FB2026_03 , released September 17, 2026
Reference Report
Open Close
Reference
Citation
Zandany, N., Marciano, S., Magidovich, E., Frimerman, T., Yehezkel, R., Shem-Ad, T., Lewin, L., Abdu, U., Orr, I., Yifrach, O. (2015). Alternative splicing modulates Kv channel clustering through a molecular ball and chain mechanism.  Nat. Commun. 6(): 6488.
FlyBase ID
FBrf0231375
Publication Type
Research paper
Abstract
Ion channel clustering at the post-synaptic density serves a fundamental role in action potential generation and transmission. Here, we show that interaction between the Shaker Kv channel and the PSD-95 scaffold protein underlying channel clustering is modulated by the length of the intrinsically disordered C terminal channel tail. We further show that this tail functions as an entropic clock that times PSD-95 binding. We thus propose a 'ball and chain' mechanism to explain Kv channel binding to scaffold proteins, analogous to the mechanism describing channel fast inactivation. The physiological relevance of this mechanism is demonstrated in that alternative splicing of the Shaker channel gene to produce variants of distinct tail lengths resulted in differential channel cell surface expression levels and clustering metrics that correlate with differences in affinity of the variants for PSD-95. We suggest that modulating channel clustering by specific spatial-temporal spliced variant targeting serves a fundamental role in nervous system development and tuning.
PubMed ID
PubMed Central ID
Related Publication(s)
Note

A mechanistic framework for studying Kv channel clustering.
Zandany and Yifrach, 2015, Channels 9(4): 163--165 [FBrf0231576]

Associated Information
Comments
Associated Files
Other Information
Secondary IDs
    Language of Publication
    English
    Additional Languages of Abstract
    Parent Publication
    Publication Type
    Journal
    Abbreviation
    Nat. Commun.
    Title
    Nature communications
    ISBN/ISSN
    2041-1723
    Data From Reference
    Genes (2)
    Physical Interactions (3)
    Cell Lines (1)