vertebrate embryonic patterning 1 amphibian gastrulation: classical observations & experiments

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Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

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Page 1: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Vertebrate Embryonic Patterning 1

Amphibian Gastrulation: Classical Observations & Experiments

Page 2: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Amphibian Development

• Fertilization initiates cortical rotation

• Cortical rotation relocalizes determinants

• These determinants act to specify the dorsal-most regions of the embryo

Page 3: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Establishing Asymmetry

Localized mRNAs

Page 4: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Early Cleavages in Xenopus

gray crescent

TiersABCD

Page 5: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Fate Map of Xenopus Blastula

Page 6: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Primary Tissue Layers

• Ectoderm– skin, neural

• Mesoderm– notochord, somites, blood, kidney

• Endoderm– gut, prechordal plate

Page 7: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Gastrulation Movements

Page 8: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Xenopus Gastrulation Movements

Page 9: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Gastrulation (again)

Page 10: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments
Page 11: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments
Page 12: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Xenopus

laevis

Page 13: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Classic Experiments

• Hans Spemann (1903)

• Constriction of cleavage stage embryos & fertilized eggs

• Demonstrated asymmetry in fertilized egg

Page 14: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Embryo Constriction Experiment

Page 15: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Egg Constriction Experiment

Constriction of the egg becomes the 1st cleavage plane. Constriction of egg has to bisect the gray crescent in order for twinning to occur. If division occur perpendicular to this, only ½ of the egg develops into an embryo.

Page 16: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Fate Map of Gray Crescent

• dorsal blastopore lip

• point where gastrulation begins

• What is it about the gray crescent that makes it so important?

Page 17: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Spemann’s Specification Experiments

Presumptive neural plate ectoderm in the early gastrula was specified as ectoderm, but undetermined.

Later gastrula neuroectoderm was determined to a neural fate.

Page 18: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Dorsal Lip Transplantation

Page 19: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Perturbations of Axis Formation: Making Two Dorsal Axes

Page 20: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Cool Perturbations of Normal Development

• Ventralization:– UV irradiation of vegetal pole shortly after

fertilization– blocks cortical rotation by crosslinking

cytoskeletal proteins– DAI Scale – rating of 0 to 5 of dorsal inhibition

• 0 is normal, 5 is completely ventralized

• embryo develops as a lump of endoderm & ectoderm

Page 21: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

More Cool Perturbations

• Anterior/Dorsalization:– LiCl treatment

• increases the amount of anterior/head tissue at the expense of posterior-dorsal mesoderm & ventral tissues

• Posterior/Ventralization– Retinoic Acid treatment

• decreases anterior/head structures

Page 22: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Implications

• Strategies for cloning genes involved in dorsal/ventral specification– Subtractive library screens between dorsalized

and ventralized embryos– Functional library screens

• Rescue of ventralized embryos

• Induction of secondary axis

Page 23: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Properties of Dorsal Lip Region

• Autonomously specified• Dorsal lip never respecified by tissue at

location of transplantation• Donor cells always contribute to notochord

(mesoderm)• Secondary neural tube forms from recruited

host cells• Donor lip cells organize host cells

Page 24: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Mesoderm Induced by Vegetal Cells

Page 25: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Nieuwkoop’s Experiment

Page 26: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Nieuwkoop’s Center Rescues Dorsal Axis in UV & Duplicates Axis in Wild-type

Page 27: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Inducing Centers in the Blastula

“Spemann”

(General)

Page 28: Vertebrate Embryonic Patterning 1 Amphibian Gastrulation: Classical Observations & Experiments

Fate Map of Organizer and Nieuwkoop’s Center