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🌀 Visceral Hypersensitivity IBS Pain Simulator

This simulation explores the mechanism of pain associated with visceral hypersensitivity in Irritable Bowel Syndrome (IBS). It helps users understand how heightened sensitivity to stimuli in the gastrointestinal tract can lead to symptoms such as abdominal pain and discomfort.

IBS Treatment Mechanism2DModerate60 FPS
visceral-hypersensitivity-ibs-pain-simulator ↗ Open standalone

Normal Bowel Sensation

Healthy gut nerves stay quiet during ordinary digestion.

  • 70–90%: Distension pain threshold (before conscious awareness)
  • ~100M: Visceral afferent neurons (gut sensory nerve fibers)
  • ~0%: Healthy pain reports (during normal peristalsis)
  • constant: Gut-brain signals (mostly stay subconscious)

Silent gut-brain signaling

Most digestive signals never reach conscious perception.

Mechanoreceptor function

Stretch receptors fire in proportion to bowel wall tension.

High pain threshold

Distension must be extreme before nerves signal pain.

Healthy volunteers rarely notice normal gas or peristalsis.

Sensitization Trigger

Infection, inflammation, or stress prime gut nerves to overreact.

  • ~10%: Post-infectious IBS risk (after acute gastroenteritis)
  • increased: Mast cell activation (near nerve endings)
  • released: Inflammatory mediators (histamine, serotonin, cytokines)
  • elevated: Stress-axis activation (cortisol and CRF signaling)

Post-infectious priming

A gut infection can sensitize nerves for months.

Inflammatory mediators

Mast cells release chemicals that excite nearby nerves.

Stress amplifies signaling

Chronic stress lowers the gut's tolerance to stretch.

Roughly one in ten gastroenteritis cases triggers lasting IBS.

Lowered Pain Threshold

Sensitized nerves now fire at normal, non-harmful distension.

  • ~30–40%: New pain threshold (down from ~80% baseline)
  • 2–3×: Nerve excitability (higher firing rate)
  • increased: TRPV1 channel density (heat / stretch receptor)
  • earlier: Symptom onset (with less bowel filling)

Peripheral sensitization

Nerve endings become abnormally excitable after injury.

Ion channel changes

More TRPV1 and ASIC channels lower firing thresholds.

Everyday triggers hurt

Ordinary gas or meals now provoke pain signals.

A 20% threshold drop can make routine digestion painful.

Central Amplification

Spinal cord and brain circuits boost the already-sensitized signal.

  • up to 3×: Spinal signal gain (dorsal horn wind-up)
  • impaired: Descending inhibition (less natural pain relief)
  • ACC, insula: Brain regions activated (seen on fMRI scans)
  • beyond stimulus: Pain persistence (wind-up phenomenon)

Spinal wind-up

Repeated signals make spinal neurons amplify further.

Weakened descending control

The brain's natural pain brakes work less effectively.

Cortical amplification

Pain-processing brain regions show heightened, prolonged activity.

fMRI shows IBS patients recruit more brain area per stimulus.

Visceral Hyperalgesia

Normal gas and distension now register as significant pain.

  • ~10%: IBS prevalence (of the global population)
  • up to 60%: Threshold drop vs healthy (on balloon distension testing)
  • meals, stress, gas: Common symptom triggers (everyday digestive events)
  • significant: Quality-of-life impact (chronic, unpredictable pain)

A vicious cycle

Pain itself raises stress, further sensitizing the gut.

Diagnostic marker

Lowered rectal balloon thresholds help define IBS in labs.

Treatment targets

Therapies aim to raise thresholds and calm nerve signaling.

Balloon distension testing remains the clinical gold-standard measure.
⚙ Under the hood

This simulation explores the mechanism of pain associated with visceral hypersensitivity in Irritable Bowel Syndrome (IBS). It helps users understand how heightened sensitivity to stimuli in the gastrointestinal tract can lead to symptoms such as abdominal pain and discomfort.

CanvasBiomedicine

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

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