Completed Psychology & Behaviour Brain & Nervous System

The Conscious Phenotype.

In plain English

AI plain-English summary

A person’s conscious experience of the world—what they see, hear, and feel—varies from one individual to the next, and this project aims to map that variation directly onto the physical structure and wiring of the human brain. Most research on consciousness treats it as a single, uniform phenomenon. This project addresses a gap: we do not know why two people, looking at the same scene, can have subtly different conscious experiences, nor how stable those differences are over time. The researcher will use MEG and fMRI to measure brain activity in hundreds of individuals, focusing on the specific networks—particularly in the parietal and prefrontal cortex—that support awareness of the visual world. A key innovation is the use of simultaneous TMS-fMRI and real-time fMRI biofeedback to test whether altering connectivity in these networks causally changes what a person consciously perceives. If successful, this work would provide a rigorous, brain-based definition of the “conscious phenotype”—a measurable set of states linked to self-reported experience. This is fundamental science. It does not promise an immediate medical or technological application. However, a deeper understanding of how brain structure gives rise to subjective experience could, in the longer term, inform diagnoses for disorders of consciousness, guide treatments for conditions like schizophrenia where self-awareness is altered, and reshape how we assess the mental states of people who cannot communicate verbally.

View original technical description
The repertoire of physiological (and on longer timescales, anatomical) states in which an organism can survive is limited and these states define its phenotype. My research vision is to define the conscious phenotype - the set of states correlated with self-reported conscious experience of the external environment and its underlying basis in human brain anatomy and function. This will require an ambitious individual differences approach to characterizing the variability in conscious experience across people; how this is determined by their particular brain structure and function; and its stability and plasticity over time. This vision is articulated within the general theoretical framework I established in my Senior Fellowship, which proposes that awareness of the visual world reflects co-activation and connectivity between areas of superior parietal and prefrontal cortex and an activated visual representation in the ventral visual pathway. I have three key goals. First, to study individual brain areas within such distributed brain systems using MEG and fMRI imaging to determine whether common motifs underlie the relationship between brain structure, neural activity and phenomenal experience. Such common motifs are expected if phenomenal consciousness has an adaptive function of allowing discrimination of perceptual and mental states. Second, to study how individual variation in connectivity between cortical areas determines phenomenal consciousness. Finally, I will de ploy the powerful tools of simultaneous TMS-fMRI and brain training using real-time fMRI with biofeedback that I have developed at my host centre in order to test the causal role of the structures and connectivity that I have discovered.

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Researchers

Geraint Rees (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Computational Neurophenomenology: Explaining Concious Experiences in terms of Neural Mechanisms
(ConsciousComputation) Computational components of conscious awareness
When and where do you know what you know? fMRI-guided MEG and TMS studies of semantic cognition
The neural and physiological mechanisms of the conscious experience
Studying, Measuring and Altering Consciousness through information theory in the electrical brain

Original classification

Senior Research Fellowship Clinical Renewal

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