MONaKA, a novel modulator of the plasma membrane Na,K-ATPase
Hua Mao1, Tanya S Ferguson, Susan M Cibulsky
1Department of Neuroscience, University of Pennsylvania School of Medicine, Philadelphia, Pennsylvania 19104, USA.
Abstract:
We have cloned and characterized mouse and human variants of MONaKA, a novel protein that interacts with and modulates the plasma membrane Na,K-ATPase. MONaKA was cloned based on its sequence homology to the Drosophila Slowpoke channel-binding protein dSlob, but mouse and human MONaKA do not bind to mammalian Slowpoke channels. At least two splice variants of MONaKA exist; the splicing is conserved perfectly between mouse and human, suggesting that it serves some important function. Both splice variants of MONaKA are expressed widely throughout the CNS and peripheral nervous system, with different splice variant expression ratios in neurons and glia. A yeast two-hybrid screen with MONaKA as bait revealed that it binds tightly to the beta1 and beta3 subunits of the Na,K-ATPase. The association between MONaKA and Na,K-ATPase beta subunits was confirmed further by coimmunoprecipitation from transfected cells, mouse brain, and cultured mouse astrocytes. A glutathione S-transferase-MONaKA fusion protein inhibits Na,K-ATPase activity from whole brain or cultured astrocytes. Furthermore, transfection of MONaKA inhibits 86Rb+ uptake via the Na,K-ATPase in intact cells. These results are consistent with the hypothesis that MONaKA modulates brain Na,K-ATPase and may thereby participate in the regulation of electrical excitability and synaptic transmission.
Insights
Researchers discovered MONaKA, a novel protein that interacts with and modulates the Na,K-ATPase. This protein is widely expressed in the nervous system and impacts brain function by regulating the Na,K-ATPase pump activity.
Area of Science:
- Neuroscience
- Molecular Biology
- Biochemistry
Background:
- MONaKA is a novel protein identified through sequence homology to dSlob.
- MONaKA interacts with and modulates the plasma membrane Na,K-ATPase.
- Two conserved splice variants of MONaKA exist, suggesting functional importance.
Purpose of the Study:
- To characterize mouse and human MONaKA variants.
- To investigate the interaction of MONaKA with the Na,K-ATPase.
- To determine the functional consequences of MONaKA on Na,K-ATPase activity.
Main Methods:
- Cloning and characterization of MONaKA variants.
- Yeast two-hybrid screening to identify binding partners.
- Coimmunoprecipitation assays to confirm protein interactions.
- Enzyme activity assays and 86Rb+ uptake measurements to assess functional modulation.
Main Results:
- MONaKA binds to the beta1 and beta3 subunits of the Na,K-ATPase.
- MONaKA expression is widespread in the central and peripheral nervous systems, with differential ratios in neurons and glia.
- MONaKA inhibits Na,K-ATPase activity and 86Rb+ uptake in cells and brain tissue.
Conclusions:
- MONaKA is a novel modulator of the brain Na,K-ATPase.
- MONaKA may play a role in regulating neuronal electrical excitability and synaptic transmission.
- The conserved splicing of MONaKA suggests a critical physiological function in the nervous system.
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