ion channels

Computational Atomistic Fluid-dynamics & Engineering

Computational Atomistic Fluid-dynamics & Engineering

Our approach is a physical one, addressing problems in engineering and biology. In particular, we use molecular dynamics and multiscale simulations which address the various time and length scales typical of wetting, cavitation, and biophysical phenomena.

Ion channel expression in human melanoma samples. in silico identification and experimental validation of molecular targets

Expression of 328 ion channel genes was investigated, by in silico analysis, in 170 human melanoma samples and controls. Ninety-one members of this gene-family (i.e., about 28%) show a significant (p 0.90 and p 90% in most cases). Such five genes (namely, SCNN1A, GJB3, KCNK7, GJB1, KCNN2) are novel potential melanoma markers or molecular targets, never previously related to melanoma. The “druggable genome” analysis was then carried out. Miconazole, an antifungal drug commonly used in clinics, is known to target KCNN2, the best candidate among the five identified genes.

Editorial: epilepsy and neurodevelopmental diseases

The association between epilepsy and neurodevelopmental diseases is well-recognized and has gained significant attention in the field of neuroscience in recent years. One of the main reasons for this interest is the need for a better understanding of the events that lead to the development and maturation of the CNS. This is a fundamental and necessary basis for potential breakthrough strategies that could guide novel and more effective disease-modifying therapeutic approaches to neurodevelopmental syndromes that are frequently characterized by severe and

Susceptibility to ischaemic heart disease. Focusing on genetic variants for ATP-sensitive potassium channel beyond traditional risk factors

Aims: Ischaemic heart disease is classically associated with coronary artery disease. Recent evidences showed the correlation between coronary microvascular dysfunction and ischaemic heart disease, even independently of coronary artery disease. Ion channels represent the final effectors of blood flow regulation mechanisms and their genetic variants, in particular of Kir6.2 subunit of the ATP-sensitive potassium channel (KATP), are reported to be involved in ischaemic heart disease susceptibility.

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