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An early cell shape transition drives evolutionary expansion of the human forebrain.

Publication ,  Journal Article
Benito-Kwiecinski, S; Giandomenico, SL; Sutcliffe, M; Riis, ES; Freire-Pritchett, P; Kelava, I; Wunderlich, S; Martin, U; Wray, GA; McDole, K ...
Published in: Cell
April 2021

The human brain has undergone rapid expansion since humans diverged from other great apes, but the mechanism of this human-specific enlargement is still unknown. Here, we use cerebral organoids derived from human, gorilla, and chimpanzee cells to study developmental mechanisms driving evolutionary brain expansion. We find that neuroepithelial differentiation is a protracted process in apes, involving a previously unrecognized transition state characterized by a change in cell shape. Furthermore, we show that human organoids are larger due to a delay in this transition, associated with differences in interkinetic nuclear migration and cell cycle length. Comparative RNA sequencing (RNA-seq) reveals differences in expression dynamics of cell morphogenesis factors, including ZEB2, a known epithelial-mesenchymal transition regulator. We show that ZEB2 promotes neuroepithelial transition, and its manipulation and downstream signaling leads to acquisition of nonhuman ape architecture in the human context and vice versa, establishing an important role for neuroepithelial cell shape in human brain expansion.

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Published In

Cell

DOI

EISSN

1097-4172

ISSN

0092-8674

Publication Date

April 2021

Volume

184

Issue

8

Start / End Page

2084 / 2102.e19

Related Subject Headings

  • Zinc Finger E-box Binding Homeobox 2
  • Pan troglodytes
  • Organoids
  • Neurons
  • Neurogenesis
  • Induced Pluripotent Stem Cells
  • Humans
  • Gorilla gorilla
  • Gene Expression
  • Epithelial-Mesenchymal Transition
 

Citation

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Benito-Kwiecinski, S., Giandomenico, S. L., Sutcliffe, M., Riis, E. S., Freire-Pritchett, P., Kelava, I., … Lancaster, M. A. (2021). An early cell shape transition drives evolutionary expansion of the human forebrain. Cell, 184(8), 2084-2102.e19. https://doi.org/10.1016/j.cell.2021.02.050
Benito-Kwiecinski, Silvia, Stefano L. Giandomenico, Magdalena Sutcliffe, Erlend S. Riis, Paula Freire-Pritchett, Iva Kelava, Stephanie Wunderlich, et al. “An early cell shape transition drives evolutionary expansion of the human forebrain.Cell 184, no. 8 (April 2021): 2084-2102.e19. https://doi.org/10.1016/j.cell.2021.02.050.
Benito-Kwiecinski S, Giandomenico SL, Sutcliffe M, Riis ES, Freire-Pritchett P, Kelava I, et al. An early cell shape transition drives evolutionary expansion of the human forebrain. Cell. 2021 Apr;184(8):2084-2102.e19.
Benito-Kwiecinski, Silvia, et al. “An early cell shape transition drives evolutionary expansion of the human forebrain.Cell, vol. 184, no. 8, Apr. 2021, pp. 2084-2102.e19. Epmc, doi:10.1016/j.cell.2021.02.050.
Benito-Kwiecinski S, Giandomenico SL, Sutcliffe M, Riis ES, Freire-Pritchett P, Kelava I, Wunderlich S, Martin U, Wray GA, McDole K, Lancaster MA. An early cell shape transition drives evolutionary expansion of the human forebrain. Cell. 2021 Apr;184(8):2084-2102.e19.
Journal cover image

Published In

Cell

DOI

EISSN

1097-4172

ISSN

0092-8674

Publication Date

April 2021

Volume

184

Issue

8

Start / End Page

2084 / 2102.e19

Related Subject Headings

  • Zinc Finger E-box Binding Homeobox 2
  • Pan troglodytes
  • Organoids
  • Neurons
  • Neurogenesis
  • Induced Pluripotent Stem Cells
  • Humans
  • Gorilla gorilla
  • Gene Expression
  • Epithelial-Mesenchymal Transition