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Algin, O.

Publications and source records attributed to Algin, O..

2 recordsLinked to original sources

Receive-Only Coupled Wireless Radiofrequency Probe for Endocavity MR Imaging Using a pTx System

PurposeTo enhance the SNR in MRI within a localized region of interest using a novel interventional wireless RF resonator probe combined with a dual-drive pTx system. MethodsA dual-drive body birdcage coil was operated in a linearly-polarized mode to decouple a passive RF resonator probe from the transmit field while maintaining the resonator in a receive-only coupled mode. The resonator was fabricated using standard microfabrication techniques and tuned to the Larmor frequency of a 3T MRI system. The 10-g specific absorption rate (SAR) distribution was simulated to identify potential hot spots around the resonator prior to heating experiments. To evaluate the interaction between the resonator probe and the linearly-polarized transmit field, SNR and flip-angle distributions were measured in a phantom. In vivo imaging studies were subsequently performed using the resonator probe in conjunction with the linearly-polarized dual-drive birdcage coil. ResultsTemperature measurements demonstrated a normalized temperature increase of less than 0.10{degrees}C, corresponding to a SAR value below 1.21 W/kg. Experimental flip-angle mapping confirmed effective magnetic decoupling of the resonator probe using linearly-polarized dual-drive transmission. An SNR enhancement factor of 1.6 was achieved within the region of interest in phantom experiments. In vivo imaging demonstrated a 2.0 {+/-} 0.2-fold SNR enhancement in the vicinity of the resonator probe. ConclusionA novel interventional approach for localized SNR enhancement in MRI was demonstrated using a wireless RF resonator probe and a dual-drive pTx system. The proposed technique enables local signal enhancement while minimizing transmit-field interactions, thereby facilitating safe interventional MRI and potentially improving image quality and diagnostic performance.

bioengineering↗

Primary and secondary auditory cortex connectivity with brain regions involved in cognitive and emotional processing: in mouse and human

Auditory cortex connectivity extends beyond the processing of acoustic stimuli, playing a crucial role in cognitive and emotional regulation through its interactions with higher-order brain regions. Although the neural mechanisms underlying acoustic information processing along the auditory pathway are well-documented, the connections supporting auditory-related cognitive and emotional processing, particularly in comparative studies between mice and human adults, are not yet fully clarified. In this study, we aim to investigate connections between the auditory cortex and brain regions involved in cognitive and emotional processing using retrograde fluoro-gold (FG) tracer in mice and 3-tesla high-resolution diffusion tensor tractography (DTI) in human adults. The FG injections into the primary (AI)/ secondary (AII) auditory cortices showed afferent connections with cortical (olfactory bulb, piriform, orbitofrontal, cingulate, motor, primary somatosensory, insular, visual, parietal, entorhinal and perirhinal cortices), subcortical (amygdala, hippocampus, globus pallidus, claustrum, bed nucleus of stria terminalis, diagonal band of the Broca and medial septal nucleus) and brainstem (raphe nuclei, pedunculopontine nucleus and locus coeruleus) structures. The DTI data obtained from human adults mostly corresponded with the experimental findings. Auditory cortical processing integrates auditory signals with other sensory, limbic and motor inputs. The connections collectively may suggest its role in cognitive and emotional functions. The auditory cortex is likely a critical hub within the neural circuitry underlying multisensory integration, decision-making, prediction, learning and memory functions. Understanding the connectivity of the auditory cortex can deepen our insight into its contribution to cognitive/emotional functions, offering new perspectives on the underlying mechanism linking hearing deficits with cognitive/emotional disorders.

neuroscience↗