Stem cell-derived cranial and spinal motor neurons reveal proteostatic differences between ALS resistant and sensitive motor neurons

Elife. 2019 Jun 3:8:e44423. doi: 10.7554/eLife.44423.

Abstract

In amyotrophic lateral sclerosis (ALS) spinal motor neurons (SpMN) progressively degenerate while a subset of cranial motor neurons (CrMN) are spared until late stages of the disease. Using a rapid and efficient protocol to differentiate mouse embryonic stem cells (ESC) to SpMNs and CrMNs, we now report that ESC-derived CrMNs accumulate less human (h)SOD1 and insoluble p62 than SpMNs over time. ESC-derived CrMNs have higher proteasome activity to degrade misfolded proteins and are intrinsically more resistant to chemically-induced proteostatic stress than SpMNs. Chemical and genetic activation of the proteasome rescues SpMN sensitivity to proteostatic stress. In agreement, the hSOD1 G93A mouse model reveals that ALS-resistant CrMNs accumulate less insoluble hSOD1 and p62-containing inclusions than SpMNs. Primary-derived ALS-resistant CrMNs are also more resistant than SpMNs to proteostatic stress. Thus, an ESC-based platform has identified a superior capacity to maintain a healthy proteome as a possible mechanism to resist ALS-induced neurodegeneration.

Keywords: ALS; motor neurons; mouse; neuroscience; regenerative medicine; stem cell differentiation; stem cells.

Publication types

  • Research Support, N.I.H., Extramural
  • Research Support, Non-U.S. Gov't

MeSH terms

  • Amyotrophic Lateral Sclerosis / genetics*
  • Amyotrophic Lateral Sclerosis / pathology
  • Amyotrophic Lateral Sclerosis / therapy
  • Animals
  • Cell Differentiation / genetics
  • Cranial Nerves
  • Disease Models, Animal
  • Humans
  • Membrane Glycoproteins / genetics*
  • Mice
  • Mice, Transgenic
  • Motor Neurons / metabolism*
  • Motor Neurons / pathology
  • Mouse Embryonic Stem Cells / cytology
  • Mouse Embryonic Stem Cells / metabolism
  • Neurons, Efferent / drug effects
  • Neurons, Efferent / metabolism*
  • Nuclear Pore Complex Proteins / genetics*
  • Spinal Cord / growth & development
  • Spinal Cord / pathology
  • Superoxide Dismutase-1 / genetics*

Substances

  • Membrane Glycoproteins
  • Nuclear Pore Complex Proteins
  • SOD1 protein, human
  • nuclear pore protein p62
  • Superoxide Dismutase-1

Associated data

  • GEO/GSE130938