splenic trapping). Intravascular lysis happens when oxidative injury breaches the membrane in the bloodstream → free hemoglobin drives hemoglobinuria. Real episodes commonly involve both mechanisms together.

Trap 2: Test timing

Testing G6PD during crisis gives a falsely NORMAL result. The most deficient cells are already gone. The reticulocytes that survive have more enzyme. Wait 3 months after crisis to test accurately.

Trap 3: Check G6PD before primaquine

clinical medicine love: patient with P. vivax malaria who is being started on primaquine (the only drug that clears liver hypnozoites). You MUST check G6PD status first. If deficient, primaquine triggers hemolysis. Alternative: tafenoquine or forgo hypnozoite clearance.

Trap 4: NADPH vs NADH

NADH = generated by glycolysis and TCA cycle = used in oxidative phosphorylation = energy. NADPH = generated by PPP = used for reductive biosynthesis and protection. These are NOT interchangeable. NADPH cannot enter the electron transport chain.

Trap 5: Reversibility

Oxidative phase = IRREVERSIBLE. Non-oxidative phase = REVERSIBLE. If you see a question asking which phase the cell can run backward to feed glycolysis, it's the non-oxidative phase.

Trap 6: Transketolase needs thiamine

If a question asks which PPP enzyme is affected by thiamine deficiency, the answer is TRANSKETOLASE (non-oxidative phase). G6PD does not need thiamine. Pyruvate dehydrogenase also needs thiamine but that's the TCA entry point, not PPP.

The Bodyguard
Drag each agent into the correct zone. G6PD-deficient patient. Which ones are dangerous?
G6PD Deficiency Trigger
Safe for G6PD Deficient
Decision Tree: When to Route Glucose to PPP?
Work through what the cell needs to find which phase it runs.
What does the cell need most?
clinical medicine Quiz
5 questions loaded. Shuffle for a fresh set. All original questions.
Medically reviewed by Kaitlyn Cocuzzo, MD and Fatima Ali, DO · Last updated July 1, 2026 at 10:03 PM ET
Bone Wizardry is an independent educational resource for visual learning in the medical sciences. It is not affiliated with, endorsed by, or sponsored by any licensing or examination board, contains no real or recalled examination questions, and does not guarantee any educational or examination outcome.
Know the Suspects
Tap each card to flip. Front = who they are. Back = the board-relevant detail.
Rate-Limiting Enzyme
G6PD
The entire RBC antioxidant defense runs through this one enzyme. No mitochondria, no backup plan. If G6PD fails, the cell oxidizes from the inside out.
Tap to flip
Board-Ready Facts

X-linked recessive. Glucose-6-phosphate + NADP+ yields 6-phosphogluconate + NADPH. That NADPH feeds glutathione reductase to keep GSH reduced. No G6PD = no NADPH = hemoglobin oxidizes = Heinz bodies = bite cells = splenic extravascular clearance plus direct membrane injury that can lyse cells intravascularly (free Hb → hemoglobinuria). Most common inherited enzymopathy worldwide (400 million). Mnemonic: the enzyme's job is in the name: it dehydrogenates G6P.

Non-Oxidative Phase Key
Transketolase
The enzyme that lets the cell run the PPP in reverse. It shuffles 2-carbon units between sugars and depends on a vitamin that alcoholics notoriously run out of.
Tap to flip
Board-Ready Facts

Requires thiamine (B1) pyrophosphate as a cofactor. Without B1, transketolase fails, sugar intermediates (sedoheptulose-7-P, erythrose-4-P) accumulate, cause osmotic neuronal swelling. This is Wernicke's encephalopathy: confusion, ataxia, ophthalmoplegia. Always give IV thiamine BEFORE IV glucose in an alcoholic. Transaldolase does NOT need thiamine.

