cxcl12a plays an essential role in pharyngeal cartilage development

Zhaohui Wei1,2, Qiang Hong1, Zijiao Ding1

  • 1School of Basic Medicine, Anhui Medical University, Hefei, Anhui, China.

Insights

The chemokine Cxcl12a is crucial for craniofacial cartilage development in zebrafish by promoting neural crest cell proliferation. Cxcl12a and Cxcl12b work together to form pharyngeal arches and pouches.

Area of Science:

  • Developmental Biology
  • Molecular Biology
  • Genetics

Background:

  • Neural crest cells are vital for craniofacial development, forming cartilage and skeletal elements.
  • Previous research highlighted Cxcl12b/Cxcr4a in zebrafish craniofacial development.
  • The roles of homologous genes Cxcl12a and Cxcr4b were previously unknown.

Purpose of the Study:

  • To investigate the function of Cxcl12a and Cxcr4b in zebrafish craniofacial development.
  • To understand the specific contribution of Cxcl12a to pharyngeal cartilage formation.
  • To elucidate the synergistic roles of Cxcl12a and Cxcl12b in pharyngeal arch and pouch morphogenesis.

Main Methods:

  • Generated cxcl12a and cxcr4b mutant zebrafish using CRISPR/Cas9.
  • Analyzed gene expression patterns using in situ hybridization.
  • Assessed cartilage formation, cell proliferation, and apoptosis in craniofacial development.

Main Results:

  • cxcl12a deletion significantly reduced pharyngeal cartilage elements.
  • This reduction was linked to decreased proliferation of craniofacial neural crest cells.
  • Cxcl12a and Cxcl12b showed synergistic effects on pharyngeal arch and pouch formation.

Conclusions:

  • Cxcl12a is essential for craniofacial cartilage morphogenesis in zebrafish.
  • Cxcl12a promotes chondrogenesis by enhancing neural crest cell proliferation.
  • Cxcl12a and Cxcl12b act synergistically in pharyngeal arch and pouch development.

Related Concept Videos

Determination01:51

Determination

During embryogenesis, cells become progressively committed to different fates through a two-step process: specification followed by determination. Specification is demonstrated by removing a segment of an early embryo, “neutrally” culturing the tissue in vitro—for example, in a petri dish with simple medium—and then observing the derivatives. If the cultured region gives rise to cell types that it would normally generate in the embryo, this means that it is specified. In...
18.5K
Growth of Cartilage and Bone Tissue01:27

Growth of Cartilage and Bone Tissue

Chondrocytes form a temporary cartilaginous model by dividing and secreting a thick gel-like extracellular matrix. Once the chondrocytes undergo programmed cell death, osteoblasts enter the site of the cartilaginous model. The process of replacing the temporary cartilaginous model with bone in an ordered manner is called endochondral ossification. In endochondral ossification, not all of the cartilage is replaced by bone tissue. Some cartilage that performs a protective and supportive function...
3.4K
Bone Formation by Endochondral Ossification01:24

Bone Formation by Endochondral Ossification

Bone formation, or ossification, begins around the sixth to seventh week of embryonic development. Most bones develop from a cartilaginous template through the process of endochondral ossification. Cartilage formation begins when clusters of mesenchymal cells differentiate into chondrocytes. These chondrocytes proliferate rapidly and secrete an extracellular matrix that becomes encased in a membrane called the perichondrium. The resulting cartilage model provides a template that resembles the...
4.5K
Changes in the Appendicular Skeleton with Age01:09

Changes in the Appendicular Skeleton with Age

The upper and lower limb initially develops as a small bulge called a limb bud, which appears on the lateral side of the early embryo. The upper limb bud appears near the end of the fourth week of development, with the lower limb bud appearing shortly after.
Initially, the limb buds consist of a core of mesenchyme covered by a layer of ectoderm. The ectoderm at the end of the limb bud thickens to form a narrow crest called the apical ectodermal ridge. This ridge stimulates the underlying...
2.0K
Hedgehog Signaling Pathway02:33

Hedgehog Signaling Pathway

The Hedgehog gene (Hh) was first discovered due to its control of the growth of disorganized, hair-like bristles phenotype in Drosophila, much like hedgehog spines. Hh plays a crucial role in the development of organs and the maintenance of homeostasis in both invertebrates and vertebrates. However, while Drosophila has only one Hh protein, mammals have multiple functional Hedgehog proteins - Sonic (Shh), Desert (Dhh), and Indian Hedgehog (Ihh). All of these homologous proteins have adapted to...
7.4K