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๊ท€ํ•˜์˜ ๋ธŒ๋ผ์šฐ์ €๊ฐ€ ์™„๋ฒฝํ•˜๊ฒŒ ์ง€์›๋˜์ง€ ์•Š์Šต๋‹ˆ๋‹ค. ์˜ต์…˜์ด ์žˆ๋Š” ๊ฒฝ์šฐ ์ตœ์‹  ๋ฒ„์ „์œผ๋กœ ์—…๊ทธ๋ ˆ์ด๋“œํ•˜๊ฑฐ๋‚˜ Mozilla Firefox, Microsoft Edge, Google Chrome ๋˜๋Š” Safari 14 ์ด์ƒ์„ ์‚ฌ์šฉํ•˜์„ธ์š”. ๊ฐ€๋Šฅํ•˜์ง€ ์•Š๊ฑฐ๋‚˜ ์ง€์›์ด ํ•„์š”ํ•œ ๊ฒฝ์šฐ ํ”ผ๋“œ๋ฐฑ์„ ๋ณด๋‚ด์ฃผ์„ธ์š”.

์ด ์ƒˆ๋กœ์šด ๊ฒฝํ—˜์— ๋Œ€ํ•œ ๊ท€ํ•˜์˜ ์˜๊ฒฌ์— ๊ฐ์‚ฌ๋“œ๋ฆฝ๋‹ˆ๋‹ค.์˜๊ฒฌ์„ ๋ง์”€ํ•ด ์ฃผ์„ธ์š”์ƒˆ ํƒญ/์ฐฝ์—์„œ ์—ด๊ธฐ

Elsevier
์—˜์Šค๋น„์–ด์™€ ํ•จ๊ป˜ ์ถœํŒ
Press release

Researchers gain a better understanding of how the most commonly used ADHD medication works

Philadelphia | 2022๋…„ 12์›” 8์ผ

Methylphenidate enhances brain activity in reward and cognitive control networks in children with ADHD, according to a new study in Biological Psychiatry: Cognitive Neuroscience and Neuroimaging

For decades, doctors have treated kids with attention-deficit/hyperactivity disorder (ADHD) with methylphenidate, a stimulant drug sold as Ritalin and Concerta, making it one of the most widely prescribed medications aimed at the central nervous system. One might expect that researchers would know how methylphenidate works in the brain by now, but little is known about the drugโ€™s mechanism of action. Now, aย new studyopens in new tab/windowย seeks to close this gap and understand how methylphenidate interacts with cognitive control networks and attentional behavior.

The new study appears inย Biological Psychiatry: Cognitive Neuroscience and Neuroimagingopens in new tab/window,ย published by Elsevier.

What researchers do know is that individuals with ADHD have lower dopamine signaling activity than neurotypical individuals in the interconnected brain networks that control attention and goal-directed behaviors. Specifically, methylphenidate is hypothesized to ameliorate ADHD symptoms by increasing dopamine levels in the nucleus accumbens (NAc), a hub for dopamine signaling.

In the new study, researchers led by Yoshifumi Mizuno, MD, PhD, Weidong Cai, PhD, and Vinod Menon, PhD, used brain imaging to explore the effects of methylphenidate on the NAc and a so-called triple network system that plays a key role in behaviors that require adaptive control of attention. The three networks include the salience, frontoparietal, and default mode networks. Aberrant activity was detected in the NAc and in multiple brain networks in children with ADHD, suggesting that dysregulation in the system may underlie ADHD symptoms, and that correcting the dysfunction might alleviate those symptoms.

โ€œOur findings demonstrate in two independent cohorts that methylphenidate changes spontaneous neural activity in reward and cognitive control systems in children with ADHD. Medication-induced changes in cognitive control networks result in more stable sustained attention. Our findings reveal a novel brain mechanism underlying methylphenidate treatment in ADHD and inform biomarker development for evaluating treatment outcomes,โ€ noted Dr. Menon, Department of Psychiatry & Behavioral Sciences, Stanford University School of Medicine.

