PT - JOURNAL ARTICLE AU - Xiaohui Sun AU - Jingyi Shi AU - Kelli Delaloye AU - Xiao Yang AU - Huanghe Yang AU - Guohui Zhang AU - Jianmin Cui TI - The Interface between Membrane-Spanning and Cytosolic Domains in Ca<sup>2+</sup>-Dependent K<sup>+</sup> Channels Is Involved in β Subunit Modulation of Gating AID - 10.1523/JNEUROSCI.0620-13.2013 DP - 2013 Jul 03 TA - The Journal of Neuroscience PG - 11253--11261 VI - 33 IP - 27 4099 - http://www.jneurosci.org/content/33/27/11253.short 4100 - http://www.jneurosci.org/content/33/27/11253.full SO - J. Neurosci.2013 Jul 03; 33 AB - Large-conductance, voltage-, and Ca2+-dependent K+ (BK) channels are broadly expressed in various tissues to modulate neuronal activity, smooth muscle contraction, and secretion. BK channel activation depends on the interactions among the voltage sensing domain (VSD), the cytosolic domain (CTD), and the pore gate domain (PGD) of the Slo1 α-subunit, and is further regulated by accessory β subunits (β1–β4). How β subunits fine-tune BK channel activation is critical to understand the tissue-specific functions of BK channels. Multiple sites in both Slo1 and the β subunits have been identified to contribute to the interaction between Slo1 and the β subunits. However, it is unclear whether and how the interdomain interactions among the VSD, CTD, and PGD are altered by the β subunits to affect channel activation. Here we show that human β1 and β2 subunits alter interactions between bound Mg2+ and gating charge R213 and disrupt the disulfide bond formation at the VSD–CTD interface of mouse Slo1, indicating that the β subunits alter the VSD–CTD interface. Reciprocally, mutations in the Slo1 that alter the VSD–CTD interaction can specifically change the effects of the β1 subunit on the Ca2+ activation and of the β2 subunit on the voltage activation. Together, our data suggest a novel mechanism by which the β subunits modulated BK channel activation such that a β subunit may interact with the VSD or the CTD and alter the VSD–CTD interface of the Slo1, which enables the β subunit to have effects broadly on both voltage and Ca2+-dependent activation.