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De Momi, E.

Publications and source records attributed to De Momi, E..

2 recordsLinked to original sources

In vivo MRI measurement of microstructural constraints for direct delivery of therapeutics within the brain

Brain tissue microstructure influences the efficient delivery of therapeutics within the brain. Diffusion Tensor Imaging (DTI) enables the depiction of tissue properties in vivo, and thus is potentially relevant for planning convection-enhanced delivery (CED) within the brain. We report on the quantitative assessment of the distribution of a Gadolinium solution infused by CED within the brain of a live ovine model. Infusate distributions were measured at multiple timepoints and compared to microstructural properties as depicted by DTI, thus demonstrating the impact of tissue features and catheter positioning on drug distribution in vivo. This study contributed to the clinical translation of the CED for flow-based therapy to ultimately provide new therapeutic approaches for several brain diseases, by providing essential tools and results used to develop a better prediction model and a delivery platform to reach the therapeutic target more precisely and non-invasively.

neuroscience↗

The impact of gravity on functional movements: kinematic insights and features selection

Exploring the impact of gravity on daily upper-limb movements is crucial for comprehending the complexities of upper-limb impairments. The present study delves into the relationship between the gravitational force and the functional aspects of upper-limb mobility. Starting from 9 pick-and-place tasks, hand trajectories of 24 healthy subjects were acquired using a motion capture system. Five in-use and two novel kinematic metrics were calculated by such trends and tested across conditions. Results suggest movements performed against and propelled by gravity lead to statistically significant changes in motor behaviour in terms of planning, smoothness, efficiency, and accuracy of the movement, underlining the need of differentiating the study of such movements in impaired subjects.

neuroscience↗