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Biology subjects

Dastin-van Rijn, E. M.

Publications and source records attributed to Dastin-van Rijn, E. M..

3 recordsLinked to original sources

Cross-species modeling and enhancement of cognitive control with striatal brain stimulation

Brain disorders, particularly mental disorders, might be effectively treated by direct electrical brain stimulation, but clinical progress requires understanding of therapeutic mechanisms. Animal models have not helped, because there are no direct animal models of mental illness. We show a path past this roadblock, by leveraging a common ingredient of most mental disorders: impaired cognitive control. We previously showed that deep brain stimulation (DBS) improves cognitive control in humans. We now reverse translate that result, showing that DBS-like stimulation of the mid-striatum improves cognitive control in rats. Using this model, we identify a mechanism, improvement in domain-general cognitive control, and rule out competing hypotheses such as impulsivity. The rat findings explain prior human results and have immediate implications for clinical practice and future trial design. One Sentence Summary: Developing a reliable animal model of a human brain stimulation therapy reveals that this therapy works by enhancing the brains ability to process conflicting pieces of evidence.

neuroscience↗

OSCAR: an open-source controller for animal research

Operant animal behavior training and monitoring is fundamental to scientific inquiry across fields necessitating evaluation via controlled laboratory tasks. However, current commercial and open-source systems enforce particular hardware and software, limiting reproducibility and technique and data sharing across sites. To address this issue, we developed OSCAR: an open-source controller for animal research that enables flexible control of a variety of industry standard hardware with platform-independent software. OSCAR offers millisecond latency with a flexible array of inputs and outputs at a fraction of the cost of commercial options. These features position OSCAR as a valuable option for improving consistency of behavioral experiments across studies.

bioengineering↗

Uncovering biomarkers during therapeutic neuromodulation with PARRM: Period-based Artifact Reconstruction and Removal Method

Advances in device development have enabled concurrent stimulation and recording at adjacent locations in the central nervous system. However, stimulation artifacts obscure the sensed underlying neural activity. Here, we developed a novel method, termed Period-based Artifact Reconstruction and Removal Method (PARRM), to remove stimulation artifacts from neural recordings by leveraging the exact period of stimulation to construct and subtract a high-fidelity template of the artifact. Benchtop saline experiments, computational simulations, five unique in vivo paradigms across animal and human studies, and an obscured movement biomarker were used for validation. Performance was found to exceed that of state-of-the-art filters in recovering complex signals without introducing contamination. PARRM has several advantages: it is 1) superior in signal recovery; 2) easily adaptable to several neurostimulation paradigms; and 3) low-complexity for future on-device implementation. Real-time artifact removal via PARRM will enable unbiased exploration and detection of neural biomarkers to enhance efficacy of closed-loop therapies. SummaryOnline, real-time artifact removal via PARRM will enable unbiased exploration of neural biomarkers previously obscured by stimulation artifact.

neuroscience↗