From 2D to 3D: Development of Monolayer Dopaminergic Neuronal and Midbrain Organoid Cultures for Parkinson’s Disease Modeling and Regenerative Therapy

Author:

Yeap Yee Jie1ORCID,Teddy Tng J. W.12ORCID,Lee Mok Jung1ORCID,Goh Micaela1,Lim Kah Leong1345ORCID

Affiliation:

1. Lee Kong Chian School of Medicine, Nanyang Technological University, Singapore 308232, Singapore

2. Interdisciplinary Graduate Programme (IGP-Neuroscience), Nanyang Technological University, Singapore 639798, Singapore

3. National Neuroscience Institute, Singapore 308433, Singapore

4. Department of Brain Sciences, Imperial College London, London SW7 2AZ, UK

5. Department of Anatomy, Shanxi Medical University, Taiyuan 030001, China

Abstract

Parkinson’s Disease (PD) is a prevalent neurodegenerative disorder that is characterized pathologically by the loss of A9-specific dopaminergic (DA) neurons in the substantia nigra pars compacta (SNpc) of the midbrain. Despite intensive research, the etiology of PD is currently unresolved, and the disease remains incurable. This, in part, is due to the lack of an experimental disease model that could faithfully recapitulate the features of human PD. However, the recent advent of induced pluripotent stem cell (iPSC) technology has allowed PD models to be created from patient-derived cells. Indeed, DA neurons from PD patients are now routinely established in many laboratories as monolayers as well as 3D organoid cultures that serve as useful toolboxes for understanding the mechanism underlying PD and also for drug discovery. At the same time, the iPSC technology also provides unprecedented opportunity for autologous cell-based therapy for the PD patient to be performed using the patient’s own cells as starting materials. In this review, we provide an update on the molecular processes underpinning the development and differentiation of human pluripotent stem cells (PSCs) into midbrain DA neurons in both 2D and 3D cultures, as well as the latest advancements in using these cells for drug discovery and regenerative medicine. For the novice entering the field, the cornucopia of differentiation protocols reported for the generation of midbrain DA neurons may seem daunting. Here, we have distilled the essence of the different approaches and summarized the main factors driving DA neuronal differentiation, with the view to provide a useful guide to newcomers who are interested in developing iPSC-based models of PD.

Funder

National Research Foundation

Singapore Ministry of Health

Publisher

MDPI AG

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis

Reference273 articles.

1. WHO (2022, November 20). Parkinson Disease. Available online: https://www.who.int/news-room/fact-sheets/detail/parkinson-disease.

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3. Unbiased Stereological Estimates of Dopaminergic and GABAergic Neurons in the A10, A9, and A8 Subregions in the Young Male Macaque;Kelly;Neuroscience,2022

4. Fiorenzano, A., Sozzi, E., Parmar, M., and Storm, P. (2021). Dopamine Neuron Diversity: Recent Advances and Current Challenges in Human Stem Cell Models and Single Cell Sequencing. Cells, 10.

5. Sonne, J.R.V., and Beato, M.R. (2022). Neuroanatomy, Substantia Nigra, StatPearls Publishing.

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