Using computational modelling, we investigate mechanisms of signal
transduction focusing on the spindle assembly checkpoint where a single
unattached kinetochore is able to signal to prevent cell cycle progression.
This inhibitory signal switches off rapidly once spindle microtubules have
attached to all kinetochores. This requirement tightly constrains the possible
mechanisms. Here we investigate two possible mechanisms for spindle checkpoint
operation in metazoan cells, both supported by recent experiments. The first
involves the free diffusion and sequestration of cell-cycle regulators. This
mechanism is severely constrained both by experimental fluorescence recovery
data and also by the large volumes involved in open mitosis in metazoan cells.
Using a simple mathematical analysis and computer simulation, we find that this
mechanism can generate the inhibition found in experiment but likely requires a
two stage signal amplification cascade. The second mechanism involves spatial
gradients of a short-lived inhibitory signal that propagates first by diffusion
but then primarily via active transport along spindle microtubules. We propose
that both mechanisms may be operative in the metazoan spindle assembly
checkpoint, with either able to trigger anaphase onset even without support
from the other pathway.Comment: 9 pages, 2 figure