MITE insertion-dependent expression of CitRKD1 with a RWP-RK domain regulates somatic embryogenesis in citrus nucellar tissues

Abstract Background Somatic embryogenesis in nucellar tissues is widely recognized to induce polyembryony in major citrus varieties such as sweet oranges, satsuma mandarins and lemons. This capability for apomixis is attractive in agricultural production systems using hybrid seeds, and many studies...

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Main Authors: Takehiko Shimada, Tomoko Endo, Hiroshi Fujii, Michiharu Nakano, Aiko Sugiyama, Genya Daido, Satoshi Ohta, Terutaka Yoshioka, Mitsuo Omura
Format: Article
Language:English
Published: BMC 2018-08-01
Series:BMC Plant Biology
Subjects:
RKD
Online Access:http://link.springer.com/article/10.1186/s12870-018-1369-3
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spelling doaj-23781b56568d460db6a1b25853a365502020-11-25T01:32:44ZengBMCBMC Plant Biology1471-22292018-08-0118111910.1186/s12870-018-1369-3MITE insertion-dependent expression of CitRKD1 with a RWP-RK domain regulates somatic embryogenesis in citrus nucellar tissuesTakehiko Shimada0Tomoko Endo1Hiroshi Fujii2Michiharu Nakano3Aiko Sugiyama4Genya Daido5Satoshi Ohta6Terutaka Yoshioka7Mitsuo Omura8National Agriculture and Food Research Organization, Institute of Fruit and Tea Tree ScienceNational Agriculture and Food Research Organization, Institute of Fruit and Tea Tree ScienceNational Agriculture and Food Research Organization, Institute of Fruit and Tea Tree ScienceFaculty of Agriculture, Shizuoka UniversityFaculty of Agriculture, Shizuoka UniversityFaculty of Agriculture, Shizuoka UniversityNational Agriculture and Food Research Organization, Institute of Fruit and Tea Tree ScienceNational Agriculture and Food Research Organization, Institute of Fruit and Tea Tree ScienceFaculty of Agriculture, Shizuoka UniversityAbstract Background Somatic embryogenesis in nucellar tissues is widely recognized to induce polyembryony in major citrus varieties such as sweet oranges, satsuma mandarins and lemons. This capability for apomixis is attractive in agricultural production systems using hybrid seeds, and many studies have been performed to elucidate the molecular mechanisms of various types of apomixis. To identify the gene responsible for somatic embryogenesis in citrus, a custom oligo-DNA microarray including predicted genes in the citrus polyembryonic locus was used to compare the expression profiles in reproductive tissues between monoembryonic and polyembryonic varieties. The full length of CitRKD1, which was identified as a candidate gene responsible for citrus somatic embryogenesis, was isolated from satsuma mandarin and its molecular function was investigated using transgenic ‘Hamlin’ sweet orange by antisense-overexpression. Results The candidate gene CitRKD1, predominantly transcribed in reproductive tissues of polyembryonic varieties, is a member of the plant RWP-RK domain-containing protein. CitRKD1 of satsuma mandarin comprised two alleles (CitRKD1-mg1 and CitRKD1-mg2) at the polyembryonic locus controlling embryonic type (mono/polyembryony) that were structurally divided into two types with or without a miniature inverted-repeat transposable element (MITE)-like insertion in the upstream region. CitRKD1-mg2 with the MITE insertion was the predominant transcript in flowers and young fruits where somatic embryogenesis of nucellar cells occurred. Loss of CitRKD1 function by antisense-overexpression abolished somatic embryogenesis in transgenic sweet orange and the transgenic T1 plants were confirmed to derive from zygotic embryos produced by self-pollination by DNA diagnosis. Genotyping PCR analysis of 95 citrus traditional and breeding varieties revealed that the CitRKD1 allele with the MITE insertion (polyembryonic allele) was dominant and major citrus varieties with the polyembryonic allele produced polyembryonic seeds. Conclusion CitRKD1 at the polyembryonic locus plays a principal role in regulating citrus somatic embryogenesis. CitRKD1 comprised multiple alleles that were divided into two types, polyembryonic alleles with a MITE insertion in the upstream region and monoembryonic alleles without it. CitRKD1 was transcribed in reproductive tissues of polyembryonic varieties with the polyembryonic allele. The MITE insertion in the upstream region of CitRKD1 might be involved in regulating the transcription of CitRKD1.http://link.springer.com/article/10.1186/s12870-018-1369-3Somatic embryogenesisRKDCitrusDNA markerEgg cellApomixis
