4.7 Article

β-Secretase BACE1 Promotes Surface Expression and Function of Kv3.4 at Hippocampal Mossy Fiber Synapses

期刊

JOURNAL OF NEUROSCIENCE
卷 38, 期 14, 页码 3480-3494

出版社

SOC NEUROSCIENCE
DOI: 10.1523/JNEUROSCI.2643-17.2018

关键词

Alzheimer's disease; BACE1; hippocampal mossy fibers; Kv3; synapse; trafficking

资金

  1. Deutsche Forschungsgemeinschaft [INST 90/675-1]
  2. Staedtler-Stiftung
  3. National Institutes of Health [AG014713]
  4. Ernst und Anita Bauer-Stiftung
  5. Studienstiftung des deutschen Volkes

向作者/读者索取更多资源

The beta-secretase beta-site APP-cleaving enzyme 1 (BACE1) is deemed a major culprit in Alzheimer's disease, but accumulating evidence indicates that there is more to the enzyme than driving the amyloidogenic processing of the amyloid precursor protein. For example, BACE1 has emerged as an important regulator of neuronal activity through proteolytic and, most unexpectedly, also through nonproteolytic interactions with several ion channels. Here, we identify and characterize the voltage-gated K+ channel 3.4 (Kv3.4) as a new and functionally relevant interaction partner of BACE1. Kv3.4 gives rise to A-type current with fast activating and inactivating kinetics and serves to repolarize the presynaptic action potential. We found that BACE1 and Kv3.4 are highly enriched and remarkably colocalized in hippocampal mossy fibers (MFs). In BACE1(-/-) mice of either sex, Kv3.4 surface expression was significantly reduced in the hippocampus and, in synaptic fractions thereof, Kv3.4 was specifically diminished, whereas protein levels of other presynaptic K+ channels such as K(Ca)1.1 and K(Ca)2.3 remained unchanged. The apparent loss of presynaptic Kv3.4 affected the strength of excitatory transmission at the MF-CA3 synapse in hippocampal slices of BACE1(-/-) mice when probed with the Kv3 channel blocker BDS-I. The effect of BACE1 on Kv3.4 expression and function should be bidirectional, as predicted from a heterologous expression system, in which BACE1 cotransfection produced a concomitant upregulation of Kv3.4 surface level and current based on a physical interaction between the two proteins. Our data show that, by targeting Kv3.4 to presynaptic sites, BACE1 endows the terminal with a powerful means to regulate the strength of transmitter release.

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