Comparative transcriptome analysis reveals distinct ethylene–independent regulation of ripening in response to low temperature in kiwifruit

Abstract Background Kiwifruit are classified as climacteric since exogenous ethylene (or its analogue propylene) induces rapid ripening accompanied by ethylene production under positive feedback regulation. However, most of the ripening–associated changes (Phase 1 ripening) in kiwifruit during stora...

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Main Authors: William O. Asiche, Oscar W. Mitalo, Yuka Kasahara, Yasuaki Tosa, Eric G. Mworia, Willis O. Owino, Koichiro Ushijima, Ryohei Nakano, Kentaro Yano, Yasutaka Kubo
Format: Article
Language:English
Published: BMC 2018-03-01
Series:BMC Plant Biology
Subjects:
Online Access:http://link.springer.com/article/10.1186/s12870-018-1264-y
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spelling doaj-b3fd08272db0410da657be29b996ae962020-11-24T21:26:27ZengBMCBMC Plant Biology1471-22292018-03-0118111810.1186/s12870-018-1264-yComparative transcriptome analysis reveals distinct ethylene–independent regulation of ripening in response to low temperature in kiwifruitWilliam O. Asiche0Oscar W. Mitalo1Yuka Kasahara2Yasuaki Tosa3Eric G. Mworia4Willis O. Owino5Koichiro Ushijima6Ryohei Nakano7Kentaro Yano8Yasutaka Kubo9Graduate School of Environmental and Life Science, Okayama UniversityGraduate School of Environmental and Life Science, Okayama UniversityGraduate School of Environmental and Life Science, Okayama UniversityGraduate School of Environmental and Life Science, Okayama UniversityMeru University of Science and TechnologyDepartment of Food Science and Technology, Jomo Kenyatta University of Agriculture and TechnologyGraduate School of Environmental and Life Science, Okayama UniversityGraduate School of Environmental and Life Science, Okayama UniversitySchool of Agriculture, Meiji UniversityGraduate School of Environmental and Life Science, Okayama UniversityAbstract Background Kiwifruit are classified as climacteric since exogenous ethylene (or its analogue propylene) induces rapid ripening accompanied by ethylene production under positive feedback regulation. However, most of the ripening–associated changes (Phase 1 ripening) in kiwifruit during storage and on–vine occur largely in the absence of any detectable ethylene. This ripening behavior is often attributed to basal levels of system I ethylene, although it is suggested to be modulated by low temperature. Results To elucidate the mechanisms regulating Phase 1 ripening in kiwifruit, a comparative transcriptome analysis using fruit continuously exposed to propylene (at 20 °C), and during storage at 5 °C and 20 °C was conducted. Propylene exposure induced kiwifruit softening, reduction of titratable acidity (TA), increase in soluble solids content (SSC) and ethylene production within 5 days. During storage, softening and reduction of TA occurred faster in fruit at 5 °C compared to 20 °C although no endogenous ethylene production was detected. Transcriptome analysis revealed 3761 ripening–related differentially expressed genes (DEGs), of which 2742 were up–regulated by propylene while 1058 were up–regulated by low temperature. Propylene exclusively up–regulated 2112 DEGs including those associated with ethylene biosynthesis and ripening such as AcACS1, AcACO2, AcPL1, AcXET1, Acβ–GAL, AcAAT, AcERF6 and AcNAC7. Similarly, low temperature exclusively up–regulated 467 DEGS including AcACO3, AcPL2, AcPMEi, AcADH, Acβ–AMY2, AcGA2ox2, AcNAC5 and AcbZIP2 among others. A considerable number of DEGs such as AcPG, AcEXP1, AcXET2, Acβ–AMY1, AcGA2ox1, AcNAC6, AcMADS1 and AcbZIP1 were up–regulated by either propylene or low temperature. Frequent 1–MCP treatments failed to inhibit the accelerated ripening and up–regulation of associated DEGs by low temperature indicating that the changes were independent of ethylene. On–vine kiwifruit ripening proceeded in the absence of any detectable endogenous ethylene production, and coincided with increased expression of low temperature–responsive DEGs as well as the decrease in environmental temperature. Conclusions These results indicate that kiwifruit possess both ethylene−dependent and low temperature–modulated ripening mechanisms that are distinct and independent of each other. The current work provides a foundation for elaborating the control of these two ripening mechanisms in kiwifruit.http://link.springer.com/article/10.1186/s12870-018-1264-yEthyleneFruit ripeningLow temperature–modulated ripeningOn–vine ripeningTranscription factor