The researchers used functional magnetic resonance imaging (fMRI) to measure the effects of methylphenidate on spontaneous brain activity in 27 children with ADHD and 49 typically developing controls. Children with ADHD were scanned during two different visits one to six weeks apart โ€“ once while receiving methylphenidate and once while receiving a placebo. (Typically developing children did not receive medication or placebo.) Outside the scanner, children with ADHD also performed a standardized task to assess sustained attention. Additionally, the researchers tested the replicability of methylphenidateโ€™s effects on spontaneous brain activity in a second independent cohort.

Not surprisingly, children performed better on the attention tasks when they were medicated. And as the researchers hypothesized, they also saw greater spontaneous neural activity in the NAc and the salience and default mode networks when methylphenidate was administered. Children with ADHD who displayed enhanced changes in brain activity patterns in the default mode network with medication performed better on the attention tasks with medication. Findings were replicated across two independent cohorts, providing further evidence that methylphenidate may alleviate ADHD symptoms by its actions on the NAc and the triple network cognitive system.

Cameron Carter, MD, editor ofย Biological Psychiatry: Cognitive Neuroscience and Neuroimaging, said of the study, โ€œThe findings, which used the widely available technique of resting-state functional MRI, confirm the positive effects of methylphenidate on attention in children with ADHD and reveal the likely mechanism of action, through improved coordinated brain network activity and a likely key role for enhanced dopamine effects in the NAc region of the brain.โ€

The work advances researchersโ€™ understanding of how ADHD affects cognitive control networks in the brain and how methylphenidate interacts with these networks to shift behavior. The findings could guide future work using brain imaging as a clinically useful biomarker of response to treatments.

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Notes for editors

The article is โ€œMethylphenidate enhances spontaneous fluctuations in reward and cognitive control networks in children with attention-deficit/hyperactivity disorder," by Yoshifumi Mizuno, Weidong Cai, Kaustubh Supekar, Kai Makita, Shinichiro Takiguchi, Timothy J. Silk, Akemi Tomoda, Vinod Menon (https://doi.org/10.1016/j.bpsc.2022.10.001opens in new tab/window). It appears as an Article in Press inย Biological Psychiatry: Cognitive Neuroscience and Neuroimagingopens in new tab/window, published byย Elsevier. The article is openly available at https://www.biologicalpsychiatrycnni.org/article/S2451-9022(22)00247-6/fulltextopens in new tab/window.

Copies of this paper are also available to credentialed journalists upon request; please contact Rhiannon Bugno atย [email protected]opens in new tab/windowย or +1 254 522 9700. Journalists wishing to interview the authors may contact Yoshifumi Mizuno at +81 776 61 8707 orย [email protected]opens in new tab/window, or Vinod Menon atย [email protected]opens in new tab/window.

The authors affiliations and disclosures of financial and conflicts of interests are available in the article.

Cameron S. Carter, MD, is Professor of Psychiatry and Psychology and Director of the Center for Neuroscience at the University of California, Davis. His disclosures of financial and conflicts of interests are availableย hereopens in new tab/window.

Aboutย Biological Psychiatry: Cognitive Neuroscience and Neuroimaging

Biological Psychiatry: Cognitive Neuroscience and Neuroimagingopens in new tab/windowย is an official journal of theย Society of Biological Psychiatryopens in new tab/window, whose purpose is to promote excellence in scientific research and education in fields that investigate the nature, causes, mechanisms and treatments of disorders of thought, emotion, or behavior. In accord with this mission, this peer-reviewed, rapid-publication, international journal focuses on studies using the tools and constructs of cognitive neuroscience, including the full range of non-invasive neuroimaging and human extra- and intracranial physiological recording methodologies. It publishes both basic and clinical studies, including those that incorporate genetic data, pharmacological challenges, and computational modeling approaches. The 2021 Journal Impact FactorTMย  score, from Clarivate, forย Biological Psychiatry: Cognitive Neuroscience and Neuroimagingย is 6.050.ย 

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