Maturation and circuit integration of transplanted human cortical organoids

Созревание и интеграция в цепи пересаженных человеческих кортикальных органоидов
Karl Deisseroth, Sergiu P. Pașca, Xiao Yang, Xiaoyu Chen, Bianxiao Cui, Gerald A. Grant, John R. Huguenard, Seiji Nishino, Noriaki Sakai, Kevin W. Kelley, Fikri Birey, Jimena Andersen, Omer Revah, Felicity Gore, Min-Yin Li, Nay L. Saw, Samuel W. Baker, Neal D. Amin, Shravanti Kulkarni, Rachana Mudipalli, Juliet K. Knowles, Mehrdad Shamloo
2022-10-12

human cortical organoidsmaturation and circuit integrationsingle-nucleus profilingthalamocortical and corticocortical inputstransplantation into somatosensory cortex
. However, organoids lack the connectivity that exists in vivo, which limits maturation and makes integration with other circuits that control behaviour impossible. Here we show that human stem cell-derived cortical organoids transplanted into the somatosensory cortex of newborn athymic rats develop mature cell types that integrate into sensory and motivation-related circuits. MRI reveals post-transplantation organoid growth across multiple stem cell lines and animals, whereas single-nucleus profiling shows progression of corticogenesis and the emergence of activity-dependent transcriptional programs. Indeed, transplanted cortical neurons display more complex morphological, synaptic and intrinsic membrane properties than their in vitro counterparts, which enables the discovery of defects in neurons derived from individuals with Timothy syndrome. Anatomical and functional tracings show that transplanted organoids receive thalamocortical and corticocortical inputs, and in vivo recordings of neural activity demonstrate that these inputs can produce sensory responses in human cells. Finally, cortical organoids extend axons throughout the rat brain and their optogenetic activation can drive reward-seeking behaviour. Thus, transplanted human cortical neurons mature and engage host circuits that control behaviour. We anticipate that this approach will be useful for detecting circuit-level phenotypes in patient-derived cells that cannot otherwise be uncovered.
1
Anatomical and functional tracing demonstrates transplanted organoids receive thalamocortical and corticocortical inputs, producing sensory responses in human cells in vivo.
2
Human stem cell-derived cortical organoids transplanted into newborn rat somatosensory cortex grow post-transplantation across multiple stem cell lines and animals as shown by MRI.
3
Overall, transplanted human cortical neurons mature and engage host sensory and motivation-related circuits, enabling detection of circuit-level phenotypes in patient-derived cells.
4
Single-nucleus profiling of transplanted organoids shows progression of corticogenesis and emergence of activity-dependent transcriptional programs.
5
Transplanted cortical organoids extend axons throughout the rat brain and optogenetic activation of these axons can drive reward-seeking behaviour.
6
Transplanted human cortical neurons develop more complex morphological, synaptic, and intrinsic membrane properties than in vitro counterparts.
7
Using this system revealed neuronal defects in cells derived from individuals with Timothy syndrome that were not apparent in vitro.

Human stem cell-derived cortical organoids transplanted into the somatosensory cortex of newborn athymic rats

Maturation, cellular differentiation, integration into host sensory and motivation-related circuits (including receipt of thalamocortical and corticocortical inputs, axonal extension, synaptic and intrinsic functional maturation) and their ability to drive behaviour via circuit engagement

Publication Details
Publication Date
2022-10-12
Journal
Publisher
ISSN
Cited by
495
Access Type
Author Information
Authors
Karl Deisseroth
Sergiu P. Pașca
Xiao Yang
Xiaoyu Chen
Bianxiao Cui
Gerald A. Grant
John R. Huguenard
Seiji Nishino
Noriaki Sakai
Kevin W. Kelley
Fikri Birey
Jimena Andersen
Omer Revah
Felicity Gore
Min-Yin Li
Nay L. Saw
Samuel W. Baker
Neal D. Amin
Shravanti Kulkarni
Rachana Mudipalli
Juliet K. Knowles
Mehrdad Shamloo
Explore further
Open the scid.ai AI chat with a ready-made request: it will find papers on a similar topic and help build a literature review.
Find similar papers in the chat
Make a presentation
100%