Dendritic Polyglycerol Amine: An Enhanced Substrate to Support Long-Term Neural Cell Culture

Author:

Clément Jean-Pierre12,Al-Alwan Laila12,Glasgow Stephen D.12ORCID,Stolow Avya3ORCID,Ding Yi3,Quevedo Melo Thaiany2,Khayachi Anouar2,Liu Yumin2,Hellmund Markus4,Haag Rainer4,Milnerwood Austen J2ORCID,Grütter Peter3,Kennedy Timothy E.12ORCID

Affiliation:

1. Program in Neuroengineering, Montreal Neurological Institute, McGill University, Montreal, Canada

2. Department of Neurology and Neurosurgery, Montreal Neurological Institute and Hospital, Montreal, Canada

3. Department of Physics, McGill University, Montreal, Canada

4. Institute of Chemistry and Biochemistry, Freie Universität Berlin, Berlin, Germany

Abstract

Long-term stable cell culture is a critical tool to better understand cell function. Most adherent cell culture models require a polymer substrate coating of poly-lysine or poly-ornithine for the cells to adhere and survive. However, polypeptide-based substrates are degraded by proteolysis and it remains a challenge to maintain healthy cell cultures for extended periods of time. Here, we report the development of an enhanced cell culture substrate based on a coating of dendritic polyglycerol amine (dPGA), a non-protein macromolecular biomimetic of poly-lysine, to promote the adhesion and survival of neurons in cell culture. We show that this new polymer coating provides enhanced survival, differentiation and long-term stability for cultures of primary neurons or neurons derived from human induced pluripotent stem cells (hiPSCs). Atomic force microscopy analysis provides evidence that greater nanoscale roughness contributes to the enhanced capacity of dPGA-coated surfaces to support cells in culture. We conclude that dPGA is a cytocompatible, functionally superior, easy to use, low cost and highly stable alternative to poly-cationic polymer cell culture substrate coatings such as poly-lysine and poly-ornithine.Summary statementHere, we describe a novel dendritic polyglycerol amine-based substrate coating, demonstrating superior performance compared to current polymer coatings for long-term culture of primary neurons and neurons derived from induced pluripotent stem cells.

Funder

Canada First Research Excellence Fund

Canadian Institutes of Health Research

Natural Sciences and Engineering Research Council of Canada

Publisher

SAGE Publications

Subject

Neurology (clinical),General Neuroscience

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