Literature DB >> 30738760

Role of mechanical morphogenesis in the development and evolution of the neocortex.

Katja Heuer1, Roberto Toro2.   

Abstract

During the short period of brain development, nature is able to build the only system we know capable of producing cognition, language, creativity, and consciousness. The neocortex - the outermost layer of the mammalian cerebrum - appears to be the biological substrate of these abilities. Its development requires not only the precise placement and wiring of billions of cells, but also the implementation of mechanisms to ensure a viable cognition despite sometimes dramatic perturbations. Today, this remarkably complex organisation is thought to be genetically encoded, and further refined by activity-dependent processes. We propose that mechanical morphogenesis - the capacity of homogeneously growing elastic tissue to produce complex shapes - can also play an important role. Out of homogeneous growth, mechanical morphogenesis can induce the segregation of the neocortex into mechanical and geometric modules - the neocortical folds. Through the feedback of physical forces on developing tissue, these modules can influence the differentiation and wiring of the neocortex, having a causal role on neocortical development, and providing adaptable and robust units for its evolution.
Copyright © 2019. Published by Elsevier B.V.

Entities:  

Keywords:  Brain development; Brain evolution; Buckling; Mechanical morphogenesis; Neocortical folding

Mesh:

Year:  2019        PMID: 30738760     DOI: 10.1016/j.plrev.2019.01.012

Source DB:  PubMed          Journal:  Phys Life Rev        ISSN: 1571-0645            Impact factor:   11.025


  7 in total

1.  Membrane Stretch Gates NMDA Receptors.

Authors:  Sophie Belin; Bruce A Maki; James Catlin; Benjamin A Rein; Gabriela K Popescu
Journal:  J Neurosci       Date:  2022-06-15       Impact factor: 6.709

2.  Ephrin-B2 paces neuronal production in the developing neocortex.

Authors:  Anthony Kischel; Christophe Audouard; Mohamad-Ali Fawal; Alice Davy
Journal:  BMC Dev Biol       Date:  2020-05-13       Impact factor: 1.978

3.  A model of tension-induced fiber growth predicts white matter organization during brain folding.

Authors:  Kara E Garcia; Xiaojie Wang; Christopher D Kroenke
Journal:  Nat Commun       Date:  2021-11-18       Impact factor: 14.919

4.  Brain charts for the human lifespan.

Authors:  R A I Bethlehem; J Seidlitz; S R White; J W Vogel; K M Anderson; C Adamson; S Adler; G S Alexopoulos; E Anagnostou; A Areces-Gonzalez; D E Astle; B Auyeung; M Ayub; J Bae; G Ball; S Baron-Cohen; R Beare; S A Bedford; V Benegal; F Beyer; J Blangero; M Blesa Cábez; J P Boardman; M Borzage; J F Bosch-Bayard; N Bourke; V D Calhoun; M M Chakravarty; C Chen; C Chertavian; G Chetelat; Y S Chong; J H Cole; A Corvin; M Costantino; E Courchesne; F Crivello; V L Cropley; J Crosbie; N Crossley; M Delarue; R Delorme; S Desrivieres; G A Devenyi; M A Di Biase; R Dolan; K A Donald; G Donohoe; K Dunlop; A D Edwards; J T Elison; C T Ellis; J A Elman; L Eyler; D A Fair; E Feczko; P C Fletcher; P Fonagy; C E Franz; L Galan-Garcia; A Gholipour; J Giedd; J H Gilmore; D C Glahn; I M Goodyer; P E Grant; N A Groenewold; F M Gunning; R E Gur; R C Gur; C F Hammill; O Hansson; T Hedden; A Heinz; R N Henson; K Heuer; J Hoare; B Holla; A J Holmes; R Holt; H Huang; K Im; J Ipser; C R Jack; A P Jackowski; T Jia; K A Johnson; P B Jones; D T Jones; R S Kahn; H Karlsson; L Karlsson; R Kawashima; E A Kelley; S Kern; K W Kim; M G Kitzbichler; W S Kremen; F Lalonde; B Landeau; S Lee; J Lerch; J D Lewis; J Li; W Liao; C Liston; M V Lombardo; J Lv; C Lynch; T T Mallard; M Marcelis; R D Markello; S R Mathias; B Mazoyer; P McGuire; M J Meaney; A Mechelli; N Medic; B Misic; S E Morgan; D Mothersill; J Nigg; M Q W Ong; C Ortinau; R Ossenkoppele; M Ouyang; L Palaniyappan; L Paly; P M Pan; C Pantelis; M M Park; T Paus; Z Pausova; D Paz-Linares; A Pichet Binette; K Pierce; X Qian; J Qiu; A Qiu; A Raznahan; T Rittman; A Rodrigue; C K Rollins; R Romero-Garcia; L Ronan; M D Rosenberg; D H Rowitch; G A Salum; T D Satterthwaite; H L Schaare; R J Schachar; A P Schultz; G Schumann; M Schöll; D Sharp; R T Shinohara; I Skoog; C D Smyser; R A Sperling; D J Stein; A Stolicyn; J Suckling; G Sullivan; Y Taki; B Thyreau; R Toro; N Traut; K A Tsvetanov; N B Turk-Browne; J J Tuulari; C Tzourio; É Vachon-Presseau; M J Valdes-Sosa; P A Valdes-Sosa; S L Valk; T van Amelsvoort; S N Vandekar; L Vasung; L W Victoria; S Villeneuve; A Villringer; P E Vértes; K Wagstyl; Y S Wang; S K Warfield; V Warrier; E Westman; M L Westwater; H C Whalley; A V Witte; N Yang; B Yeo; H Yun; A Zalesky; H J Zar; A Zettergren; J H Zhou; H Ziauddeen; A Zugman; X N Zuo; E T Bullmore; A F Alexander-Bloch
Journal:  Nature       Date:  2022-04-06       Impact factor: 69.504

5.  A unified 3D map of microscopic architecture and MRI of the human brain.

Authors:  Anneke Alkemade; Pierre-Louis Bazin; Rawien Balesar; Kerrin Pine; Evgeniya Kirilina; Harald E Möller; Robert Trampel; Johan M Kros; Max C Keuken; Ronald L A W Bleys; Dick F Swaab; Andreas Herrler; Nikolaus Weiskopf; Birte U Forstmann
Journal:  Sci Adv       Date:  2022-04-27       Impact factor: 14.957

Review 6.  "Plis de passage" Deserve a Role in Models of the Cortical Folding Process.

Authors:  Jean-François Mangin; Yann Le Guen; Nicole Labra; Antoine Grigis; Vincent Frouin; Miguel Guevara; Clara Fischer; Denis Rivière; William D Hopkins; Jean Régis; Zhong Yi Sun
Journal:  Brain Topogr       Date:  2019-10-03       Impact factor: 3.020

7.  Cross-species functional alignment reveals evolutionary hierarchy within the connectome.

Authors:  Ting Xu; Karl-Heinz Nenning; Ernst Schwartz; Seok-Jun Hong; Joshua T Vogelstein; Alexandros Goulas; Damien A Fair; Charles E Schroeder; Daniel S Margulies; Jonny Smallwood; Michael P Milham; Georg Langs
Journal:  Neuroimage       Date:  2020-09-09       Impact factor: 7.400

  7 in total

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