A new theory suggests that the brain's ability to generate quick, nimble volitional thought arises from analog computations carried out by electrical waves. The brain's neural networks coordinate with analog computations to process information efficiently and locally, a feature of the brain's own physics.
Researchers identified a brain circuit that enables comparison between current and previous sensory information to aid judgment. The pulvinar region in the thalamus provides advice on how much sensory information has changed, helping the brain make predictions about what's happening.
Researchers found that local electric fields exert influence on neurons via ephaptic coupling, which helps explain variations in brain activity even within the same task. The study suggests that manipulating these electric fields could be a potential therapeutic approach for improving brain function in disease.
Researchers at MIT's Picower Institute have identified key properties that influence how neurons respond to visual stimuli, including distance from the soma and local clustering. These findings provide insight into how brain circuits process information and may shed light on neural disorders.
FINGERS-7B integrates lifestyle, clinical, genomic, and proteomic data to discover multi-omic biomarkers for preclinical Alzheimer's. The model delivers 4× more accurate preclinical diagnosis and 130% better responder stratification than prior art.
Researchers identify specific chemicals that trigger neural activity in nematodes when they detect certain bacteria, leading to changes in feeding behavior and avoiding harmful pathogens. The study sheds light on fundamental mechanisms of how neurons interact with bacteria, paving the way for potential therapeutic interventions.
A new study by MIT researchers uses advanced human cell cultures to model Rett syndrome, revealing distinct abnormalities caused by two different mutations of the MECP2 gene. The findings suggest that correcting key differences made by each mutation requires different treatments, paving the way for personalized therapies.
A new review paper proposes that brain categorization is part of a predictive process to efficiently meet needs, rather than an intellectual exercise comparing sensory inputs to a fixed prototype. This approach predicts the world and anticipates actions, allowing for efficient survival and thriving in a fast-paced environment.
Researchers at MIT's Picower Institute mapped the neural circuits that enable C. elegans worms to navigate towards attractive odors and avoid unappealing ones. The study revealed a specific sequence of neural activation, involving key neurons and the neuromodulator tyramine.
MIT neuroscientists have found that two genetic mutations causing Rett syndrome compromise the structural integrity of developing blood vessels, leading to leaky vessels. Overexpression of miRNA-126-3p is responsible for the vascular defect, which can be rescued by reducing the miRNA's levels.
Three new neural network-based tools enable precise tracking of neurons in worms and jellyfish, overcoming visibility challenges. The tools have been applied to the study of brain activity in C. hemisphaerica jellyfish, allowing researchers to extract neural activity data from videos of the animals.
Researchers have discovered a novel biomarker for fragile X syndrome in both human patients and mouse models, allowing for the comparison of brain wave patterns between species. This breakthrough enables the development of more effective treatments by enabling non-invasive treatment efficacy readouts across species.
A new software tool developed by MIT researchers can reliably and finely resolve eight distinct nerve bundles in live diffusion MRI scans, shedding light on neurodegenerative diseases like Parkinson's and Alzheimer's. The BrainStem Bundle Tool (BSBT) reveals distinct patterns of structural changes in patients with these conditions.
A new MIT study reveals that somatostatin-expressing neurons follow a unique trajectory when forming connections in the visual cortex, establishing conditions needed for sensory refinement. These inhibitory neurons help usher in the critical period by setting baseline inhibition levels.
A new computational model of the brain based on biology and physiology learned a simple visual category learning task as well as lab animals, discovering counterintuitive activity in neurons. The model produced naturalistic dynamics and learning without training data, enabling researchers to identify new insights into brain function an...
Researchers tested Spatial Computing theory by examining neural activity and brain wave patterns in animals performing working memory and categorization tasks. The findings support the theory's predictions, including that alpha/beta waves represent task controls and rules, while spiking activity carries sensory information.
Researchers at MIT discovered how an immune system molecule, interleukin-1 beta, triggers a brain circuit to shut down social behavior in mice. The study found that the molecule activates neurons in the dorsal raphe nucleus, leading to social withdrawal and lethargy.
Researchers found that the prefrontal cortex sends customized signals to visual and motor regions, influencing their activity based on arousal levels and movement. The study reveals distinct roles of prefrontal subregions in shaping visual processing, with one region enhancing stimuli detection and another dampening irrelevant stimuli.
Scientists have cataloged hundreds of target sites and widely varying editing rates for RNA editing in more than 200 individual cells of tonic and phasic motor neurons. The study found that most sites were edited at rates between extremes, and that some edits altered proteins involved in neural communication and function.
A new MIT study reveals that temporarily anesthetizing the retina of the amblyopic eye can restore its neural connections and improve vision in adulthood. The treatment, which has been shown to be effective in infancy and early childhood, may have promising clinical potential for adults with amblyopia.
According to Miller, brain waves sculpt the flow of information in the cortex, enabling volitional control of thought. The cortex organizes itself through analog computation, leading to consciousness as a unified awareness of thought and experience.
Researchers found that a rotating brain wave helps the cortex recover its computational path after a distraction, improving performance in visual working memory tasks. Longer time intervals between distractions also aid recovery.
A small study found that five volunteers with late-onset Alzheimer's disease showed significant improvements in cognitive tests and decreased biomarker tau proteins after two years of receiving 40Hz light and sound stimulation. This suggests that the therapy may slow cognitive decline and have direct biological impacts on Alzheimer's p...
A new MIT study found that a theta-frequency brain wave scans the mental image and a region of the cortex maps visual information. The researchers observed that performance depends on the phase of this wave when the changed square appears, and the vertical location on the screen of that target square.
Researchers developed a new human brain tissue platform called miBrains, integrating all major brain cell types and modeling brain structures, cellular interactions, activity, and pathological features. The models can be customized through gene editing and are derived from individual patients' genomes.
