Completed Psychology & Behaviour Brain & Nervous System

Dopamine regulation of action initiation and self-control

In plain English

AI plain-English summary

Dopamine, the brain chemical best known for reward, also controls whether we actually bother to act on a potential reward—and sometimes makes us act when we should not. This matters because dopamine’s role in decision-making has been split between two competing theories: one says it signals prediction errors to guide learning, the other says it energises action. The researcher’s recent work suggests both are partly right—dopamine only signals a prediction error if an action is properly initiated. The real question is whether dopamine *causes* us to act, even when we should hold back, and what brain networks regulate that. This is fundamental science. There is no immediate practical application. But understanding how dopamine drives action initiation and self-control could eventually inform treatments for disorders where these systems go wrong—addiction, where the impulse to act overrides restraint; Parkinson’s disease, where initiating action becomes difficult; or ADHD, where withholding action is a struggle. Past fundamental work on dopamine has already reshaped psychiatry and neurology; this programme digs deeper into the basic wiring.

View original technical description
Dopamine has long been associated with value-guided decision-making, but its precise contribution has remained elusive. One prominent theory elegantly relates the phasic activity of dopamine cell bodies to a prediction error term used in reinforcement learning to represent and update expectations of reward. However, another argues that the functional role of dopamine transmission in terminal fields is to motivate and energise responding. My recent work plots a path to reconcile these perspectives by demonstrating that dopamine release only encodes prediction errors if and when a reward-seeking action is appropriately initiated. Therefore, phasic mesolimbic dopamine release signals the value of action over inaction. My programme will use a combination of complex behavioural tasks and state-of-the-art techniques (fast-scan cyclic voltammetry, optogenetic stimulation, chemogenetic inactivation) to test: (i) whether these signals causally promote actions to be taken, even when actions should be withheld, (ii) what networks are involved in regulating mesolimbic dopamine release in situations when actions should be withheld, and (iii) how mesolimbic dopamine release influences a key foraging decision about whether to act to engage with a presented opportunity. Together, these studies will provide fundamental new insights into the relationship between dopamine release, value and action.

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Researchers

Mark Walton (EPMC Awardee)

Related Research

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Original classification

Senior Research Fellowship Basic

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