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Updated: Jun 21, 2026

Inducing Long-Term Plasticity of Intrinsic Neuronal Excitability in Neurons of the Dorsal Lateral Geniculate Nucleus
Published on: September 20, 2024
Nonlinear signal summation in magnocellular neurons of the macaque lateral geniculate nucleus
Neel T Dhruv1, Chris Tailby, Sach H Sokol
1Center for Neural Science, New York University, New York City, NY, USA. n.dhruv@ucl.ac.uk
Abstract:
Magnocellular (M-), but not parvocellular (P-), neurons of the macaque lateral geniculate nucleus (LGN) differ distinctively in their responses to counterphase-modulated and drifting gratings. Relative to stimulation with drifting gratings, counterphase modulation reduces the responses of M- cells in a band around 25 Hz, producing a "notch" in the temporal modulation transfer function (tMTF). The notch is prominent in nearly every M- cell with little variation in the temporal frequency at which it is deepest. The machinery responsible for the notch lies mostly outside the classical linear center. Directly driving the notching mechanism with annular gratings evokes no linear response but elicits a second harmonic (F2) modulation of the discharge accompanied by a drop in the mean discharge (F0). Analysis of the S- potential, which reveals inputs from ganglion cells, shows that 1) tMTFs of the afferent retinal ganglion cells are not notched and 2) during stimulation with annular gratings, the second harmonic component is present, but the drop in the F0 is largely absent from the responses of parasol ganglion cells. These results suggest that the notch is caused by the combined action of the linear response and the second harmonic response, both inherited from retina, and a suppression that originates after the retina. Our results reveal a distinctive signal transformation in the LGN and they show that nearly every M- cell exhibits a spatial nonlinearity like that observed in Y cells of the cat.
Insights
Magnocellular (M-) neurons in the lateral geniculate nucleus (LGN) exhibit a unique "notch" in their temporal modulation transfer function. This response, absent in parvocellular (P-) neurons, arises from retinal inputs and post-retinal suppression.
Area of Science:
- Neuroscience
- Visual System Physiology
- Sensory Transduction
Background:
- Magnocellular (M-) and parvocellular (P-) neurons in the lateral geniculate nucleus (LGN) process visual information differently.
- M- cells are known for rapid, transient responses, crucial for motion detection.
Purpose of the Study:
- To investigate the unique response properties of M- cells in the macaque LGN.
- To elucidate the mechanisms underlying the temporal modulation transfer function (tMTF)
- notch
- observed in M- cells.
Main Methods:
- Electrophysiological recordings from LGN neurons in macaques.
- Stimulation using drifting and counterphase-modulated gratings.
- Analysis of S-potentials to assess retinal ganglion cell inputs.
- Investigation of responses to annular gratings to probe nonlinear mechanisms.
Main Results:
- M- cells, but not P- cells, exhibit a prominent notch in their tMTF around 25 Hz.
- This notch is largely independent of the precise temporal frequency.
- The notch originates from a combination of linear retinal inputs and a post-retinal suppressive mechanism.
- Parasol ganglion cells show second harmonic modulation but lack the mean discharge drop seen in M- cells.
Conclusions:
- The LGN M- pathway exhibits a distinctive nonlinear signal transformation.
- This transformation involves integrating linear retinal inputs with a novel suppressive process.
- M- cells display spatial nonlinearities analogous to cat Y-cells.
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