The Product
Ribose-5-Phosphate
Every nucleotide in your body started here. DNA, RNA, ATP, GTP, NAD, FAD. All need ribose-5-phosphate. This is why proliferating cells run the PPP hard.
Tap to flip
Board-Ready Facts

End product of the oxidative phase. Can also be generated by the non-oxidative phase from glycolytic intermediates (reversible). High-demand tissues: bone marrow, skin, intestinal epithelium, tumors. Board setup: rapidly dividing cells run the PPP at high rates to make ribose-5-P for DNA replication. Key board distinction: ribose-5-P = nucleotides. NADPH = antioxidant and reductive biosynthesis. Same pathway, different products used for different jobs.

NADPH vs NADH
The Currency Trap
Two molecules with nearly identical names that do completely opposite jobs. clinical medicine will test whether you know which one protects RBCs and which one generates ATP.
Tap to flip
Board-Ready Facts

NADH: produced by glycolysis and TCA cycle. Donates electrons to Complex I of the ETC. Job = energy. NADPH: produced by PPP (and ISOCITRATE DH in mitochondria). Used for glutathione reductase, fatty acid synthesis, cholesterol synthesis, cytochrome P450 reactions, NADPH-oxidase in neutrophils. Job = protection and biosynthesis. NADPH cannot enter the ETC. They are NOT interchangeable. Same letters; entirely different jobs.

Oxidative vs Non-Oxidative
The Phase Trap
One phase is irreversible. One is reversible. clinical medicine flip this. If you memorize it backwards, you miss the question every single time.
Tap to flip
Board-Ready Facts

OXIDATIVE phase = IRREVERSIBLE. Produces 2 NADPH + CO2 + ribose-5-P. G6PD is the rate-limiting, irreversible step. NON-OXIDATIVE phase = REVERSIBLE. Transketolase + transaldolase. Can run forward (ribose-5-P to glycolytic intermediates) or backward (glycolytic intermediates to ribose-5-P). The bidirectionality is what makes it clinically useful: cells can switch which product they need based on demand.

Clinical Trigger Set
G6PD Deficiency Triggers
The patient was fine yesterday. Now they're in hemolytic crisis. Something changed. Know the trigger list cold because the exam will test it with a subtle history clue.
Tap to flip
Board-Ready Facts

Triggers: (1) Primaquine/chloroquine (CYP450 generates ROS). (2) Dapsone (potent oxidant). (3) Fava beans (vicine + convicine generate H2O2 in gut). (4) Infection: THE MOST COMMON trigger overall. (5) Naphthalene/mothballs. (6) Rasburicase (generates H2O2 from uric acid). SAFE: penicillin, hydroxychloroquine. Always check G6PD before prescribing primaquine. Do NOT test G6PD during crisis (falsely normal). Wait 3 months.

PPP Decision Tree
The cell faces a fork. Which branch does it run? Work through the logic.
What does the cell need right now?
NADPH need: Does the cell also need ribose-5-P?
Ribose-5-P need: Does the cell have excess glycolytic intermediates to convert?
Result: Run Both Phases

Run oxidative phase forward: G6P yields NADPH + ribose-5-P. If excess ribose-5-P is generated, run non-oxidative phase to recycle it into glycolytic intermediates. The cell gets NADPH for protection and ribose for nucleotide synthesis in the same cycle. Classic in rapidly dividing cells under oxidant stress.

Result: Run Oxidative Phase Only + Recycle via Non-Oxidative

Oxidative phase generates NADPH (the goal) and excess ribose-5-P. The non-oxidative phase runs in reverse, converting that ribose-5-P back into F6P and G3P for glycolysis. Net effect: extra NADPH, no ribose accumulation, no wasted carbon. This is the RBC protection mode under acute oxidant stress (infection, drugs).

Result: Non-Oxidative Phase Running Backward

F6P + G3P (glycolytic intermediates) enter the non-oxidative phase and are rearranged into ribose-5-P for nucleotide synthesis. No NADPH is generated. No CO2. Fully reversible. This is how rapidly dividing cells (bone marrow, intestinal epithelium) make massive amounts of nucleotides without necessarily running the full oxidative phase.

