The maternal coordinate system: Molecular-genetics of embryonic axis formation and patterning in the zebrafish

Curr Top Dev Biol. 2020:140:341-389. doi: 10.1016/bs.ctdb.2020.05.002. Epub 2020 Jun 16.

Abstract

Axis specification of the zebrafish embryo begins during oogenesis and relies on proper formation of well-defined cytoplasmic domains within the oocyte. Upon fertilization, maternally-regulated cytoplasmic flow and repositioning of dorsal determinants establish the coordinate system that will build the structure and developmental body plan of the embryo. Failure of specific genes that regulate the embryonic coordinate system leads to catastrophic loss of body structures. Here, we review the genetic principles of axis formation and discuss how maternal factors orchestrate axis patterning during zebrafish early embryogenesis. We focus on the molecular identity and functional contribution of genes controlling critical aspects of oogenesis, egg activation, blastula, and gastrula stages. We examine how polarized cytoplasmic domains form in the oocyte, which set off downstream events such as animal-vegetal polarity and germ line development. After gametes interact and form the zygote, cytoplasmic segregation drives the animal-directed reorganization of maternal determinants through calcium- and cell cycle-dependent signals. We also summarize how maternal genes control dorsoventral, anterior-posterior, mesendodermal, and left-right cell fate specification and how signaling pathways pattern these axes and tissues during early development to instruct the three-dimensional body plan. Advances in reverse genetics and phenotyping approaches in the zebrafish model are revealing positional patterning signatures at the single-cell level, thus enhancing our understanding of genotype-phenotype interactions in axis formation. Our emphasis is on the genetic interrogation of novel and specific maternal regulatory mechanisms of axis specification in the zebrafish.

Keywords: Anterior-posterior specification; Axis formation; Axis induction; Bone morphogenetic protein; Dorsal-ventral specification; Endoderm; Left-right axis formation; Maternal factors; Mesoderm; Nodal/Vg1 signaling; Symmetry breaking; Wnt/β-catenin pathway.

Publication types

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

MeSH terms

  • Animals
  • Body Patterning / genetics*
  • Carrier Proteins / genetics
  • Carrier Proteins / metabolism
  • Embryo, Nonmammalian / cytology
  • Embryo, Nonmammalian / embryology
  • Embryo, Nonmammalian / metabolism*
  • Gene Expression Regulation, Developmental*
  • Kinesins / genetics
  • Kinesins / metabolism
  • Maternal Inheritance / genetics
  • Oocytes / cytology
  • Oocytes / metabolism*
  • Zebrafish / embryology
  • Zebrafish / genetics*
  • Zebrafish Proteins / genetics
  • Zebrafish Proteins / metabolism
  • Zygote / cytology
  • Zygote / metabolism*

Substances

  • Carrier Proteins
  • Grip2a protein, zebrafish
  • Zebrafish Proteins
  • Kif5Ba protein, zebrafish
  • Kinesins