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Published on: January 17, 2016
Hyaluronan receptor CD44: developmentally regulated expression and role in the early chick embryo
Konstantinos Konstantopoulos1, Alexandros Dimiropoulos1, Nikolas Zagris1
1Division of Genetics and Cell and Developmental Biology, Department of Biology, University of Patras, Patras, Greece.
Insights
CD44, a key receptor for hyaluronan, is crucial for early chick embryo development. Its expression is vital for hyaluronan synthesis, tissue patterning, and cell migration, impacting matrix integrity and organogenesis.
Area of Science:
- Developmental Biology
- Cell Biology
- Molecular Biology
Background:
- CD44 is a transmembrane glycoprotein acting as the primary receptor for hyaluronan.
- Hyaluronan plays critical roles in cell proliferation, migration, and differentiation.
- Understanding CD44's role in early embryogenesis is essential for developmental biology.
Purpose of the Study:
- To investigate the spatio-temporal expression of CD44 in the early chick embryo.
- To determine the functional significance of CD44 in embryonic development and tissue organization.
- To explore the relationship between CD44, hyaluronan synthesis, and signaling pathways.
Main Methods:
- RT-PCR and immunofluorescence were employed to study CD44 expression and distribution.
- An anti-CD44 blocking antibody was used to perturb CD44-dependent signaling.
- Chick embryos at various developmental stages (morula to early organogenesis) were analyzed.
Main Results:
- CD44 expression was detected early (morula stage) and was essential for hyaluronan synthesis.
- Intense CD44 expression was observed in epiblast, hypoblast, ingressing cells, blood islands, neural plate, notochord, and neural crest.
- Perturbation of CD44 function led to disorganized extracellular matrix, abnormal notochord, impaired neural crest emigration, and absence of somites and blood vessels.
Conclusions:
- CD44 plays pivotal roles in maintaining matrix integrity and tissue patterning during early embryonic development.
- CD44's interactions with hyaluronan and other signaling molecules are critical for normal embryogenesis.
- The findings highlight CD44 as a key regulator of cell-matrix interactions and tissue organization in the developing embryo.
Abstract:
CD44 is a membrane glycoprotein and is the main receptor for hyaluronan. We studied CD44 expression and spatio-temporal distribution by RT-PCR and immunofluorescence, and used an anti-CD44 blocking antibody to perturb CD44-depended signalling programs in the early chick embryo. The intense CD44 levels we detected in the morula embryo (XI) were of particular interest, suggestive of a maternally stored transcript. Intriguingly, the early presence of CD44 seemed to be essential for the rapid synthesis of hyaluronan. At stage XIII (blastula), CD44 expression was intense in the epiblast and hypoblast. During gastrulation (HH3-4), the cells ingressing into the primitive groove and migrating, and the blood islands, expressed CD44 intensely. At HH8, the folding neural plate showed polarity regulation of CD44 expression, and expression was also intense in neural crest, notochord, and blood islands. During early organogenesis, CD44 was expressed intensely in the developing cranial and caudal neural tube that showed polarity regulation, in optic stalks, otic vesicles, pre-and migratory neural crest cells, ganglia, notochord, pharynx, gut, liver, aortae, heart, somites, vascular area, amnion and chorion, and was distinct in extracellular matrix of cranial neural tube and otic vesicle lumens. Antibody-mediated perturbation of CD44 function resulted in unorganized extracellular matrix, loss of tissue spaces, grossly abnormal notochord, intermingling of clumped neuroectoderm and mesenchyme, absence of somites and blood vessels and inhibition of neural crest cell emigration. CD44 has various pivotal roles in matrix integrity and tissue patterning, consistent with its known biochemical features and interactions with hyaluronan, growth factors, receptors and other signaling molecules.
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