Neurometabolic predictors of mental effort in the frontal cortex.

IF 6.2 1区 医学 Q1 PSYCHIATRY
Arthur Barakat, Jules Brochard, Mathias Pessiglione, Jean-Philippe Godin, Bernard Cuenoud, Lijing Xin, Nicolas Clairis, Carmen Sandi
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Abstract

Motivation drives individuals to overcome costs to achieve desired outcomes, such as rewards or avoidance of punishment, with significant variability across individuals. The dorsomedial prefrontal cortex/dorsal anterior cingulate cortex (dmPFC/dACC) and anterior insula are key brain regions implicated in effort-based decision-making. Here, we utilized proton magnetic resonance spectroscopy (1H-MRS) at 7 Tesla on 69 healthy participants in these brain regions to uncover the neurometabolic factors that influence these differences. We designed and applied an effort-based decision-making task requiring mental and physical effort to probe motivated behavior, complemented by computational modeling to extract key behavioral parameters. Gradient boosting machine learning was applied to explore the predictive role of specific metabolites in motivated behavior. Our results reveal that a model established on dmPFC/dACC metabolites explains decisions to exert high mental effort and sensitivity to mental effort. In particular, glutamate, aspartate, and lactate in dmPFC/dACC, three metabolites linked through the tricarboxylic acid cycle and glycolysis, were identified as key discriminative metabolites in the dmPFC/dACC, predictive of mental effort choices, underpinning energy supply and cognitive processes. Anterior insula metabolites did not significantly relate to effort-related decisions. Notably, glutamine and lactate levels between the periphery (plasma) and the dmPFC/dACC were correlated, suggesting a metabolic link between peripheral and central biomarkers of effort. Our findings provide novel insights into the neurometabolic underpinnings of motivated behavior and propose novel biomarkers for mental effort-based decision-making. Importantly, our study highlights the relevance of multivariable approaches in elucidating complex cognitive functions.

额叶皮层脑力活动的神经代谢预测因子。
动机驱使个体克服成本以达到预期结果,如奖励或避免惩罚,个体之间存在显著差异。背内侧前额叶皮层/背前扣带皮层(dmPFC/dACC)和前脑岛是参与基于努力的决策的关键脑区。在这里,我们利用质子磁共振波谱(1H-MRS)在7特斯拉下对69名健康参与者的这些大脑区域进行研究,以揭示影响这些差异的神经代谢因素。我们设计并应用了一个基于努力的决策任务,该任务需要心理和身体上的努力来探测动机行为,并辅以计算建模来提取关键行为参数。应用梯度增强机器学习来探索特定代谢物在动机行为中的预测作用。我们的研究结果表明,建立在dmPFC/dACC代谢物上的模型解释了施加高脑力劳动和对脑力劳动敏感的决定。特别是,dmPFC/dACC中的谷氨酸、天冬氨酸和乳酸,这三种通过三羧酸循环和糖酵解联系在一起的代谢物,被确定为dmPFC/dACC的关键鉴别代谢物,预测精神努力选择,支撑能量供应和认知过程。脑岛前部代谢物与努力相关的决定没有显著关系。值得注意的是,外周(血浆)和dmPFC/dACC之间的谷氨酰胺和乳酸水平相关,表明外周和中枢生物标志物之间存在代谢联系。我们的发现为动机行为的神经代谢基础提供了新的见解,并为基于心理努力的决策提出了新的生物标志物。重要的是,我们的研究强调了多变量方法在阐明复杂认知功能方面的相关性。
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来源期刊
CiteScore
11.50
自引率
2.90%
发文量
484
审稿时长
23 weeks
期刊介绍: Psychiatry has suffered tremendously by the limited translational pipeline. Nobel laureate Julius Axelrod''s discovery in 1961 of monoamine reuptake by pre-synaptic neurons still forms the basis of contemporary antidepressant treatment. There is a grievous gap between the explosion of knowledge in neuroscience and conceptually novel treatments for our patients. Translational Psychiatry bridges this gap by fostering and highlighting the pathway from discovery to clinical applications, healthcare and global health. We view translation broadly as the full spectrum of work that marks the pathway from discovery to global health, inclusive. The steps of translation that are within the scope of Translational Psychiatry include (i) fundamental discovery, (ii) bench to bedside, (iii) bedside to clinical applications (clinical trials), (iv) translation to policy and health care guidelines, (v) assessment of health policy and usage, and (vi) global health. All areas of medical research, including — but not restricted to — molecular biology, genetics, pharmacology, imaging and epidemiology are welcome as they contribute to enhance the field of translational psychiatry.
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