collection DOAJ
language English
format Article
sources DOAJ
author William O. Asiche
Oscar W. Mitalo
Yuka Kasahara
Yasuaki Tosa
Eric G. Mworia
Willis O. Owino
Koichiro Ushijima
Ryohei Nakano
Kentaro Yano
Yasutaka Kubo
spellingShingle William O. Asiche
Oscar W. Mitalo
Yuka Kasahara
Yasuaki Tosa
Eric G. Mworia
Willis O. Owino
Koichiro Ushijima
Ryohei Nakano
Kentaro Yano
Yasutaka Kubo
Comparative transcriptome analysis reveals distinct ethylene–independent regulation of ripening in response to low temperature in kiwifruit
BMC Plant Biology
Ethylene
Fruit ripening
Low temperature–modulated ripening
On–vine ripening
Transcription factor
author_facet William O. Asiche
Oscar W. Mitalo
Yuka Kasahara
Yasuaki Tosa
Eric G. Mworia
Willis O. Owino
Koichiro Ushijima
Ryohei Nakano
Kentaro Yano
Yasutaka Kubo
author_sort William O. Asiche
title Comparative transcriptome analysis reveals distinct ethylene–independent regulation of ripening in response to low temperature in kiwifruit
title_short Comparative transcriptome analysis reveals distinct ethylene–independent regulation of ripening in response to low temperature in kiwifruit
title_full Comparative transcriptome analysis reveals distinct ethylene–independent regulation of ripening in response to low temperature in kiwifruit
title_fullStr Comparative transcriptome analysis reveals distinct ethylene–independent regulation of ripening in response to low temperature in kiwifruit
title_full_unstemmed Comparative transcriptome analysis reveals distinct ethylene–independent regulation of ripening in response to low temperature in kiwifruit
title_sort comparative transcriptome analysis reveals distinct ethylene–independent regulation of ripening in response to low temperature in kiwifruit
publisher BMC
series BMC Plant Biology
issn 1471-2229
publishDate 2018-03-01
description Abstract Background Kiwifruit are classified as climacteric since exogenous ethylene (or its analogue propylene) induces rapid ripening accompanied by ethylene production under positive feedback regulation. However, most of the ripening–associated changes (Phase 1 ripening) in kiwifruit during storage and on–vine occur largely in the absence of any detectable ethylene. This ripening behavior is often attributed to basal levels of system I ethylene, although it is suggested to be modulated by low temperature. Results To elucidate the mechanisms regulating Phase 1 ripening in kiwifruit, a comparative transcriptome analysis using fruit continuously exposed to propylene (at 20 °C), and during storage at 5 °C and 20 °C was conducted. Propylene exposure induced kiwifruit softening, reduction of titratable acidity (TA), increase in soluble solids content (SSC) and ethylene production within 5 days. During storage, softening and reduction of TA occurred faster in fruit at 5 °C compared to 20 °C although no endogenous ethylene production was detected. Transcriptome analysis revealed 3761 ripening–related differentially expressed genes (DEGs), of which 2742 were up–regulated by propylene while 1058 were up–regulated by low temperature. Propylene exclusively up–regulated 2112 DEGs including those associated with ethylene biosynthesis and ripening such as AcACS1, AcACO2, AcPL1, AcXET1, Acβ–GAL, AcAAT, AcERF6 and AcNAC7. Similarly, low temperature exclusively up–regulated 467 DEGS including AcACO3, AcPL2, AcPMEi, AcADH, Acβ–AMY2, AcGA2ox2, AcNAC5 and AcbZIP2 among others. A considerable number of DEGs such as AcPG, AcEXP1, AcXET2, Acβ–AMY1, AcGA2ox1, AcNAC6, AcMADS1 and AcbZIP1 were up–regulated by either propylene or low temperature. Frequent 1–MCP treatments failed to inhibit the accelerated ripening and up–regulation of associated DEGs by low temperature indicating that the changes were independent of ethylene. On–vine kiwifruit ripening proceeded in the absence of any detectable endogenous ethylene production, and coincided with increased expression of low temperature–responsive DEGs as well as the decrease in environmental temperature. Conclusions These results indicate that kiwifruit possess both ethylene−dependent and low temperature–modulated ripening mechanisms that are distinct and independent of each other. The current work provides a foundation for elaborating the control of these two ripening mechanisms in kiwifruit.
topic Ethylene
Fruit ripening
Low temperature–modulated ripening
On–vine ripening
Transcription factor
url http://link.springer.com/article/10.1186/s12870-018-1264-y
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