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Published on: August 28, 2021
Neuroimaging in Addiction: Principles of Functional Near-infrared Spectroscopy and Its Emerging Role in De-addiction:
Medala Kalpana1, Maheshkumar K2, Madhusudhan Umesh1
1Department of Physiology, Government Yoga & Naturopathy Medical college & Hospital, Chennai, Tamilnadu, India.
Background:
Substance use disorders (SUDs) remain a major global health challenge with high relapse rates. Functional near-infrared spectroscopy (fNIRS), a non-invasive, portable modality enabling real-time monitoring of cortical haemodynamic changes, is well suited to studying addiction neurobiology in ecologically valid settings. This review examines fNIRS principles and applications in addiction research and de-addiction therapy.
Summary:
PubMed, Scopus and Web of Science were searched (2000-2025) using terms including fNIRS, addiction, substance use disorder, prefrontal cortex, neurofeedback and de-addiction. fNIRS reliably detects altered prefrontal cortex (PFC) haemodynamic responses during cue-reactivity and cognitive tasks in addiction. Findings include reduced dorsolateral PFC activation with prolonged abstinence, differential orbitofrontal cortex activation across substances, and use as a treatment-response biomarker. Emerging applications include neurofeedback and machine-learning-based classification. fNIRS offers portability and ecological validity over conventional neuroimaging. Future research should standardise protocols, validate biomarkers in multicentre trials, and integrate fNIRS with EEG and fMRI.
Key Message:
fNIRS is a portable, non-invasive tool that reliably detects altered prefrontal cortex activation in substance use disorders. Cue-reactivity and cognitive paradigms identify biomarkers of craving, executive dysfunction and relapse risk. fNIRS-based neurofeedback shows early promise for improving self-regulation and reducing relapse. Wearable fNIRS with machine learning and multimodal integration enables personalised addiction monitoring.
