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Concentration-Dependent Bidirectional Modification of Evoked Synaptic Transmission by Gadolinium and Adverse Effects of Gadolinium-Based Contrast Agent.

Abstract

Gadolinium-based contrast agents (GBCAs) for magnetic resonance imaging (MRI) are gadolinium chelates and can leave gadolinium in brain regions after administration, causing damage to brain tissues. However, the exact effects of gadolinium on synaptic function and the underlying mechanisms have not yet been elucidated. Here, we report that gadolinium differentially modulates evoked and spontaneous synaptic transmission and induces bidirectional changes in the efficacy of evoked synaptic transmission in the mouse hippocampus in a concentration-dependent manner. Low-concentration gadolinium (100 μM) modestly potentiated evoked field excitatory postsynaptic potentials (fEPSPs), while high-concentration gadolinium induced group 1 metabotropic glutamate receptor (mGluR)-, endocannabinoid (eCB)-, and purinergic P2Y1 receptor (P2Y1R)-dependent, presynaptically expressed long-term depression (LTD). Higher concentration of gadolinium (1,000 μM) also induced NMDAR- and mGluR-independent, partially P2Y13R-dependent, postsynaptically expressed LTD. Low-concentration gadolinium greatly increased miniature excitatory postsynaptic current (mEPSC) frequency, while high-concentration gadolinium much more robustly increased its frequency and amplitude. Finally, we found that evoked EPSCs were not affected by a macrocyclic GBCA, gadoterate meglumine (Gd-GOTA, Magnescope). However, evoked EPSCs were enhanced by a linear GBCA, gadopentetate dimeglumine (Gd-DTPA, Magnevist), at 100 μM, a clinically relevant concentration in the human brain after repeated clinical GBCA administration and in the cerebrospinal fluid in the rodent brain during experimental GBCA administration. Thus, evoked and spontaneous synaptic transmissions are independently modulated by gadolinium. Furthermore, Gd-GOTA effectively chelated gadolinium; however, Gd-DTPA had side effects on the evoked synaptic transmission, presumably because it did not completely chelate gadolinium.
Copyright © 2025 the authors.

Authors

Odgerel Zorigt, Hiroki Yasuda, Takahito Nakajima, Yoshito Tsushima

Department of Diagnostic Radiology and Nuclear Medicine, Gunma University Graduate School of Medicine, Maebashi, Gunma 371-8511, Japan.

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3 products referenced in this paper

(14537) PPADS (sodium salt)

a Biochemical by Cayman Chemical

(2402) MRS 2211

a Biochemical by Tocris Bioscience

(3540) Orlistat

a Biochemical by Tocris Bioscience

Journal The Journal of Neuroscience

Volume 45

Issue 17

Publication Date 23 April 2025

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Publication metadata is provided by PubMed®, courtesy of the U.S. National Library of Medicine. Information for this publication was last updated on 2026-08-30 04:50:23 UTC.

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