Active Brain & Nervous System Cells, Biochemistry & Physiology

The synaptome architecture of the mammalian brain

In plain English

AI plain-English summary

Every synapse in the brain carries a molecular barcode that determines how it functions, and a new technique now lets scientists read those barcodes across the entire brain. For decades, researchers classified synapses—the junctions where neurons communicate—by the single neurotransmitter they release. This approach missed the true complexity of brain wiring. Over 130 brain diseases involve proteins found at synapses, yet scientists lacked a systematic way to study how these proteins vary from one synapse to the next. Synaptome mapping fills that gap by analysing the molecular makeup of individual synapses at whole-brain scale, revealing a hidden three-dimensional architecture of synapse diversity. This programme will map that diversity across major classes of mammalian synapses, then test how ageing, environment, lived experience, and genetic mutations reshape it. The goal is to explain why certain brain regions and cell types are vulnerable or resilient to disease at different times of life. The work is fundamental science. It will not produce a therapy next year. But understanding the synapse-level logic of brain wiring could eventually guide treatments for disorders ranging from autism to addiction, and provide a framework that links genetics, cell biology, and systems neuroscience into a coherent picture of how the brain works.

View original technical description
Synapses are the hallmark of brain complexity. Their constituent proteins are disrupted in over 130 brain diseases and are the targets of many therapeutic and abused drugs. Traditionally, synapses have been categorised based on neurotransmitters. A fundamentally new approach called synaptome mapping, which enables the molecular analysis of individual synapses on a whole-brain scale, reveals that synapses are far more diverse than previously known and distributed into a remarkable 3D architecture of the brain. The goal of this programme is to leverage synaptome mapping, in combination with complementary genetic, proteomic and cellular approaches, to comprehensively analyse synapse diversity and architecture across the major classes of mammalian brain synapses. This provides the missing link between existing and emerging synapse classifications that is crucial to full functional understanding. Within this comprehensive, integrated framework, our programme will encompass the impacts of ageing, environment, lived experience and mutations, uncovering the contribution of synapse diversity to regional and temporal vulnerabilities, resiliences and adaptation. These findings will inform new principles of brain architecture and function, with important implications across all areas from genetics to systems neuroscience, and will direct novel avenues for therapies aimed at treating a wide range of brain and behavioural disorders.

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Researchers

Seth Grant (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Synaptome architecture of the single neuron
Molecular organization and dynamics of synapse diversity: novel genetic, imaging and computational approaches
Molecular synapse imaging technology and resources
The structural biology of synaptic connectivity: understanding the extracellular organizers of neurotransmission
Defining the Human Synapse Proteome

Original classification

Discovery Award

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