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🔬 Gut Permeability Test Lactulose-Mannitol Simulator

This simulation replicates the lactulose-mannitol test to assess intestinal permeability and helps users understand its clinical applications in diagnosing various gastrointestinal conditions.

Leaky Gut Intestinal Permeability Science2DModerate60 FPS
gut-permeability-lactulose-mannitol-test-simulator ↗ Open standalone

Dual-Sugar Ingestion

Two inert sugars probe gut barrier integrity at once.

  • 342 Da: Lactulose size (disaccharide, non-absorbed)
  • 182 Da: Mannitol size (small monosaccharide)
  • 10g / 5g: Typical dose (lactulose / mannitol)
  • 0–6 h: Urine collected over (timed window)

Why two sugars

Paired probes control for gastric emptying and renal handling.

Neither sugar is metabolized

Both pass unchanged into urine, only gut wall gates entry.

Non-metabolized markers isolate barrier function alone.

Baseline void

Patient empties bladder before dosing to zero background.

Mannitol Absorption

Mannitol slips through pores in the cell membrane itself.

  • Transcellular: Absorption route (through cell, not between)
  • 14–24%: Healthy recovery (of ingested dose)
  • ~0.4 nm: Molecular radius (fits membrane pores)
  • Yes: Independent of junctions (unaffected by leaky gut)

Transcellular pathway

Small mannitol diffuses directly through epithelial cell pores.

Internal control

Mannitol recovery reflects mucosal surface area, not leakiness.

Low mannitol recovery flags villous atrophy, not permeability.

Normalizes the ratio

Dividing lactulose by mannitol cancels out intake variability.

Lactulose Exclusion — Normal Barrier

Tight junctions seal the paracellular space against big molecules.

  • Paracellular: Absorption route (between cells, junction-gated)
  • <0.5%: Healthy recovery (of ingested dose)
  • ~0.5 nm: Molecular radius (too large for tight pores)
  • Claudins, occludin: Junction proteins (seal intercellular space)

Tight junction seal

Claudin strands clamp adjacent cells, blocking large solutes.

Minimal leak in health

Only trace lactulose crosses through rare junction pores.

Healthy gut keeps lactulose recovery near zero.

Ratio stays low

Low lactulose plus normal mannitol yields a low L:M ratio.

Increased Permeability Scenario

Widened junctions let large lactulose leak through abnormally.

  • Crohn's, celiac: Trigger examples (inflammation, NSAIDs)
  • >0.5–1%+: Elevated recovery (of ingested dose)
  • Widened gaps: Junction change (claudin disassembly)
  • Barrier compromise: Clinical signal (precedes symptoms)

Junction disruption

Inflammation loosens claudin strands, opening paracellular gaps.

Lactulose surge

Large sugar now slips through where it normally could not.

Rising lactulose recovery signals a compromised barrier.

Mannitol unaffected

Small-molecule route stays open regardless of junction state.

Urinary Ratio Calculated

The lactulose:mannitol ratio quantifies gut barrier integrity.

  • %Lac ÷ %Man: Formula (urinary recovery ratio)
  • <0.03: Normal ratio (intact barrier)
  • >0.03–0.07+: Elevated ratio (increased permeability)
  • 5–6 h: Sample window (urine collection complete)

Ratio cancels confounders

Dividing corrects for gastric emptying and renal clearance.

Clinical use

Flags leaky gut in IBD, celiac disease, critical illness.

A single urine collection quantifies barrier function non-invasively.

Limitations

Renal function and gut transit time can skew results.

⚙ Under the hood

This simulation replicates the lactulose-mannitol test to assess intestinal permeability and helps users understand its clinical applications in diagnosing various gastrointestinal conditions.

CanvasBiomedicine

2D · HTML5 Canvas 2D · 60 FPS target · runs fully client-side, no install

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