Seeing around corners: Cells create chemotactic gradients to solve mazes and respond to distant cues in complex environments.
Tweedy, L.; Thomason, P.; Martin, K. J.; Zagnoni, M.; Machesky, L. M.; Insall, R. H.
Show abstract
Chemotaxis, in which cells steer using chemical gradients, drives fundamental biological processes like embryogenesis, metastasis and immune responses. Self-generated chemotaxis, where cells break down abundant attractants to create gradients, is an important but under-studied aspect of physiological navigation. Here we show that self-generated gradients allow cells to navigate arbitrarily complex paths and, remarkably, make accurate choices about pathways they have not yet encountered. This enables cells to solve microfluidic mazes, even with initially homogeneous environments and distant correct destinations. We combine computational models and experiments to understand how cells anticipate environmental features, and how decision accuracy is determined by path complexity, attractant diffusibility and cell speed. This permits mazes that are easy or hard for cells to resolve, despite similar appearances. Counterintuitively, slowly-diffusing attractants can generate a "mirage", making cells prefer dead ends over correct paths. In vivo environments resemble complex mazes, and only self-generated gradients realistically explain cell behaviour.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Anti-resonance in developmental signaling regulates cell fate decisions 96%
- Supracellular organization confers directionality and mechanical potency to migrating pairs of cardiopharyngeal progenitor cells 96%
- Revealing the structure of information flows discriminates similar animal social behaviors 95%
Similar papers in this journal
Similar papers in this journal
- Polymodal sensory perception of mechanical and chemical cues drives robust settlement and metamorphosis of a marine pre-vertebrate zooplanktonic larva. 95%
- Corrections in single cell migration path in vivo are controlled by pulses in polar Rac1 activation 95%
- Larval zebrafish use olfactory detection of sodium and chloride to avoid salt-water 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.