Developmentally coordinated extrinsic signals drive human pluripotent stem cell differentiation toward authentic DARPP-32+ medium-sized spiny neurons

Author:

Carri Alessia Delli1,Onorati Marco1,Lelos Mariah J.2,Castiglioni Valentina1,Faedo Andrea1,Menon Ramesh3,Camnasio Stefano1,Vuono Romina4,Spaiardi Paolo5,Talpo Francesca5,Toselli Mauro5,Martino Gianvito3,Barker Roger A.4,Dunnett Stephen B.2,Biella Gerardo5,Cattaneo Elena1

Affiliation:

1. Center for Stem Cell Research, Università degli Studi di Milano, 20133 Milan, Italy.

2. School of Bioscience, Cardiff University, Cardiff CF10 3AX, UK.

3. Institute of Experimental Neurology (INSpe), Division of Neuroscience, San Raffaele Scientific Institute, Via Olgettina 58, 20132 Milan, Italy.

4. Brain Repair Centre, Department of Clinical Neuroscience, University of Cambridge, Cambridge CB2 0PY, UK.

5. Department of Biology and Biotechnology, University of Pavia, 27100 Pavia, Italy.

Abstract

Medium-sized spiny neurons (MSNs) are the only neostriatum projection neurons, and their degeneration underlies some of the clinical features of Huntington’s disease. Using knowledge of human developmental biology and exposure to key neurodevelopmental molecules, human pluripotent stem (hPS) cells were induced to differentiate into MSNs. In a feeder-free adherent culture, ventral telencephalic specification is induced by BMP/TGFβ inhibition and subsequent SHH/DKK1 treatment. The emerging FOXG1+/GSX2+ telencephalic progenitors are then terminally differentiated, resulting in the systematic line-independent generation of FOXP1+/FOXP2+/CTIP2+/calbindin+/DARPP-32+ MSNs. Similar to mature MSNs, these neurons carry dopamine and A2a receptors, elicit a typical firing pattern and show inhibitory postsynaptic currents, as well as dopamine neuromodulation and synaptic integration ability in vivo. When transplanted into the striatum of quinolinic acid-lesioned rats, hPS-derived neurons survive and differentiate into DARPP-32+ neurons, leading to a restoration of apomorphine-induced rotation behavior. In summary, hPS cells can be efficiently driven to acquire a functional striatal fate using an ontogeny-recapitulating stepwise method that represents a platform for in vitro human developmental neurobiology studies and drug screening approaches.

Publisher

The Company of Biologists

Subject

Developmental Biology,Molecular Biology

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