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Published on: October 21, 2015
Altered chondrocyte differentiation and extracellular matrix homeostasis in a zebrafish model for mucolipidosis II
Heather Flanagan-Steet1, Christina Sias, Richard Steet
1Complex Carbohydrate Research Center, University of Georgia, Athens, 30602, USA.
Abstract:
Mucolipidosis II (ML-II) is a pediatric disorder caused by defects in the biosynthesis of mannose 6-phosphate, the carbohydrate recognition signal responsible for targeting certain acid hydrolases to lysosomes. The mechanisms underlying the developmental defects of ML-II are largely unknown due in part to the lack of suitable animal models. To overcome these limitations, we developed a model for ML-II in zebrafish by inhibiting the expression of N-acetylglucosamine-1-phosphotransferase, the enzyme that initiates mannose 6-phosphate biosynthesis. Morphant embryos manifest craniofacial defects, impaired motility, and abnormal otolith and pectoral fin development. Decreased mannose phosphorylation of several lysosomal glycosidases was observed in morphant lysates, consistent with the reduction in phosphotransferase activity. Investigation of the craniofacial defects in the morphants uncovered striking changes in the timing and localization of both type II collagen and Sox9 expression, suggestive of an accelerated chondrocyte differentiation program. Accumulation of type II collagen was also noted within misshapen cartilage elements at later stages of development. Furthermore, we observed abnormal matrix formation and calcium deposition in morphant otoliths. Collectively, these data provide new insight into the developmental pathology of ML-II and suggest that altered production and/or homeostasis of extracellular matrix proteins are integral to the disease process. These findings highlight the potential of the zebrafish system in studying lysosomal disease pathogenesis.
Insights
Mucolipidosis II (ML-II) is a rare pediatric disorder. Zebrafish models reveal that defects in mannose 6-phosphate biosynthesis cause craniofacial and developmental abnormalities, offering new insights into disease mechanisms.
Area of Science:
- Developmental Biology
- Lysosomal Storage Diseases
- Zebrafish Models
Background:
- Mucolipidosis II (ML-II) is a pediatric lysosomal storage disease.
- Defects in mannose 6-phosphate biosynthesis impair lysosomal enzyme targeting.
- Pathogenic mechanisms of ML-II developmental defects are poorly understood due to limited animal models.
Purpose of the Study:
- To develop a zebrafish model for ML-II.
- To investigate the developmental pathology of ML-II using this model.
- To elucidate the role of mannose 6-phosphate biosynthesis in craniofacial and skeletal development.
Main Methods:
- Zebrafish morphants were generated by inhibiting N-acetylglucosamine-1-phosphotransferase.
- Morphological and developmental analyses were performed on morphant embryos.
- Biochemical assays assessed mannose phosphorylation of lysosomal glycosidases.
- Expression patterns of type II collagen and Sox9 were analyzed.
Main Results:
- Zebrafish morphants exhibited craniofacial defects, impaired motility, and abnormal otolith/pectoral fin development.
- Reduced mannose phosphorylation of lysosomal glycosidases confirmed impaired phosphotransferase activity.
- Aberrant expression of type II collagen and Sox9 suggested accelerated chondrocyte differentiation.
- Abnormal matrix formation and calcium deposition were observed in morphant otoliths.
Conclusions:
- Zebrafish provide a valuable model for studying ML-II pathogenesis.
- Altered extracellular matrix protein homeostasis is implicated in ML-II developmental defects.
- This study offers new insights into the molecular mechanisms underlying ML-II pathology.

