Leucine-rich repeat containing 8A contributes to the expansion of brain ventricles in zebrafish embryos

Author:

Tseng Yen-Tzu1,Ko Chun-Lin1,Chang Chia-Teng1,Lee Yen-Hua1,Huang Fu Wei-Chun2,Liu I-Hsuan134ORCID

Affiliation:

1. Department of Animal Science and Technology, National Taiwan University, Taipei, 106, Taiwan

2. The Ph.D. Program for Cancer Biology and Drug Discovery, College of Medical Science and Technology, Taipei Medical University, Taipei, Taiwan

3. Research Center for Developmental Biology and Regenerative Medicine, National Taiwan University, Taipei, 106, Taiwan

4. School of Veterinary Medicine, National Taiwan University, Taipei, 106, Taiwan

Abstract

The sodium osmotic gradient is necessary for the initiation of brain ventricle inflation, but a previous study predicted that organic and inorganic osmolytes play equivalently important roles in osmotic homeostasis in astrocytes. To test whether organic osmoregulation also plays a role in brain ventricle inflation, the core component for volume-regulated anion and organic osmolyte channel, lrrc8a, was investigated in zebrafish model. RT-PCR and whole-mount in situ hybridization indicated that both genes were ubiquitously expressed through 12 hpf, and around the ventricular layer of neural tubes and the cardiogenic region at 24 hpf. Knocking down either one lrrc8a paralog with morpholino oligos resulted in abnormalities in circulation at 32 hpf. Morpholino oligos or CRISPR interference against either paralog led to smaller brain ventricles at 24 hpf. Either lrrc8aa or lrrc8ab mRNA rescued the phenotypic penetrance in both lrrc8aa and lrrc8ab morphants. Supplementation of taurine in the E3 medium and overexpression csad mRNA also rescued lrrc8aa and lrrc8ab morphants. Our results indicated that the two zebrafish lrrc8a paralogs are maternal message genes and were ubiquitously expressed in early embryos. The two genes play redundant roles in the expansion of brain ventricles and the circulatory system and taurine contribute to the brain ventricle expansion via volume-regulated anion and organic osmolyte channel.

Funder

Ministry of Science and Technology, Taiwan

Council of Agriculture

National Taiwan University

Publisher

The Company of Biologists

Subject

General Agricultural and Biological Sciences,General Biochemistry, Genetics and Molecular Biology

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