Literature DB >> 26149094

A conserved role of αA-crystallin in the development of the zebrafish embryonic lens.

Ping Zou1, Shu-Yu Wu1, Hanane A Koteiche1, Sanjay Mishra1, Daniel S Levic2, Ela Knapik2, Wenbiao Chen1, Hassane S Mchaourab3.   

Abstract

αA- and αB-crystallins are small heat shock proteins that bind thermodynamically destabilized proteins thereby inhibiting their aggregation. Highly expressed in the mammalian lens, the α-crystallins have been postulated to play a critical role in the maintenance of lens optical properties by sequestering age-damaged proteins prone to aggregation as well as through a multitude of roles in lens epithelial cells. Here, we have examined the role of α-crystallins in the development of the vertebrate zebrafish lens. For this purpose, we have carried out morpholino-mediated knockdown of αA-, αBa- and αBb-crystallin and characterized the gross morphology of the lens. We observed lens abnormalities, including increased reflectance intensity, as a consequence of the interference with expression of these proteins. These abnormalities were less frequent in transgenic zebrafish embryos expressing rat αA-crystallin suggesting a specific role of α-crystallins in embryonic lens development. To extend and confirm these findings, we generated an αA-crystallin knockout zebrafish line. A more consistent and severe lens phenotype was evident in maternal/zygotic αA-crystallin mutants compared to those observed by morpholino knockdown. The penetrance of the lens phenotype was reduced by transgenic expression of rat αA-crystallin and its severity was attenuated by maternal αA-crystallin expression. These findings demonstrate that the role of α-crystallins in lens development is conserved from mammals to zebrafish and set the stage for using the embryonic lens as a model system to test mechanistic aspects of α-crystallin chaperone activity and to develop strategies to fine-tune protein-protein interactions in aging and cataracts.
Copyright © 2015 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Alpha-crystallin; Cataract; Chaperone; Lens development; Maternal transcript; Morpholino; Small heat shock protein; TALEN; Zebrafish

Mesh:

Substances:

Year:  2015        PMID: 26149094      PMCID: PMC4638411          DOI: 10.1016/j.exer.2015.07.001

Source DB:  PubMed          Journal:  Exp Eye Res        ISSN: 0014-4835            Impact factor:   3.467


  68 in total

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5.  AlphaB-crystallin in lens development and muscle integrity: a gene knockout approach.

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7.  The zebrafish as a model system for analyzing mammalian and native α-crystallin promoter function.

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9.  Transgenic zebrafish models reveal distinct molecular mechanisms for cataract-linked αA-crystallin mutants.

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Review 10.  Versatile Genome Engineering Techniques Advance Human Ocular Disease Researches in Zebrafish.

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