Study on artificial induction, growth and gamete quality of mitogynogenetic turbot Scophthalmus maximus

Artificial gynogenesis induction is one of the important techniques of chromosome manipulation. The eggs are fertilized with inactivated sperm to prevent the inheritance from the paternal genome, and genome information of the offspring is totally contributed by the maternal genome. Mitogynogenesis,...

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Published in:Aquaculture
Main Authors: Wu, Zhihao, Wang, Lijuan, Wu, Qiaowan, Lu, Yunliang, Song, Zongcheng, Li, Jun, You, Feng
Format: Report
Language:English
Published: ELSEVIER 2020
Subjects:
Online Access:http://ir.qdio.ac.cn/handle/337002/164840
https://doi.org/10.1016/j.aquaculture.2019.734585
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spelling ftchinacasciocas:oai:ir.qdio.ac.cn:337002/164840 2023-05-15T18:15:43+02:00 Study on artificial induction, growth and gamete quality of mitogynogenetic turbot Scophthalmus maximus Wu, Zhihao Wang, Lijuan Wu, Qiaowan Lu, Yunliang Song, Zongcheng Li, Jun You, Feng 2020-01-15 http://ir.qdio.ac.cn/handle/337002/164840 https://doi.org/10.1016/j.aquaculture.2019.734585 英语 eng ELSEVIER AQUACULTURE http://ir.qdio.ac.cn/handle/337002/164840 doi:10.1016/j.aquaculture.2019.734585 Turbot Scophthalmus maximus Artificial mitogynogenesis induction Growth Sex ratio Offspring Fisheries Marine & Freshwater Biology FLOUNDER PARALICHTHYS-LETHOSTIGMA TROUT SALMO-TRUTTA EUROPEAN SEA BASS DIPLOID GYNOGENESIS JAPANESE FLOUNDER SEXUAL-DIMORPHISM DIFFERENTIATION MANIPULATION AQUACULTURE OLIVACEUS 期刊论文 2020 ftchinacasciocas https://doi.org/10.1016/j.aquaculture.2019.734585 2022-06-27T05:41:58Z Artificial gynogenesis induction is one of the important techniques of chromosome manipulation. The eggs are fertilized with inactivated sperm to prevent the inheritance from the paternal genome, and genome information of the offspring is totally contributed by the maternal genome. Mitogynogenesis, in which diploidization of chromosome set is performed by blocking the cleavage, is theoretically homozygous and has got more attention in breeding. In this study, we performed the mitogynogenetic diploid induction in turbot Scophthalmus maximus, one of the most important maricultural fish in China and Europe, by applying hydrostatic pressure to the eggs activated with UV-irradiated homologous sperm. The optimal inducing conditions were 36,000 erg mm(-2) for UV-irradiated and pressure of 65 MPa for 6 min at 15 min before the appearance of the cleavage furrow. Two mitogynogenesis stocks were obtained in 2016 and 2017. The results showed that there was no distinct difference in incubation time and morphological traits between mitogynogenetic diploid and control diploid. The survival rates of mitogynogenetic diploid sharply decreased in the first month post hatching (mph). Their total weight (tW) and total length (tL) increased rapidly from 12 to 18 mph. The mitogynogenetic diploids induced in 2016 and 2017 showed very different growth. The mean tW and tL of 10 fast-growing individuals at 18 mph were 2.78 and 1.32 times of the others in 2016 stock, while 4.50 and 1.74 times in 2017 stock, respectively. The higher male ratio and rising trend of male ratio indicated the female heterogametic ZW/ZZ genetic mechanism of sex determination in turbot. Twenty-four adults in 2017 stock survived until 24 mph. While twenty-nine adults in 2016 stock survived until 36 mph, in which 11 adults could be promoted mature. Then the qualities of gametes were evaluated and showed that both the egg and the sperm qualities of mitogynogenetic diploid were lower than those of control diploid. However, the embryo and larvae development showed no ... Report Scophthalmus maximus Turbot Institute of Oceanology, Chinese Academy of Sciences: IOCAS-IR Aquaculture 515 734585
institution Open Polar
collection Institute of Oceanology, Chinese Academy of Sciences: IOCAS-IR
op_collection_id ftchinacasciocas
language English
topic Turbot Scophthalmus maximus
Artificial mitogynogenesis induction
Growth
Sex ratio
Offspring
Fisheries
Marine & Freshwater Biology
FLOUNDER PARALICHTHYS-LETHOSTIGMA
TROUT SALMO-TRUTTA
EUROPEAN SEA BASS
DIPLOID GYNOGENESIS
JAPANESE FLOUNDER
SEXUAL-DIMORPHISM
DIFFERENTIATION
MANIPULATION
AQUACULTURE