A new study by MIT neuroscientists reveals that circular RNA, specifically circHomer1, strongly influences how neurons build circuit connections during visual system development. Knocking out circHomer1 prevents synapse maturation and delays expected neural adjustments in response to monocular deprivation.
Researchers at MIT's Picower Institute have revealed a fundamental model for how neural activity during development builds properly working connections. Neural activity plays a crucial role in maturing synaptic active zones, allowing them to send the right amount of chemical signals at the right times.
The brain divides vision between its two hemispheres to enable seamless perception. Researchers at the Picower Institute found that different frequencies of brain waves are encoded and transferred information from one hemisphere to the other before an object crosses the middle of the field of view.
A new study reveals that Alzheimer's progression is characterized by a breakdown of epigenomic stability, leading to compromised compartmentalization and the loss of gene regulation. The research provides insights into the molecular mechanisms driving disease progression and resilience, shedding light on potential new treatments.
Researchers at MIT have developed a new microscope system that can visualize metabolic and neuronal activity in brain tissues with unprecedented depth and precision. The system uses sound waves to detect molecular activity, enabling the imaging of individual cells in dense brain tissue.
Researchers found that astrocytes maintain optimal levels of GABA to enable neural groups to process visual information efficiently. Knocking out Gat3 in mice impaired neuron coordination and reduced ensemble activity, highlighting the importance of astrocytic regulation.
A study published in Nature Communications reveals that neurons in mice brain rewire and refine their connections to integrate visual signals from both eyes over a 10-day period. The researchers found that only 40% of the initial synapses survived, with 24% added and 27% removed, indicating an extensive process of synaptic turnover.
A study in mice reveals that only 40% of synapses survive during critical development, with active spines more likely to endure. Clustering of spines also emerges, allowing them to combine activity and enhance visual processing.
The new edition of Mark Bear's neuroscience textbook emphasizes accessibility and excitement, presenting the hard science without making it hard. The book features over 100 'Path of Discovery' essays by prominent neuroscientists, including several Nobel prize winners.
Research by MIT neuroscientists reveals that the brain separates its processing of spatial information to maintain cognitive advantage, yet seamlessly blends it with other features. The study also explores how the brain 'hands off' visual information between hemispheres.
A recent MIT study identified a potential signature of unconsciousness that can be measured to improve anesthesiology care. Researchers found that different anesthetics affect brain wave phase in the same way, leading to misaligned local communications and functions.
Researchers at MIT's Picower Institute discovered a critical mechanism for mental health, where dopamine signals enable fear extinction. Dopamine activates specific amygdala neurons tied to reward, driving fear extinction and opening up new avenues for treating fear-related disorders like PTSD.
Research finds that 40Hz sensory stimulation promotes broad-based restorative neurological health response in mice with Down syndrome. The study shows improved cognition, increased neural activity, and enhanced neurogenesis, suggesting potential therapeutic benefits.
A clinical trial found that using EEG to monitor consciousness safely reduced anesthetic use in children, resulting in quicker recovery, reduced delirium, and lower healthcare costs. The study also showed a significant reduction in pediatric anesthesia emergence delirium.
Researchers discovered that C. elegans worms reconfigure brain cells and peptides to cope with infection, enabling them to survive longer. The study reveals unexpected findings on the role of neurons and neuromodulators in adaptive responses.
Studies have consistently shown that 40Hz gamma stimulation can improve cognitive function and reduce Alzheimer's pathology in mice. In human clinical trials, participants exposed to 40Hz light and sound experienced significant slowing of brain atrophy and improvements on some cognitive measures compared to untreated controls.
Researchers at MIT's Picower Institute have discovered a new approach to treating fragile X syndrome by enhancing the activity of a specific component of 'NMDA' receptors. This strategy normalizes protein synthesis, neural activity and seizure susceptibility in hippocampus of fragile X lab mice, offering a promising therapeutic target.
A new MIT study finds that humans and marmosets retain a tendency to test other approaches to tasks, even when they have learned the optimal strategy. This behavior could help reveal needed adjustments in uncertain environments. The findings also add weight to the use of marmoset models for autism studies.
Researchers at MIT develop CuRVE technology, enabling uniform labeling of proteins across millions of individual cells in intact 3D tissues. This breakthrough allows for unprecedented insights into cellular functions and behaviors, overcoming limitations of existing labeling methods.
Researchers found that weakly spatial cells gradually correlate their activity with other neurons to form a mental map, stitching together individual locations. Sleep aids in this process, refining neural network activity and consolidating memories.
Researchers found that conscious thought requires synchronized communication—mediated by brain rhythms in specific frequency bands—between basic sensory and higher-order cognitive regions of the brain. Under anesthesia, communication was lost, highlighting the key role of frontal areas in consciousness.
Researchers at MIT and MGH developed statistical models based on rigorous physiological data from over 100 surgeries, providing accurate measures of nociception. The new models aim to help anesthesiologists optimize drug doses and minimize post-operative pain and side effects.
A new study by researchers at MIT and MGH found that even low stimulation currents could sometimes still cause electrographic seizures in awake mice, with a rate of 2.2 percent of tests experiencing seizures. The study cautions against the use of brain stimulation-based therapies without proper monitoring.
A new study found that 40Hz sensory stimulation preserves myelination, protects oligodendrocytes, and sustains electrical signal transmission in the brains of mice with cuprizone-induced myelin loss. The researchers also identified molecular mechanisms underlying these benefits.
A new mathematical method, validated with experimental animal data, provides fast, reliable, and minimally invasive way of determining how to treat critical blood pressure changes. The method accurately tracks cardiac output and systemic resistance, mirroring estimates from more invasive catheters in some cases.