Completed Cells, Biochemistry & Physiology Bones, Joints & Muscles

The Cellular and Physical Mechanisms of Developmental Symmetry

In plain English

AI plain-English summary

A chick embryo’s body axis stays straight because the tissues on either side squeeze it into place. When that lateral compression fails, the spine can curve—a physical mechanism that may underlie human scoliosis and neural tube defects. The paraxial mesoderm, a band of tissue flanking the developing spine, is the suspected source of this force, but no one has directly measured it. This project will combine high-resolution live imaging of chick embryos with a custom-built device that uses sensitive cantilevers to push and pull on embryonic tissues while recording the forces involved. By coupling those measurements with biophysical models, the team aims to produce a quantitative map of cell movements, tissue shapes, and mechanical properties that explains how the body axis stays symmetrical. This is fundamental developmental biology. It will not produce a medical device or treatment in the short term. But understanding the physical rules that keep a growing spine straight could eventually help explain why some embryos develop scoliosis or neural tube defects, and point toward mechanical or molecular interventions that prevent those conditions before they arise.

View original technical description
The formation and maintenance of bilateral symmetry of the vertebrate body is intimately related to developmental abnormalities such as scoliosis and neural tube defects. The body axis forms in the early embryo when multiple tissues undergo drastic morphogenesis. The mechanical forces and their underlying cellular dynamics that ensure body axis symmetry are poorly understood. I hypothesize that the paraxial mesoderm produces lateral compression on the axis to prevent it from bending. To test this hypothesis, we will image cell and tissue dynamics of body axis formation in chick embryos. Using this information, we will develop biophysical models that predict tissue forces. These models also allow theoretical assessment of the constraints and key parameters that control variability of symmetry. Using surgical ablations and molecular perturbations on different body axis tissues, we will analyze the cellular and tissue mechanisms of asymmetry response and correction. Using a novel device combining high-sensitivity cantilevers coupled with position control and live imaging, we will quantify and alter both forces and mechanical properties of different tissues. Together, these approaches will integrate quantitative maps of cell dynamics, tissue shapes and soft matter mechanics that are essentially a physical solution of body symmetry formation and morphogenesis in general.

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Researchers

Fengzhu Xiong (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Robustness Of Body Axis Symmetry through Tissue Mechanics in Amniote Embryos
Multi-tissue mechanics in the development and engineering of the posterior body axis
The causes and consequences of cell division asymmetries
The form and function of stochastic asymmetry in embryonic neural development
Post-Translational Modifications Orchestrate Organ Symmetry

Original classification

Sir Henry Dale Fellowship

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