Related Experiment Video
Updated: Mar 26, 2026

Isolation and Kv Channel Recordings in Murine Atrial and Ventricular Cardiomyocytes
Published on: March 12, 2013
Bioelectric signalling via potassium channels: a mechanism for craniofacial dysmorphogenesis in KCNJ2-associated
Dany Spencer Adams1, Sebastien G M Uzel2, Jin Akagi3
1Department of Biology and Tufts Centre for Regenerative and Developmental Biology, Tufts University, 200 Boston Avenue, Medford, MA, 02155, USA.
Key Points:
Xenopus laevis craniofacial development is a good system for the study of Andersen-Tawil Syndrome (ATS)-associated craniofacial anomalies (CFAs) because (1) Kcnj2 is expressed in the nascent face; (2) molecular-genetic and biophysical techniques are available for the study of ion-dependent signalling during craniofacial morphogenesis; (3) as in humans, expression of variant Kcnj2 forms in embryos causes a muscle phenotype; and (4) variant forms of Kcnj2 found in human patients, when injected into frog embryos, cause CFAs in the same cell lineages. Forced expression of WT or variant Kcnj2 changes the normal pattern of Vmem (resting potential) regionalization found in the ectoderm of neurulating embryos, and changes the normal pattern of expression of ten different genetic regulators of craniofacial development, including markers of cranial neural crest and of placodes. Expression of other potassium channels and two different light-activated channels, all of which have an effect on Vmem , causes CFAs like those induced by injection of Kcnj2 variants. In contrast, expression of Slc9A (NHE3), an electroneutral ion channel, and of GlyR, an inactive Cl(-) channel, do not cause CFAs, demonstrating that correct craniofacial development depends on a pattern of bioelectric states, not on ion- or channel-specific signalling. Using optogenetics to control both the location and the timing of ion flux in developing embryos, we show that affecting Vmem of the ectoderm and no other cell layers is sufficient to cause CFAs, but only during early neurula stages. Changes in Vmem induced late in neurulation do not affect craniofacial development. We interpret these data as strong evidence, consistent with our hypothesis, that ATS-associated CFAs are caused by the effect of variant Kcnj2 on the Vmem of ectodermal cells of the developing face. We predict that the critical time is early during neurulation, and the critical cells are the ectodermal cranial neural crest and placode lineages. This points to the potential utility of extant, ion flux-modifying drugs as treatments to prevent CFAs associated with channelopathies such as ATS.
Abstract:
Variants in potassium channel KCNJ2 cause Andersen-Tawil Syndrome (ATS); the induced craniofacial anomalies (CFAs) are entirely unexplained. We show that KCNJ2 is expressed in Xenopus and mouse during the earliest stages of craniofacial development. Misexpression in Xenopus of KCNJ2 carrying ATS-associated mutations causes CFAs in the same structures affected in humans, changes the normal pattern of membrane voltage potential regionalization in the developing face and disrupts expression of important craniofacial patterning genes, revealing the endogenous control of craniofacial patterning by bioelectric cell states. By altering cells' resting potentials using other ion translocators, we show that a change in ectodermal voltage, not tied to a specific protein or ion, is sufficient to cause CFAs. By adapting optogenetics for use in non-neural cells in embryos, we show that developmentally patterned K(+) flux is required for correct regionalization of the resting potentials and for establishment of endogenous early gene expression domains in the anterior ectoderm, and that variants in KCNJ2 disrupt this regionalization, leading to the CFAs seen in ATS patients.
Insights
Andersen-Tawil Syndrome (ATS) craniofacial anomalies (CFAs) result from KCNJ2 variants disrupting ectodermal cell voltage. Optogenetics confirms that altered membrane potential during early development causes CFAs, suggesting ion flux drugs may prevent them.
Area of Science:
- Developmental Biology
- Genetics
- Biophysics
Background:
- Andersen-Tawil Syndrome (ATS) is linked to KCNJ2 potassium channel variants, but the mechanisms causing craniofacial anomalies (CFAs) remain unclear.
- KCNJ2 is expressed early in craniofacial development in both Xenopus and mouse models.
- Previous studies suggest ion channel function is critical for embryonic development.
Purpose of the Study:
- To investigate the role of KCNJ2 variants and bioelectric states in craniofacial development.
- To determine if altered membrane potential in ectodermal cells is sufficient to cause CFAs.
- To identify the critical developmental timing and cell types involved in ATS-associated CFAs.
Main Methods:
- Utilized Xenopus laevis embryos for craniofacial development studies.
- Employed molecular-genetic techniques to misexpress wild-type (WT) and variant KCNJ2.
- Used optogenetics to precisely control ion flux and membrane potential in developing embryos.
Main Results:
- Misexpression of ATS-associated KCNJ2 variants in Xenopus embryos induced CFAs mirroring human conditions.
- Altered membrane potential (Vmem) in ectodermal cells, not specific ion channels, was sufficient to cause CFAs.
- Optogenetic manipulation confirmed that Vmem changes during early neurulation are critical for craniofacial patterning.
Conclusions:
- ATS-associated CFAs are caused by disruptions in the bioelectric state of ectodermal cells due to KCNJ2 variants.
- Early neurulation is the critical period, and ectodermal cranial neural crest and placode lineages are the critical cells.
- Ion flux-modifying drugs may offer a therapeutic strategy to prevent channelopathy-associated CFAs.
Related Concept Videos
Voltage-gated Ion Channels
Generally, all voltage-gated ion channels have a 'voltage-sensing domain' that spans the lipid bilayer. The charged residues in the sensor move in response to the membrane potential changes that open the channel allowing ions movement. There are several types of...
Voltage-gated Ion Channels
Mechanically-gated Ion Channels
Mechanically-gated Ion Channels
The Role of Ion Channels in Neuronal Computation
Sometimes a single EPSP is strong enough to induce an action potential in the postsynaptic neuron. However, multiple presynaptic inputs must often create EPSPs around the same time for the postsynaptic neuron to be sufficiently depolarized to fire an action potential....
Action Potential
Membrane potential in neurons
Neurons typically have a resting membrane potential of about -70 millivolts (mV). When they receive...

