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Crosato, E.

Publications and source records attributed to Crosato, E..

2 recordsLinked to original sources

Diversity of motility patterns in benthic diatoms

Diatoms, a highly successful group of photosynthetic algae, contribute to a quarter of global primary production. Many species are motile, despite having no appendages and a completely rigid cell body. Cells move to seek out nutrients, locate mating partners, and undergo vertical migration. To explore the natural diversity of diatom motility, we perform a comparative study across five common biofilm-forming species. Combining morphological measurements with high-resolution cell tracking, we establish how gliding movements relate to the morphology of the raphe - a specialised slit in the cell wall responsible for motility generation. Our detailed analyses reveal that cells exhibit a rich but species-dependent phenotype, switching stochastically between four stereotyped motility states. We model this behaviour and use stochastic simulations to predict how heterogeneity in microscale navigation patterns leads to differences in long-time diffusivity and dispersal. In a representative species, we extend these findings to quantify diatom gliding in complex, naturalistic 3D environments, suggesting that cells may exploit these distinct motility signatures to achieve niche segregation in nature.

biophysics↗

Rethinking Population Bottlenecks: Intrinsic Fluctuations, Mutation and Dynamical Demographic Phases

By abruptly changing the size and composition of a population, bottlenecks can dramatically alter evolutionary trajectories. In the traditional picture, the faster a population recovers from a bottleneck, the more rapidly finite-size intrinsic fluctuations are suppressed and therefore the greater the likelihood of fixation to the attractor within whose basin the bottleneck constrained the population, initially. We now argue that this intuition is misleading; demonstrating that precisely the opposite behaviour is also possible. Depending critically on the rate of mutation, increased population growth can drive fixation to attractors that are different to that from whose basin it started. These findings are explained in terms of statistically distinct regimes of demographic behaviour, drawing parallels with the notion of non-equilibrium phase transitions. Such dynamical demographic phases are delimited by sharp transitions in time, as a population grows, and ultimately result from a time-dependent antagonism between mutation and the stochastically-induced effects of frequency-dependent birth.

evolutionary biology↗