Therapeutic Transplantation of Human Central Nervous System Organoids for Neural Reconstruction
Abstract
:1. Introduction
2. CNS Organoids as Therapeutics
3. CNS Organoids Transplantation
3.1. Traumatic Brain Injury
3.2. Spinal Cord Injury
3.3. Parkinson’s Disease (PD)
4. Challenges and Perspectives
Author Contributions
Funding
Conflicts of Interest
References
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Parameters | Degree of Effects | Description | |
---|---|---|---|
NPC | Organoid | ||
Transplanted cell survival | ↑ | ↑↑↑ | A higher number of transplanted cells remaining for organoids at both 2 and 4 weeks |
Transplanted cell apoptosis | ↑↑ | ↑ | Transplanted cell apoptosis notable in NPC grafts. |
Host immune response | - | - | No serious immune response for both cases |
Angiogenesis | ↑ | ↑↑↑ |
|
Neural proliferation | ↑↑ | ↑↑↑ |
|
Neural differentiation | ↑ | ↑↑↑ |
|
Axonal growth | - | ↑↑ |
|
Transplantation Purpose | Source of Organoid | Type of Organoid | Achievements | |
---|---|---|---|---|
Adaptation of grafted organoids | hESC | Cerebral organoid | Observation of axonal growth, vascularization, and neural activity in engrafted organoids | [25] |
Comparison of neural stem cell and cerebral organoid transplantation | hESC | Cerebral organoid | Superior neurogenesis observed in cerebral organoids compared to neural stem cell transplantation | [32] |
Repair of TBI | hESC | Cerebral organoid | Effect of transplanted organoid age on adaptation and growth of engrafted cells in organoids | [31] [57] |
hESC and hiPSC | Sheared cerebral organoid | Extended subcortical projection and electrophysiological maturity of grafted organoids | [58] | |
hESC | Cerebral organoid | Cortex tissue recovery and improvements in cognitive function | [78] | |
hESC | Cerebral organoid | Reduction of GFAP expression and promotion of neural repair by improving glial scar | [53] | |
hiPSC | Cortical organoid | Observation of in vivo specific features of cortical organoids and identification of their effects on animal behavior | [21] | |
Repair of SCI | hESC | Cerebral organoid | Promotion of axon regeneration and neural network and recovery of motor function | [63] |
Human astrocytes | Spinal cord organoid from directly reprogrammed neuroectodermal cells | Spinal cord-specific neuronal growth from spinal cord organoid and its synaptic connection with host neurons | [49] | |
hESC | Spinal cord motor neuron organoid with decellularized neonatal spinal cord matrix (DNSCM) | In vivo maturation of the grafted organoid advocated by signaling molecules from DNSCM | [23] | |
human spinal cord-derived neural cells | Vascularized spinal-cord-like tissue | In vitro vascularization of spinal cord organoid with linear orientation promoted neural regeneration | [34] | |
Dopamine level recovery of Parkinson’s disease model | hESC and hiPSC | Midbrain-like neural stem cells (isolated from midbrain organoids in vitro) | Reversal of motor function by increased dopamine release from transplanted dopaminergic neurons | [43] |
hiPSC | Midbrain organoid | Dopaminergic cell differentiation of midbrain organoid in vitro and reversal of motor function by increased dopamine release in vivo | [22] |
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Hong, S.J.; Bock, M.; Zhang, S.; An, S.B.; Han, I. Therapeutic Transplantation of Human Central Nervous System Organoids for Neural Reconstruction. Int. J. Mol. Sci. 2024, 25, 8540. https://doi.org/10.3390/ijms25158540
Hong SJ, Bock M, Zhang S, An SB, Han I. Therapeutic Transplantation of Human Central Nervous System Organoids for Neural Reconstruction. International Journal of Molecular Sciences. 2024; 25(15):8540. https://doi.org/10.3390/ijms25158540
Chicago/Turabian StyleHong, Sung Jun, Minsung Bock, Songzi Zhang, Seong Bae An, and Inbo Han. 2024. "Therapeutic Transplantation of Human Central Nervous System Organoids for Neural Reconstruction" International Journal of Molecular Sciences 25, no. 15: 8540. https://doi.org/10.3390/ijms25158540
APA StyleHong, S. J., Bock, M., Zhang, S., An, S. B., & Han, I. (2024). Therapeutic Transplantation of Human Central Nervous System Organoids for Neural Reconstruction. International Journal of Molecular Sciences, 25(15), 8540. https://doi.org/10.3390/ijms25158540