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brain blends fast and slow signals to shape human thought

Brain Blends Fast and Slow Signals to Shape Human Thought​​​

Researchers mapped the brain connectivity of 960 individuals to uncover how fast and slow neural processes unite to support complex behavior. They found that intrinsic neural timescales—each region’s characteristic window for processing information—are directly shaped by white-matter pathways that distribute signals across the brain. Individuals with a closer match between their wiring and regional timescale […]

Brain Blends Fast and Slow Signals to Shape Human Thought​​​ Read More »

brain blends fast and slow signals to shape human thought

Brain Blends Fast and Slow Signals to Shape Human Thought​​​​

Researchers mapped the brain connectivity of 960 individuals to uncover how fast and slow neural processes unite to support complex behavior. They found that intrinsic neural timescales—each region’s characteristic window for processing information—are directly shaped by white-matter pathways that distribute signals across the brain. Individuals with a closer match between their wiring and regional timescale

Brain Blends Fast and Slow Signals to Shape Human Thought​​​​ Read More »

brain blends fast and slow signals to shape human thought

Brain Blends Fast and Slow Signals to Shape Human Thought​​​​​

Researchers mapped the brain connectivity of 960 individuals to uncover how fast and slow neural processes unite to support complex behavior. They found that intrinsic neural timescales—each region’s characteristic window for processing information—are directly shaped by white-matter pathways that distribute signals across the brain. Individuals with a closer match between their wiring and regional timescale

Brain Blends Fast and Slow Signals to Shape Human Thought​​​​​ Read More »

brain blends fast and slow signals to shape human thought

Brain Blends Fast and Slow Signals to Shape Human Thought​​​​​​

Researchers mapped the brain connectivity of 960 individuals to uncover how fast and slow neural processes unite to support complex behavior. They found that intrinsic neural timescales—each region’s characteristic window for processing information—are directly shaped by white-matter pathways that distribute signals across the brain. Individuals with a closer match between their wiring and regional timescale

Brain Blends Fast and Slow Signals to Shape Human Thought​​​​​​ Read More »

immune signal ratio may predict progressive multiple sclerosis

Immune Signal Ratio May Predict Progressive Multiple Sclerosis​

A long-term study has identified a potential biomarker that could help detect which patients are progressing toward more severe forms of multiple sclerosis. Researchers discovered that a high ratio of CXCL13 to BAFF indicates compartmentalized inflammation in the leptomeninges, a hallmark of progressive MS.​ 

Immune Signal Ratio May Predict Progressive Multiple Sclerosis​ Read More »

immune signal ratio may predict progressive multiple sclerosis

Immune Signal Ratio May Predict Progressive Multiple Sclerosis​​

A long-term study has identified a potential biomarker that could help detect which patients are progressing toward more severe forms of multiple sclerosis. Researchers discovered that a high ratio of CXCL13 to BAFF indicates compartmentalized inflammation in the leptomeninges, a hallmark of progressive MS.​  Read more at Cerebratech ​ 

Immune Signal Ratio May Predict Progressive Multiple Sclerosis​​ Read More »

immune signal ratio may predict progressive multiple sclerosis

Immune Signal Ratio May Predict Progressive Multiple Sclerosis​​​

A long-term study has identified a potential biomarker that could help detect which patients are progressing toward more severe forms of multiple sclerosis. Researchers discovered that a high ratio of CXCL13 to BAFF indicates compartmentalized inflammation in the leptomeninges, a hallmark of progressive MS.​  Read more at Cerebratech ​  Read more at Cerebratech ​ 

Immune Signal Ratio May Predict Progressive Multiple Sclerosis​​​ Read More »

early screen time linked to long term brain changes, teen anxiety​

Early Screen Time Linked to Long-Term Brain Changes, Teen Anxiety​​

New research following children for more than a decade links high screen exposure before age two to accelerated brain maturation, slower decision-making, and increased anxiety by adolescence. Infants with more screen time showed premature specialization in brain networks involved in visual processing and cognitive control, which later reduced flexibility during thinking tasks.​  Read more at

Early Screen Time Linked to Long-Term Brain Changes, Teen Anxiety​​ Read More »

early screen time linked to long term brain changes, teen anxiety​​

Early Screen Time Linked to Long-Term Brain Changes, Teen Anxiety​​​

New research following children for more than a decade links high screen exposure before age two to accelerated brain maturation, slower decision-making, and increased anxiety by adolescence. Infants with more screen time showed premature specialization in brain networks involved in visual processing and cognitive control, which later reduced flexibility during thinking tasks.​  Read more at

Early Screen Time Linked to Long-Term Brain Changes, Teen Anxiety​​​ Read More »

early screen time linked to long term brain changes, teen anxiety​​​

Early Screen Time Linked to Long-Term Brain Changes, Teen Anxiety​​​​

New research following children for more than a decade links high screen exposure before age two to accelerated brain maturation, slower decision-making, and increased anxiety by adolescence. Infants with more screen time showed premature specialization in brain networks involved in visual processing and cognitive control, which later reduced flexibility during thinking tasks.​  Read more at

Early Screen Time Linked to Long-Term Brain Changes, Teen Anxiety​​​​ Read More »

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