Probing multiplexed basal dendritic computations using two-photon 3D holographic uncaging

Summary: Basal dendrites of layer 5 cortical pyramidal neurons exhibit Na+ and N-methyl-D-aspartate receptor (NMDAR) regenerative spikes and are uniquely poised to influence somatic output. Nevertheless, due to technical limitations, how multibranch basal dendritic integration shapes and enables mul...

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Published in:Cell Reports
Main Authors: Shulan Xiao, Saumitra Yadav, Krishna Jayant
Format: Article
Language:English
Published: Elsevier 2024-07-01
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2211124724007423
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author Shulan Xiao
Saumitra Yadav
Krishna Jayant
author_facet Shulan Xiao
Saumitra Yadav
Krishna Jayant
author_sort Shulan Xiao
collection DOAJ
container_title Cell Reports
description Summary: Basal dendrites of layer 5 cortical pyramidal neurons exhibit Na+ and N-methyl-D-aspartate receptor (NMDAR) regenerative spikes and are uniquely poised to influence somatic output. Nevertheless, due to technical limitations, how multibranch basal dendritic integration shapes and enables multiplexed barcoding of synaptic streams remains poorly mapped. Here, we combine 3D two-photon holographic transmitter uncaging, whole-cell dynamic clamp, and biophysical modeling to reveal how synchronously activated synapses (distributed and clustered) across multiple basal dendritic branches are multiplexed under quiescent and in vivo-like conditions. While dendritic regenerative Na+ spikes promote millisecond somatic spike precision, distributed synaptic inputs and NMDAR spikes regulate gain. These concomitantly occurring dendritic nonlinearities enable multiplexed information transfer amid an ongoing noisy background, including under back-propagating voltage resets, by barcoding the axo-somatic spike structure. Our results unveil a multibranch dendritic integration framework in which dendritic nonlinearities are critical for multiplexing different spatial-temporal synaptic input patterns, enabling optimal feature binding.
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spelling doaj-art-2aa06a2b93f441da890e2bb8bdd8bd6d2025-08-20T00:30:49ZengElsevierCell Reports2211-12472024-07-0143711441310.1016/j.celrep.2024.114413Probing multiplexed basal dendritic computations using two-photon 3D holographic uncagingShulan Xiao0Saumitra Yadav1Krishna Jayant2Weldon School of Biomedical Engineering, Purdue University, West Lafayette, IN, USAWeldon School of Biomedical Engineering, Purdue University, West Lafayette, IN, USAWeldon School of Biomedical Engineering, Purdue University, West Lafayette, IN, USA; Purdue Institute for Integrative Neuroscience, Purdue University, West Lafayette, IN, USA; Corresponding authorSummary: Basal dendrites of layer 5 cortical pyramidal neurons exhibit Na+ and N-methyl-D-aspartate receptor (NMDAR) regenerative spikes and are uniquely poised to influence somatic output. Nevertheless, due to technical limitations, how multibranch basal dendritic integration shapes and enables multiplexed barcoding of synaptic streams remains poorly mapped. Here, we combine 3D two-photon holographic transmitter uncaging, whole-cell dynamic clamp, and biophysical modeling to reveal how synchronously activated synapses (distributed and clustered) across multiple basal dendritic branches are multiplexed under quiescent and in vivo-like conditions. While dendritic regenerative Na+ spikes promote millisecond somatic spike precision, distributed synaptic inputs and NMDAR spikes regulate gain. These concomitantly occurring dendritic nonlinearities enable multiplexed information transfer amid an ongoing noisy background, including under back-propagating voltage resets, by barcoding the axo-somatic spike structure. Our results unveil a multibranch dendritic integration framework in which dendritic nonlinearities are critical for multiplexing different spatial-temporal synaptic input patterns, enabling optimal feature binding.http://www.sciencedirect.com/science/article/pii/S2211124724007423CP: Neuroscience
spellingShingle Shulan Xiao
Saumitra Yadav
Krishna Jayant
Probing multiplexed basal dendritic computations using two-photon 3D holographic uncaging
CP: Neuroscience
title Probing multiplexed basal dendritic computations using two-photon 3D holographic uncaging
title_full Probing multiplexed basal dendritic computations using two-photon 3D holographic uncaging
title_fullStr Probing multiplexed basal dendritic computations using two-photon 3D holographic uncaging
title_full_unstemmed Probing multiplexed basal dendritic computations using two-photon 3D holographic uncaging
title_short Probing multiplexed basal dendritic computations using two-photon 3D holographic uncaging
title_sort probing multiplexed basal dendritic computations using two photon 3d holographic uncaging
topic CP: Neuroscience
url http://www.sciencedirect.com/science/article/pii/S2211124724007423
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