4.8 Article

Dissection of the long-range projections of specific neurons at the synaptic level in the whole mouse brain

出版社

NATL ACAD SCIENCES
DOI: 10.1073/pnas.2202536119

关键词

synapse; synaptophysin; whole brain; basal forebrain; Alzheimer's disease

资金

  1. National Science and Technology Innovation 2030 Grant [2021ZD0201001]
  2. National Nature Science Foundation of China [81827901, 32192412, 31871088]
  3. CAMS (Chinese Academy of Medical Sciences) Innovation Fund for Medical Sciences [2019-I2M-5-014]

向作者/读者索取更多资源

Through synaptic connections, the brain forms functional motifs and executes specific functions. Researchers successfully mapped the whole-brain distribution and architecture of long projections of specific neurons, and found that synaptic degeneration was inconsistent with the accumulation of amyloid-beta plaques but was preferred in memory-related circuits.
Through synaptic connections, long-range circuits transmit information among neurons and connect different brain regions to form functional motifs and execute specific functions. Tracing the synaptic distribution of specific neurons requires submicron-level resolution information. However, it is a great challenge to map the synaptic terminals completely because these fine structures span multiple regions, even in the whole brain. Here, we develop a pipeline including viral tracing, sample embedding, fluorescent micro-optical sectional tomography, and big data processing. We mapped the whole-brain distribution and architecture of long projections of the parvalbumin neurons in the basal forebrain at the synaptic level. These neurons send massive projections to multiple downstream regions with subregional preference. With three-dimensional reconstruction in the targeted areas, we found that synaptic degeneration was inconsistent with the accumulation of amyloid-beta plaques but was preferred in memory-related circuits, such as hippocampal formation and thalamus, but not in most hypothalamic nuclei in 8-month-old mice with five familial Alzheimer's disease mutations. Our pipeline provides a platform for generating a whole-brain atlas of cell-type-specific synaptic terminals in the physiological and pathological brain, which can provide an important resource for the study of the organizational logic of specific neural circuits and the circuitry changes in pathological conditions.

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