Result: Run Oxidative Phase Forward

G6P enters the oxidative phase. Produces 2 NADPH + CO2 + ribose-5-P. The ribose-5-P is the goal here; the NADPH is a bonus the cell will use for reductive biosynthesis. This is the normal daytime liver mode when hepatocytes are generating ribose for ATP synthesis and NADPH for fatty acid biosynthesis simultaneously.

Memory Hooks
Tap any highlighted term for the clinical hook. These are the ones that show up in clinical practice.

G6PDThink: "G6PD is the bodyguard of the RBC." Silent until a threat appears. The moment an oxidant drug, fava bean, or infection shows up, the missing enzyme gets exposed. Board setup: patient is well, then TRIGGER, then crisis. is the rate-limiting enzymeRate-limiting = irreversible = statin-equivalent in this pathway. The first committed step that can't turn back. G6PD commits glucose-6-phosphate to the PPP. Once you go this way, you don't come back. of the pentose phosphate pathway. It converts glucose-6-phosphateG6P is the entry molecule for the PPP. It is also the substrate for glycolysis (hexokinase). The cell decides at this branch point: energy pathway or protection/biosynthesis pathway. High NADP+ (low NADPH) signals the PPP to run faster. into 6-phosphogluconate while reducing NADP+ to NADPHThis is the key product. NADPH (not NADH) is the RBC's entire antioxidant currency. Think of NADPH as the rechargeable battery for glutathione. NADH is the battery for ATP. Same name, different plug, different device..

The oxidative phaseIRREVERSIBLE. One-way street. G6P goes in; NADPH + CO2 + ribose-5-P come out. Can never run backward. Key board test: "which phase is irreversible?" Answer: oxidative. Why? G6PD's step is exergonic and can't be reversed under physiological conditions. produces 2 NADPH and is irreversible. The non-oxidative phaseREVERSIBLE. Bidirectional traffic. Transketolase and transaldolase shuffle carbons back and forth between the PPP and glycolysis. The cell can make ribose-5-P from glycolytic intermediates OR convert excess ribose-5-P back into glycolytic intermediates. The direction depends on demand. is reversible and relies on transketolase (B1 dependent)Wernicke's connection: no thiamine = no transketolase function = sugars pile up = osmotic neuronal swelling. Classic alcoholic with confusion, ataxia, and lateral gaze palsy. Fix: IV thiamine BEFORE IV glucose. Glucose without thiamine accelerates B1 consumption and triggers acute Wernicke's. "Thiamine before sugar in every alcoholic." and transaldolaseThe non-thiamine enzyme of the non-oxidative phase. Transfers 3-carbon dihydroxyacetone groups between sugars. No vitamin cofactor. Board favorite: "which PPP enzyme needs thiamine? Transketolase." "Which one does NOT? Transaldolase." Two enzymes, one vitamin requirement, only one of them..

In a G6PD-deficient patient, an oxidant triggerThe list: primaquine, dapsone, fava beans, infection (most common), naphthalene/mothballs, rasburicase, nitrofurantoin, sulfa drugs. Safe list: penicillin, hydroxychloroquine. Board setup always includes either a drug name or fava beans in the social history. That's the clue. causes hemoglobin to denature into Heinz bodiesHeinz bodies = denatured hemoglobin precipitated against the RBC membrane. Visible on supravital stain (crystal violet, brilliant cresyl blue). NOT visible on routine Giemsa/Wright stain. This is why you need to specifically order a supravital stain to confirm G6PD-related hemolysis. Regular smear shows bite cells; supravital adds Heinz bodies., and splenic macrophages bite them out to create bite cellsAlso called "degmacytes." The macrophage in the spleen grabs the Heinz body stuck to the membrane and pinches it off, taking a chunk of the RBC with it. The remaining cell looks like someone took a bite out of it. This is the classic peripheral smear finding in G6PD hemolytic crisis. Compare: echinocytes = PK deficiency (chronic, no bite), bite cells = G6PD (episodic, oxidant-triggered)..

