The Osteoblast Transcriptome in Developing Zebrafish Reveals Key Roles for Extracellular Matrix Proteins Col10a1a and Fbln1 in Skeletal Development and Homeostasis

Author:

Raman Ratish1ORCID,Antony Mishal1ORCID,Nivelle Renaud1,Lavergne Arnaud2,Zappia Jérémie3ORCID,Guerrero-Limón Gustavo1ORCID,Caetano da Silva Caroline4ORCID,Kumari Priyanka5,Sojan Jerry Maria6,Degueldre Christian7ORCID,Bahri Mohamed Ali7ORCID,Ostertag Agnes4ORCID,Collet Corinne48,Cohen-Solal Martine4ORCID,Plenevaux Alain7,Henrotin Yves3,Renn Jörg1,Muller Marc1ORCID

Affiliation:

1. Laboratory for Organogenesis and Regeneration (LOR), GIGA Institute, University of Liège, 4000 Liège, Belgium

2. GIGA Genomics Platform, B34, GIGA Institute, University of Liège, 4000 Liège, Belgium

3. MusculoSKeletal Innovative Research Lab, Center for Interdisciplinary Research on Medicines, University of Liège, 4000 Liège, Belgium

4. Hospital Lariboisière, Reference Centre for Rare Bone Diseases, INSERM U1132, Université de Paris-Cité, F-75010 Paris, France

5. Laboratory of Pharmaceutical and Analytical Chemistry, Department of Pharmacy, CIRM, Sart Tilman, 4000 Liège, Belgium

6. Department of Life and Environmental Sciences, Università Politecnica delle Marche, Via Brecce Bianche, 60131 Ancona, Italy

7. GIGA CRC In Vivo Imaging, University of Liège, Sart Tilman, 4000 Liège, Belgium

8. UF de Génétique Moléculaire, Hôpital Robert Debré, APHP, F-75019 Paris, France

Abstract

Zebrafish are now widely used to study skeletal development and bone-related diseases. To that end, understanding osteoblast differentiation and function, the expression of essential transcription factors, signaling molecules, and extracellular matrix proteins is crucial. We isolated Sp7-expressing osteoblasts from 4-day-old larvae using a fluorescent reporter. We identified two distinct subpopulations and characterized their specific transcriptome as well as their structural, regulatory, and signaling profile. Based on their differential expression in these subpopulations, we generated mutants for the extracellular matrix protein genes col10a1a and fbln1 to study their functions. The col10a1a−/− mutant larvae display reduced chondrocranium size and decreased bone mineralization, while in adults a reduced vertebral thickness and tissue mineral density, and fusion of the caudal fin vertebrae were observed. In contrast, fbln1−/− mutants showed an increased mineralization of cranial elements and a reduced ceratohyal angle in larvae, while in adults a significantly increased vertebral centra thickness, length, volume, surface area, and tissue mineral density was observed. In addition, absence of the opercle specifically on the right side was observed. Transcriptomic analysis reveals up-regulation of genes involved in collagen biosynthesis and down-regulation of Fgf8 signaling in fbln1−/− mutants. Taken together, our results highlight the importance of bone extracellular matrix protein genes col10a1a and fbln1 in skeletal development and homeostasis.

Funder

EU MSCA-ITN project

Fondation Arthrose

Maître de Recherche au F.N.R.S.

Publisher

MDPI AG

Subject

Molecular Biology,Biochemistry

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