Size-dependent self-avoidance enables superdiffusive migration in macroscopic unicellulars.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 38517977.
- Also identified by DOI 10.1073/pnas.2312611121 and PMC identifier 10990088.
- Licence recorded as CC BY-NC-ND.
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Abstract
Many cells face search problems, such as finding food, mates, or shelter, where their success depends on their search strategy. In contrast to other unicellular organisms, the slime mold <i>Physarum polycephalum</i> forms a giant network-shaped plasmodium while foraging for food. What is the advantage of the giant cell on the verge of multicellularity? We experimentally study and quantify the migration behavior of <i>P. polycephalum</i> plasmodia on the time scale of days in the absence and presence of food. We develop a model which successfully describes its migration in terms of ten data-derived parameters. Using the mechanistic insights provided by our data-driven model, we find that regardless of the absence or presence of food, <i>P. polycephalum</i> achieves superdiffusive migration by performing a self-avoiding run-and-tumble movement. In the presence of food, the run duration statistics change, only controlling the short-term migration dynamics. However, varying organism size, we find that the long-term superdiffusion arises from self-avoidance determined by cell size, highlighting the potential evolutionary advantage that this macroscopically large cell may have.
Medical subject headings
- Physarum polycephalum
- Plasmodium