During cell division, duplicated chromosomes must be evenly distributed to daughter cells.
This requires sister chromatids to attach to microtubules from opposite spindle poles
(bi-orientation) before they can be separated at anaphase.
Spindle Assembly Checkpoint (SAC)
The SAC monitors kinetochore-microtubule attachments and prevents anaphase until all
chromosomes are properly bi-oriented. Unattached or incorrectly attached kinetochores
generate a "wait" signal that inhibits the anaphase-promoting complex (APC/C).
Attachment Types
Amphitelic (correct): Sister kinetochores attached to opposite poles
Syntelic: Both sisters attached to the same pole
Merotelic: One kinetochore attached to both poles
Monotelic: Only one kinetochore attached
Aurora B Error Correction
Aurora B kinase phosphorylates kinetochore substrates to destabilize incorrect attachments.
The key is tension: correct bi-oriented attachments are under tension (sister chromatids
pulled in opposite directions), which spatially separates substrates from Aurora B. Incorrect
attachments lack tension, keeping substrates in the Aurora B activity zone.
Consequences of Errors
Uncorrected attachment errors lead to chromosome missegregation and aneuploidy (abnormal
chromosome number). Aneuploidy is a hallmark of cancer and causes developmental disorders
like Down syndrome (trisomy 21).
📊 Chromosome Segregation
Life operates through precise molecular machinery. This simulation models biochemical reactions and molecular interactions at the cellular level.
About This Simulation
Implement mitotic spindle attachment and error correction for proper segregation.
Key Concepts
Enzyme Kinetics: Enzymes catalyze reactions following Michaelis-Menten kinetics, with rates determined by substrate concentration and enzyme affinity (Km).
Lock and Key vs Induced Fit: Enzymes recognize substrates either through rigid complementarity (lock-key) or conformational changes upon binding (induced fit).
Allosteric Regulation: Enzyme activity modulated by molecules binding at sites other than the active site, enabling sophisticated metabolic control.
Signal Transduction: Cascades of molecular interactions that amplify and transmit signals from cell surface to nucleus.
Why It Matters
Molecular understanding enables drug design, metabolic engineering, and synthetic biology.
How to Explore
Adjust the sliders to modify simulation parameters and observe how the system responds
Look for emergent patterns that arise from agent interactions
Try extreme parameter values to find phase transitions and tipping points
Compare the simulation behavior to real-world phenomena