OLIVACEUS
spellingShingle Turbot Scophthalmus maximus
Artificial mitogynogenesis induction
Growth
Sex ratio
Offspring
Fisheries
Marine & Freshwater Biology
FLOUNDER PARALICHTHYS-LETHOSTIGMA
TROUT SALMO-TRUTTA
EUROPEAN SEA BASS
DIPLOID GYNOGENESIS
JAPANESE FLOUNDER
SEXUAL-DIMORPHISM
DIFFERENTIATION
MANIPULATION
AQUACULTURE
OLIVACEUS
Wu, Zhihao
Wang, Lijuan
Wu, Qiaowan
Lu, Yunliang
Song, Zongcheng
Li, Jun
You, Feng
Study on artificial induction, growth and gamete quality of mitogynogenetic turbot Scophthalmus maximus
topic_facet Turbot Scophthalmus maximus
Artificial mitogynogenesis induction
Growth
Sex ratio
Offspring
Fisheries
Marine & Freshwater Biology
FLOUNDER PARALICHTHYS-LETHOSTIGMA
TROUT SALMO-TRUTTA
EUROPEAN SEA BASS
DIPLOID GYNOGENESIS
JAPANESE FLOUNDER
SEXUAL-DIMORPHISM
DIFFERENTIATION
MANIPULATION
AQUACULTURE
OLIVACEUS
description Artificial gynogenesis induction is one of the important techniques of chromosome manipulation. The eggs are fertilized with inactivated sperm to prevent the inheritance from the paternal genome, and genome information of the offspring is totally contributed by the maternal genome. Mitogynogenesis, in which diploidization of chromosome set is performed by blocking the cleavage, is theoretically homozygous and has got more attention in breeding. In this study, we performed the mitogynogenetic diploid induction in turbot Scophthalmus maximus, one of the most important maricultural fish in China and Europe, by applying hydrostatic pressure to the eggs activated with UV-irradiated homologous sperm. The optimal inducing conditions were 36,000 erg mm(-2) for UV-irradiated and pressure of 65 MPa for 6 min at 15 min before the appearance of the cleavage furrow. Two mitogynogenesis stocks were obtained in 2016 and 2017. The results showed that there was no distinct difference in incubation time and morphological traits between mitogynogenetic diploid and control diploid. The survival rates of mitogynogenetic diploid sharply decreased in the first month post hatching (mph). Their total weight (tW) and total length (tL) increased rapidly from 12 to 18 mph. The mitogynogenetic diploids induced in 2016 and 2017 showed very different growth. The mean tW and tL of 10 fast-growing individuals at 18 mph were 2.78 and 1.32 times of the others in 2016 stock, while 4.50 and 1.74 times in 2017 stock, respectively. The higher male ratio and rising trend of male ratio indicated the female heterogametic ZW/ZZ genetic mechanism of sex determination in turbot. Twenty-four adults in 2017 stock survived until 24 mph. While twenty-nine adults in 2016 stock survived until 36 mph, in which 11 adults could be promoted mature. Then the qualities of gametes were evaluated and showed that both the egg and the sperm qualities of mitogynogenetic diploid were lower than those of control diploid. However, the embryo and larvae development showed no ...
format Report
author Wu, Zhihao
Wang, Lijuan
Wu, Qiaowan
Lu, Yunliang
Song, Zongcheng
Li, Jun
You, Feng
author_facet Wu, Zhihao
Wang, Lijuan
Wu, Qiaowan
Lu, Yunliang
Song, Zongcheng
Li, Jun
You, Feng
author_sort Wu, Zhihao
title Study on artificial induction, growth and gamete quality of mitogynogenetic turbot Scophthalmus maximus
title_short Study on artificial induction, growth and gamete quality of mitogynogenetic turbot Scophthalmus maximus
title_full Study on artificial induction, growth and gamete quality of mitogynogenetic turbot Scophthalmus maximus
title_fullStr Study on artificial induction, growth and gamete quality of mitogynogenetic turbot Scophthalmus maximus
title_full_unstemmed Study on artificial induction, growth and gamete quality of mitogynogenetic turbot Scophthalmus maximus
title_sort study on artificial induction, growth and gamete quality of mitogynogenetic turbot scophthalmus maximus
publisher ELSEVIER
publishDate 2020
url http://ir.qdio.ac.cn/handle/337002/164840
https://doi.org/10.1016/j.aquaculture.2019.734585
genre Scophthalmus maximus
Turbot
genre_facet Scophthalmus maximus
Turbot
op_relation AQUACULTURE
http://ir.qdio.ac.cn/handle/337002/164840
doi:10.1016/j.aquaculture.2019.734585
op_doi https://doi.org/10.1016/j.aquaculture.2019.734585
container_title Aquaculture
container_volume 515
container_start_page 734585
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