Testing G6PD during a crisis gives a falsely normal resultThe most G6PD-deficient cells are destroyed first. What's left are the youngest reticulocytes, which have more G6PD. So the blood sample that survived the crisis looks almost normal. Always retest 2-3 months after the event when the RBC population has returned to steady state. This is one of the most-tested timing traps in hematology clinical medicine.. G6PD-deficient RBCs are also malaria-resistantHeterozygote advantage: Plasmodium generates oxidant stress inside the RBC as it replicates. In a G6PD-deficient cell, this oxidative burden overwhelms the already-depleted NADPH, and the cell collapses around the parasite before it can complete its cycle. Same principle as sickle cell trait and malaria: the variant survives in a malaria-endemic environment because it costs less than it benefits. (heterozygote advantage), explaining the high allele frequency in malaria-endemic regions. The CGD connectionChronic Granulomatous Disease (CGD) affects NADPH oxidase, the enzyme in neutrophils that uses NADPH to generate superoxide (the oxidative burst). NBT test is negative (no superoxide produced = no color change). Classic bugs: Staphylococcus, Aspergillus, Serratia, Nocardia, Burkholderia. G6PD = insufficient NADPH (RBC protection fails). CGD = NADPH oxidase broken (can't weaponize NADPH). Same currency, different spender.: NADPH oxidase uses the same NADPH that G6PD makes, but in neutrophils to kill bacteria. NADPH oxidase deficiency = CGD.

Memory Hook: NADPH Dual Role
NADPH protects AND builds. Two different jobs, same molecule.
Protection mode: NADPH keeps glutathione (GSH) reduced via glutathione reductase. GSH neutralizes H2O2 via glutathione peroxidase. The RBC survives oxidant stress. Building mode: NADPH feeds fatty acid synthase and HMG-CoA reductase in the liver, adrenal cortex, and lactating mammary glands. These are the highest-PPP-activity tissues. Weaponized mode: NADPH oxidase in neutrophils converts NADPH + O2 into superoxide for the respiratory burst to kill bacteria. Three jobs. One molecule. The PPP is the source for all three.
Memory Hook: Wernicke Protocol
Alcoholic + AMS + glucose in IV? THIAMINE FIRST.
Wernicke's encephalopathy triad: confusion, ataxia, ophthalmoplegia (lateral gaze palsy). Caused by transketolase failure from thiamine deficiency. If you give IV glucose first, the liver tries to metabolize it and burns through the tiny remaining thiamine supply. This can acutely precipitate Wernicke's in a patient who was borderline. Protocol: IV thiamine 100mg BEFORE any glucose infusion. This is one of the few true "always do this first" rules in emergency medicine that also shows up in clinical practice regularly.
Memory Hook: High PPP Tissues
Liver, adrenal cortex, lactating mammary glands. What do they share?
All three synthesize products that REQUIRE NADPH as a reducing agent: fatty acids (liver, mammary) and steroid hormones (liver, adrenal). They run the PPP at maximal rates to supply that NADPH. Red blood cells are also high-PPP because it's their only antioxidant source. Bone marrow and intestinal epithelium run high PPP for ribose-5-P (nucleotide synthesis, rapidly dividing). The rule: PPP rate correlates with NADPH demand for biosynthesis.
Clinical Images
PPP pathology looks like this on the smear and on the patient. Tap any image to expand.
Heinz bodies on supravital staining in G6PD deficiency
Heinz Bodies (G6PD) Supravital stain. Denatured hemoglobin precipitates at RBC membrane. G6PD deficiency hallmark.
Peripheral blood smear during G6PD hemolytic crisis
G6PD Crisis Smear MGG stain. Blister cells, bite cells, polychromasia during active hemolytic crisis.
RBC poikilocyte morphology reference including bite cells
Poikilocyte Morphology Reference RBC shape atlas: bite cells, target cells, schistocytes. Each shape points to a different disease.
clinical medicine Quiz: Extended Set
8 new questions. Every wrong answer ends with a specific final rule.