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.

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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