4.8 Article

Conformation-sensitive antibody reveals an altered cytosolic PAS/CNBh assembly during hERG channel gating

Publisher

NATL ACAD SCIENCES
DOI: 10.1073/pnas.2108796118

Keywords

FRET; PAS domain; CNBh domain; scFv antibodies; LQTS

Funding

  1. NIH [1R01NS081320, 1R01HL131403]
  2. National Institute of Neurological Disorders and Stroke [F99NS125824, R00HL133482, R01 GM130701]
  3. Agencia Estatal de Investigacion [RTI2018-101269-B-I00]
  4. [POCI-01-0145-FEDER-022122]

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Research has shown that single-chain variable fragment antibodies can modulate hERG channel function by binding to the PAS domain and generate a Förster resonance energy transfer signal in the channel open state. The state dependence of the FRET signal disappears when a mutation that disrupts the PAS-CNBh interaction is introduced.
The human ERG (hERG) K+ channel has a crucial function in cardiac repolarization, and mutations or channel block can give rise to long QT syndrome and catastrophic ventricular arrhythmias. The cytosolic assembly formed by the Per-Arnt-Sim (PAS) and cyclic nucleotide binding homology (CNBh) domains is the defining structural feature of hERG and related KCNH channels. However, the molecular role of these two domains in channel gating remains unclear. We have previously shown that single-chain variable fragment (scFv) antibodies can modulate hERG function by binding to the PAS domain. Here, we mapped the scFv2.12 epitope to a site overlapping with the PAS/CNBh domain interface using NMR spectroscopy and mutagenesis and show that scFv binding in vitro and in the cell is incompatible with the PAS interaction with CNBh. By generating a fluorescently labeled scFv2.12, we demonstrate that association with the full-length hERG channel is state dependent. We detect Forster resonance energy transfer (FRET) with scFv2.12 when the channel gate is open but not when it is closed. In addition, state dependence of scFv2.12 FRET signal disappears when the R56Q mutation, known to destabilize the PAS-CNBh interaction, is introduced in the channel. Altogether, these data are consistent with an extensive structural alteration of the PAS/CNBh assembly when the cytosolic gate opens, likely favoring PAS domain dissociation from the CNBh domain.

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