Related Experiment Video
Updated: May 26, 2026

Deriving the Time Course of Glutamate Clearance with a Deconvolution Analysis of Astrocytic Transporter Currents
Published on: August 7, 2013
Regulation of the glutamate transporters by JAK2
Zohreh Hosseinzadeh1, Shefalee K Bhavsar, Mentor Sopjani
1Department of Physiology, University of Tübingen, Gmelinstrasse 5, Tübingen, Germany.
Abstract:
The Janus-activated kinase-2 JAK2 is involved in the signaling of leptin and erythropoietin receptors and mediates neuroprotective effects of the hormones. In theory, JAK2 could be effective through modulation of the glutamate transporters, carriers accounting for the clearance of glutamate released during neurotransmission. The present study thus elucidated the effect of JAK2 on the glutamate transporters EAAT1, EAAT2, EAAT3 and EAAT4. To this end, cRNA encoding the carriers was injected into Xenopus oocytes with or without cRNA encoding JAK2 and glutamate transport was estimated from glutamate induced current (I(glu)). I(glu) was observed in Xenopus oocytes expressing EAAT1 or EAAT2 or EAAT3 or EAAT4, but not in water injected oocytes. Coexpression of JAK2 resulted in an increase of I(glu) by 83% (EAAT1), 67% (EAAT2), 42% (EAAT3) and 126% (EAAT4). As shown for EAAT4 expressing Xenopus oocytes, the effect of JAK2 was mimicked by gain of function mutation (V617F)JAK2 but not by the inactive mutant (K882E)JAK2. Incubation with JAK2 inhibitor AG490 (40 μM) resulted in a gradual decrease of I(glu) by 53%, 79% and 92% within 3, 6 and 24 hours. Confocal microscopy and chemiluminescence analysis revealed that JAK2 coexpression increased EAAT4 protein abundance in the cell membrane. Disruption of transcription did not appreciably modify the up-regulation of I(glu) in EAAT4 expressing oocytes. The decay of I(glu) following inhibition of carrier insertion with brefeldin A was similar in oocytes expressing EAAT4 + JAK2 and oocytes expressing EAAT4 alone, indicating that JAK2 did not appreciably affect carrier retrieval from the membrane. In conclusion, JAK2 is a novel powerful regulator of glutamate transporters and thus participates in the protection against excitotoxicity.
Insights
Janus-activated kinase-2 (JAK2) enhances glutamate transporter function, increasing glutamate clearance. This discovery suggests JAK2
Area of Science:
- Neuroscience
- Molecular Biology
- Biochemistry
Background:
- Janus-activated kinase-2 (JAK2) is implicated in leptin and erythropoietin receptor signaling and exhibits neuroprotective properties.
- Glutamate transporters are crucial for clearing neurotransmitters and preventing excitotoxicity.
Purpose of the Study:
- To investigate the effect of JAK2 on the function of glutamate transporters EAAT1, EAAT2, EAAT3, and EAAT4.
- To determine the mechanism by which JAK2 modulates glutamate transporter activity.
Main Methods:
- cRNA encoding glutamate transporters and JAK2 were injected into Xenopus oocytes.
- Glutamate-induced currents (I(glu)) were measured to assess transporter function.
- JAK2 activity was modulated using a gain-of-function mutation, an inactive mutant, and a specific inhibitor (AG490).
- Protein abundance and localization were analyzed using confocal microscopy and chemiluminescence.
Main Results:
- Coexpression of JAK2 significantly increased glutamate transport mediated by all tested EAATs (EAAT1: 83%, EAAT2: 67%, EAAT3: 42%, EAAT4: 126%).
- JAK2's effect was mimicked by a gain-of-function JAK2 mutation but not an inactive mutant.
- JAK2 inhibition dose-dependently reduced glutamate transport.
- JAK2 coexpression increased EAAT4 protein levels in the cell membrane, independent of transcription.
- JAK2 did not affect carrier retrieval from the membrane.
Conclusions:
- JAK2 is a potent regulator of glutamate transporter function.
- JAK2 enhances glutamate transporter activity, potentially through increased membrane abundance.
- These findings suggest JAK2 plays a role in protecting against excitotoxicity.
Related Concept Videos
The JAK-STAT Signaling Pathway
Amplifying Signals via Enzymatic Cascade
cAMP-dependent Protein Kinase Pathways
PI3K/mTOR/AKT Signaling Pathway
Receptor Downregulation in MVBs
The EGFR can initiate signaling pathways that lead to cell proliferation, migration, and differentiation. Overexpression of EGFR stimulates cells to proliferate. Excessive EGFR activation may...
GPCRs Regulate Adenylyl Cylase Activity
Two...
