Publications by authors named "F Mambretti"

Article Synopsis
  • Study examines the risk of sudden unexpected death in epilepsy patients related to ictal central apnea (ICA) occurrences and features.
  • Data from 108 patients with focal epilepsy were reviewed, who underwent extensive monitoring including video-EEG and genetic testing; 5 patients had pathogenic mutations detected.
  • Results indicate a significant correlation between ICA and genetic variants, highlighting the importance of respiratory monitoring and genetic evaluation in focal epilepsy cases with unknown causes.
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The liquid-to-solid phase transition is a complex process that is difficult to investigate experimentally with sufficient spatial and temporal resolution. A key aspect of the transition is the formation of a critical seed of the crystalline phase in a supercooled liquid, that is, a liquid in a metastable state below the melting temperature. This stochastic process is commonly described within the framework of classical nucleation theory, but accurate tests of the theory in atomic and molecular liquids are challenging.

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Systems featuring hard-core-soft-shell repulsive pair potentials can form ordered phases, where particles organize themselves in aggregates with nontrivial geometries. The dimer crystal formed by one such potential, namely, the hard-core plus generalized exponential model of order 4, has been recently investigated, revealing a low-temperature structural phase transition, with the onset of nematic ordering of the dimers. In the present work, we aim to characterize this phase transition via a mean-field theory, by which a detailed analysis of the low-temperature properties of the system is carried out under quadrupole approximation.

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The understanding of eco-evolutionary dynamics, and in particular the mechanism of coexistence of species, is still fragmentary and in need of test bench model systems. To this aim we developed a variant of SELEX in vitro selection to study the evolution of a population of ∼10 single-strand DNA oligonucleotide 'individuals'. We begin with a seed of random sequences which we select via affinity capture from ∼10 DNA oligomers of fixed sequence ('resources') over which they compete.

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