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Updated: Jul 4, 2026

Study of the Functions and Activities of Neuronal K-Cl Co-Transporter KCC2 Using Western Blotting
Published on: December 9, 2022
Regulation of NKCC2 by a chloride-sensing mechanism involving the WNK3 and SPAK kinases
José Ponce-Coria1, Pedro San-Cristobal, Kristopher T Kahle
1Molecular Physiology Unit, Instituto Nacional de Ciencias Médicas y Nutrición Salvador Zubirán and Instituto de Investigaciones Biomédicas, Universidad Nacional Autónoma de México, Tlalpan, 14000 Mexico City, Mexico.
Abstract:
The Na(+):K(+):2Cl(-) cotransporter (NKCC2) is the target of loop diuretics and is mutated in Bartter's syndrome, a heterogeneous autosomal recessive disease that impairs salt reabsorption in the kidney's thick ascending limb (TAL). Despite the importance of this cation/chloride cotransporter (CCC), the mechanisms that underlie its regulation are largely unknown. Here, we show that intracellular chloride depletion in Xenopus laevis oocytes, achieved by either coexpression of the K-Cl cotransporter KCC2 or low-chloride hypotonic stress, activates NKCC2 by promoting the phosphorylation of three highly conserved threonines (96, 101, and 111) in the amino terminus. Elimination of these residues renders NKCC2 unresponsive to reductions of [Cl(-)](i). The chloride-sensitive activation of NKCC2 requires the interaction of two serine-threonine kinases, WNK3 (related to WNK1 and WNK4, genes mutated in a Mendelian form of hypertension) and SPAK (a Ste20-type kinase known to interact with and phosphorylate other CCCs). WNK3 is positioned upstream of SPAK and appears to be the chloride-sensitive kinase. Elimination of WNK3's unique SPAK-binding motif prevents its activation of NKCC2, as does the mutation of threonines 96, 101, and 111. A catalytically inactive WNK3 mutant also completely prevents NKCC2 activation by intracellular chloride depletion. Together these data reveal a chloride-sensing mechanism that regulates NKCC2 and provide insight into how increases in the level of intracellular chloride in TAL cells, as seen in certain pathological states, could drastically impair renal salt reabsorption.
Insights
Intracellular chloride depletion activates the Na(+):K(+):2Cl(-) cotransporter (NKCC2) via WNK3 and SPAK kinases. This chloride-sensing mechanism regulates NKCC2 activity, impacting renal salt reabsorption.
Area of Science:
- Nephrology
- Molecular Biology
- Physiology
Background:
- The Na(+):K(+):2Cl(-) cotransporter (NKCC2) is crucial for salt reabsorption in the kidney's thick ascending limb (TAL).
- NKCC2 is the target of loop diuretics and mutations cause Bartter's syndrome, highlighting its clinical significance.
- Regulatory mechanisms controlling NKCC2 activity remain largely unelucidated.
Purpose of the Study:
- To investigate the mechanisms regulating NKCC2 activity.
- To identify signaling pathways involved in NKCC2 regulation by intracellular chloride levels.
Main Methods:
- Xenopus laevis oocyte expression system.
- Manipulation of intracellular chloride levels via KCC2 coexpression or hypotonic stress.
- Site-directed mutagenesis of NKCC2 and kinase interaction domains.
- Assessment of NKCC2 phosphorylation and activity.
Main Results:
- Intracellular chloride depletion activates NKCC2 by phosphorylating threonines 96, 101, and 111 in its amino terminus.
- This activation is dependent on the kinases WNK3 and SPAK, with WNK3 acting upstream as the chloride sensor.
- Mutations preventing WNK3-SPAK interaction or NKCC2 threonine phosphorylation abolish chloride-sensitive activation.
Conclusions:
- A novel chloride-sensing mechanism regulating NKCC2 activity has been identified.
- WNK3 and SPAK kinases mediate the activation of NKCC2 in response to reduced intracellular chloride.
- Understanding this pathway provides insights into renal salt reabsorption and potential mechanisms in pathological states with altered intracellular chloride levels.
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