collection DOAJ
language English
format Article
sources DOAJ
author Takehiko Shimada
Tomoko Endo
Hiroshi Fujii
Michiharu Nakano
Aiko Sugiyama
Genya Daido
Satoshi Ohta
Terutaka Yoshioka
Mitsuo Omura
spellingShingle Takehiko Shimada
Tomoko Endo
Hiroshi Fujii
Michiharu Nakano
Aiko Sugiyama
Genya Daido
Satoshi Ohta
Terutaka Yoshioka
Mitsuo Omura
MITE insertion-dependent expression of CitRKD1 with a RWP-RK domain regulates somatic embryogenesis in citrus nucellar tissues
BMC Plant Biology
Somatic embryogenesis
RKD
Citrus
DNA marker
Egg cell
Apomixis
author_facet Takehiko Shimada
Tomoko Endo
Hiroshi Fujii
Michiharu Nakano
Aiko Sugiyama
Genya Daido
Satoshi Ohta
Terutaka Yoshioka
Mitsuo Omura
author_sort Takehiko Shimada
title MITE insertion-dependent expression of CitRKD1 with a RWP-RK domain regulates somatic embryogenesis in citrus nucellar tissues
title_short MITE insertion-dependent expression of CitRKD1 with a RWP-RK domain regulates somatic embryogenesis in citrus nucellar tissues
title_full MITE insertion-dependent expression of CitRKD1 with a RWP-RK domain regulates somatic embryogenesis in citrus nucellar tissues
title_fullStr MITE insertion-dependent expression of CitRKD1 with a RWP-RK domain regulates somatic embryogenesis in citrus nucellar tissues
title_full_unstemmed MITE insertion-dependent expression of CitRKD1 with a RWP-RK domain regulates somatic embryogenesis in citrus nucellar tissues
title_sort mite insertion-dependent expression of citrkd1 with a rwp-rk domain regulates somatic embryogenesis in citrus nucellar tissues
publisher BMC
series BMC Plant Biology
issn 1471-2229
publishDate 2018-08-01
description Abstract Background Somatic embryogenesis in nucellar tissues is widely recognized to induce polyembryony in major citrus varieties such as sweet oranges, satsuma mandarins and lemons. This capability for apomixis is attractive in agricultural production systems using hybrid seeds, and many studies have been performed to elucidate the molecular mechanisms of various types of apomixis. To identify the gene responsible for somatic embryogenesis in citrus, a custom oligo-DNA microarray including predicted genes in the citrus polyembryonic locus was used to compare the expression profiles in reproductive tissues between monoembryonic and polyembryonic varieties. The full length of CitRKD1, which was identified as a candidate gene responsible for citrus somatic embryogenesis, was isolated from satsuma mandarin and its molecular function was investigated using transgenic ‘Hamlin’ sweet orange by antisense-overexpression. Results The candidate gene CitRKD1, predominantly transcribed in reproductive tissues of polyembryonic varieties, is a member of the plant RWP-RK domain-containing protein. CitRKD1 of satsuma mandarin comprised two alleles (CitRKD1-mg1 and CitRKD1-mg2) at the polyembryonic locus controlling embryonic type (mono/polyembryony) that were structurally divided into two types with or without a miniature inverted-repeat transposable element (MITE)-like insertion in the upstream region. CitRKD1-mg2 with the MITE insertion was the predominant transcript in flowers and young fruits where somatic embryogenesis of nucellar cells occurred. Loss of CitRKD1 function by antisense-overexpression abolished somatic embryogenesis in transgenic sweet orange and the transgenic T1 plants were confirmed to derive from zygotic embryos produced by self-pollination by DNA diagnosis. Genotyping PCR analysis of 95 citrus traditional and breeding varieties revealed that the CitRKD1 allele with the MITE insertion (polyembryonic allele) was dominant and major citrus varieties with the polyembryonic allele produced polyembryonic seeds. Conclusion CitRKD1 at the polyembryonic locus plays a principal role in regulating citrus somatic embryogenesis. CitRKD1 comprised multiple alleles that were divided into two types, polyembryonic alleles with a MITE insertion in the upstream region and monoembryonic alleles without it. CitRKD1 was transcribed in reproductive tissues of polyembryonic varieties with the polyembryonic allele. The MITE insertion in the upstream region of CitRKD1 might be involved in regulating the transcription of CitRKD1.
topic Somatic embryogenesis
RKD
Citrus
DNA marker
Egg cell
Apomixis
url http://link.springer.com/article/10.1186/s12870-018-1369-3
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