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Bilateral symmetry genes: If they exist, how would we know?
Lucía Juan-Vicente1, Sergio Navarro-Cartagena1, Carla Navarro-Quiles1
1Instituto de Bioingeniería, Universidad Miguel Hernández, Campus de Elche, Elche, 03202, Spain.
Trends in Plant Science
|June 25, 2026
Summary
The genetic basis of bilateral symmetry in animals and plants is poorly understood. While symmetry-breaking genes are known, specific genes for establishing bilateral symmetry remain unidentified.
Area of Science:
- Developmental biology
- Genetics
- Evolutionary biology
Background:
- Symmetry is fundamental to organismal form, from cells to whole bodies in plants and animals.
- Bilateral symmetry, common in animals, involves complex genetic regulation.
- Genes controlling radial-to-bilateral symmetry transitions exist in plant flowers.
Purpose of the Study:
- To review current knowledge on the genetics of symmetry, with a focus on bilaterality.
- To identify gaps in understanding the genetic underpinnings of bilateral symmetry.
- To highlight the paradox of known symmetry-breaking genes versus unidentified symmetry-establishing genes.
Main Methods:
- Literature review of genetic studies on symmetry in animals and plants.
- Comparative analysis of gene functions across different clades.
- Synthesis of findings on symmetry-breaking and symmetry-establishing genes.
Main Results:
- Symmetry-breaking genes directing left-right asymmetry are identified in animals (e.g., heart positioning).
- Genes controlling floral symmetry transitions are characterized in specific plant groups.
- A key paradox exists: genes initiating symmetry breaking are known, but those establishing bilateral symmetry are not.
Conclusions:
- The genetic mechanisms for establishing bilateral symmetry remain largely unknown.
- Further research is needed to identify genes specifically dedicated to bilateral symmetry.
- Understanding the genetics of symmetry is crucial for developmental and evolutionary biology.
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