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February 21, 2026Biophysical Journal0 citations

BPS2026 - Engineered rapamycin-responsive K2P channels

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LKLeila KhajoueinejadERElena B. RielKHKarl F. Herold

Key Points

  • The aim is to create genetically engineered K2P channels that respond to rapamycin for studying cellular physiology.
  • Developed TREK1/FRB fusion channels to respond to rapamycin.
  • Conducted electrophysiological analyses to assess channel activation.
  • Applied cryo-EM structural studies to evaluate conformational changes in K2P channels.
  • TREK1/FRB channels showed 8-fold activation with nanomolar rapamycin.
  • Found that rapamycin-induced potentiation requires FKBP binding.
  • Established a generalizable method to activate multiple K2P channels effectively.

Abstract

K2P potassium channels play critical roles in maintaining resting membrane potential, conducting background potassium leak currents across a range of cell types. Modulation of K2P channel activity alters cellular excitability by dictating action potential firing thresholds, contributing to the fine-tuning of physiological responses. As the repertoire of high affinity and subtype selective K2P modulators is limited, we created a set of genetically engineered K2P channels that respond to rapamycin or non-immunomodulatory rapamycin analogs. To accomplish this, we inserted the FRB domain of mTOR into a short flexible cytoplasmic loop that links the TM2 and TM3 helices of the TREK1 K2P channel. This TREK1/FRB fusion was functionally indistinguishable from TREK1 WT channels but exhibited an 8-fold activation after administration of nanomolar concentrations of rapamycin. We demonstrate that rapamycin-induced potentiation of the TREK1/FRB channel requires recruitment of an FKBP binding partner, either from the endogenous pool of FKBP within the cell or via fusion of FKBP to the c-terminus of TREK1. Electrophysiological properties of the TREK1/FRB fusion indicate that formation of the FRB/rapamycin/FKBP ternary complex within the TREK1 TM2/TM3 loop leads to a conformational movement of the TREK1 TM4 helix that mimics conventional TREK1 activation gating. Cryo-EM structural studies demonstrate that the positioning of the FRB domain within the TREK1 TM2/TM3 loop is flexible in the absence of rapamycin but becomes rigidified after formation of the FRB/rapamycin/FKBP ternary complex, suggesting a mechanism by which rapamycin binding results in conformational changes that gate the TREK1 channel. We show that this FRB fusion approach can be generalized to successfully activate multiple additional K2Ps, providing chemo-genetically targetable tools for the study of K2P physiology in vivo and a new class of DREADDs that can be utilized to manipulate cellular membrane potential.

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Cite This Study

Khajoueinejad et al. (2026) studied this question.

synapsesocial.com/papers/69990de85b97ab4c14ac295fhttps://doi.org/10.1016/j.bpj.2025.11.1360
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Effect of two activators on the gating of a K2P channel2024 · 7 citations
  2. 2Direct modulation of TRPM8 ion channels by rapamycin and analog macrolide immunosuppressants2024
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  5. 5Extracellular modulation of TREK-2 activity with nanobodies provides insight into the mechanisms of K2P channel regulation2024 · 12 citations