Magnetogenetic control of endogenous calcium signaling via ROS-sensitive ion channels reveals astrocytic regulation of neural circuit activity
HERNANDEZ-MORALES, M.; Morales-Zuniga, J.; Tran, T.; Han, V.; Tjahjono, N.; Natan, R. G.; Li, Y.; Tian, L.; Ji, N.; Liu, C.
Show abstract
Astrocytes exhibit complex calcium signaling proposed to detect, integrate, and modulate neuronal activity; however, their causal contribution to neural circuit function remains unresolved. This is partly due to the lack of tools that recapitulate physiological astrocyte calcium signaling. Here, we show that experimental magnetic control of endogenous calcium signaling in astrocytes is sufficient to modulate neural circuit dynamics. Using pmFeRIC, a magnetogenetic tool for remote, noninvasive, and on-demand activation of endogenous calcium pathways, we demonstrate that selective activation of astrocyte calcium signaling drives neuronal activity. pmFeRIC uses magnetic fields and endogenous ferritin to generate localized reactive oxygen species (ROS) at the plasma membrane, activating native ROS-sensitive ion channels, inducing calcium influx. In hippocampal circuits in vitro, magnetic activation of endogenous astrocytic calcium signaling produced robust, state-dependent changes in neuronal circuit activity, in part by increasing presynaptic release probability, postsynaptic burst firing, and glutamatergic transmission. These effects were mediated by transient receptor potential channels, amplified by intracellular calcium stores, and abolished when astrocyte calcium signaling was disrupted, establishing a causal role in neural circuit dynamics. In vivo, pmFeRIC activates endogenous calcium signaling in astrocytes with kinetics comparable to locomotion-induced activity, enabling control of astrocyte calcium dynamics that resemble physiological behavioral responses. Together, these findings establish that endogenous astrocytic calcium signaling is sufficient to modulate neural circuit function and introduce a broadly applicable platform for cell-specific, wireless, on-demand control of endogenous calcium signaling through magnetic activation of ROS-sensitive ion channels.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Propagation of Hippocampal Ripples to the Neocortex by Way of a Subiculum-Retrosplenial Pathway 97%
- All-optical closed-loop voltage clamp for precise control of muscles and neurons in live animals 97%
- A neuron type-specific microexon in Ank3/ankyrin-G modulates calcium activity and neuronal excitability 97%
Similar papers in this journal
Similar papers in this journal
- A latent pool of neurons silenced by sensory-evoked inhibition can be recruited to enhance perception 96%
- Potentiation of active locomotor state by spinal-projecting serotonergic neurons 96%
- Embryonically Active Piriform Cortex Neurons Promote Intracortical Recurrent Connectivity during Development 96%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.