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Published on: July 5, 2017
Short-term foetal immobility temporally and progressively affects chick spinal curvature and anatomy and rib
A Levillain, R A Rolfe, Y Huang
1Department of Bioengineering, Imperial College London, London SW72AZ, UK.n.nowlan@imperial.ac.uk.
Insights
Foetal immobility during critical embryonic periods significantly disrupts spine and rib development. Early, short-term paralysis in chick embryos highlights the importance of movement for normal congenital development.
Area of Science:
- Developmental biology
- Embryology
- Biomechanics
Background:
- Congenital spine deformities are common, but the impact of fetal movement on development is not fully understood.
- Understanding the effects of fetal immobility is crucial for diagnosing conditions like congenital scoliosis.
Purpose of the Study:
- To identify critical embryonic time periods for spine and rib development disruption due to immobility.
- To investigate how early, short-term immobilization affects various aspects of spine and rib development.
Main Methods:
- Chick embryos were immobilized for one day between embryonic days 3 and 6.
- Spinal curvature, vertebral shape/segmentation, and rib development were analyzed using optical projection tomography and histology.
- Ontogenetic effects were assessed by daily harvesting after immobilization at embryonic day 4.
Main Results:
- Immobilization at embryonic days 3 or 4 caused the most severe spinal curvature and vertebral defects.
- Immobilization at embryonic day 5 led to the most significant rib development abnormalities.
- Vertebral segmentation defects followed spinal curvature and shape abnormalities, while rib development was independent of thoracic vertebral changes.
Conclusions:
- Specific embryonic days are critical for different aspects of spine and rib development.
- Embryonic immobility severely impacts spinal and rib development, emphasizing the role of fetal movement.
- Findings suggest targeted prenatal monitoring for early diagnosis of congenital scoliosis.
Abstract:
Congenital spine deformities may be influenced by movements in utero, but the effects of foetal immobility on spine and rib development remain unclear. The purpose of the present study was to determine (1) critical time-periods when rigid paralysis caused the most severe disruption in spine and rib development and (2) how the effects of an early, short-term immobilisation were propagated to the different features of spine and rib development. Chick embryos were immobilised once per single embryonic day (E) between E3 and E6 and harvested at E9. To assess the ontogenetic effects following single-day immobilisation, other embryos were immobilised at E4 and harvested daily between E5 and E9. Spinal curvature, vertebral shape and segmentation and rib development were analysed by optical projection tomography and histology. The results demonstrated that periods critical for movement varied for different aspects of spine and rib development. Single-day immobilisation at E3 or E4 resulted in the most pronounced spinal curvature abnormalities, multiple wedged vertebrae and segmentation defects, while single-day immobilisation at E5 led to the most severe rib abnormalities. Assessment of ontogenetic effects following single-day immobilisation at E4 revealed that vertebral segmentation defects were subsequent to earlier vertebral body shape and spinal curvature abnormalities, while rib formation (although delayed) was independent from thoracic vertebral shape or curvature changes. A day-long immobilisation in chicks severely affected spine and rib development, highlighting the importance of abnormal foetal movements at specific time-points and motivating targeted prenatal monitoring for early diagnosis of congenital scoliosis.
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