A sequential two-step priming scheme reproduces diversity in synaptic strength and short-term plasticity.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 35969787.
- Also identified by DOI 10.1073/pnas.2207987119 and PMC identifier 9407230.
- Licence recorded as CC BY-NC-ND.
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Abstract
Glutamatergic synapses display variable strength and diverse short-term plasticity (STP), even for a given type of connection. Using nonnegative tensor factorization and conventional state modeling, we demonstrate that a kinetic scheme consisting of two sequential and reversible steps of release-machinery assembly and a final step of synaptic vesicle (SV) fusion reproduces STP and its diversity among synapses. Analyzing transmission at the calyx of Held synapses reveals that differences in synaptic strength and STP are not primarily caused by variable fusion probability (<i>p<sub>fusion</sub></i>) but are determined by the fraction of docked synaptic vesicles equipped with a mature release machinery. Our simulations show that traditional quantal analysis methods do not necessarily report <i>p<sub>fusion</sub></i> of SVs with a mature release machinery but reflect both <i>p<sub>fusion</sub></i> and the distribution between mature and immature priming states at rest. Thus, the approach holds promise for a better mechanistic dissection of the roles of presynaptic proteins in the sequence of SV docking, two-step priming, and fusion. It suggests a mechanism for activity-induced redistribution of synaptic efficacy.
Medical subject headings
- Membrane Fusion
- Neuronal Plasticity
- Synapses
- Synaptic Vesicles