Cargando…

Integrative Metabolic and Transcriptomic Profiling in Camellia oleifera and Camellia meiocarpa Uncover Potential Mechanisms That Govern Triacylglycerol Degradation during Seed Desiccation

Camellia seed oil is a top-end quality of cooking oil in China. The oil quality and quantity are formed during seed maturation and desiccation. So far, it remains largely unresolved whether lipid degradation occurs and contributes to Camellia oil traits. In this study, three different Camellia germp...

Descripción completa

Detalles Bibliográficos
Autores principales: Chen, Mingjie, Zhang, Yi, Du, Zhenghua, Kong, Xiangrui, Zhu, Xiaofang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10385360/
https://www.ncbi.nlm.nih.gov/pubmed/37514206
http://dx.doi.org/10.3390/plants12142591
_version_ 1785081387126095872
author Chen, Mingjie
Zhang, Yi
Du, Zhenghua
Kong, Xiangrui
Zhu, Xiaofang
author_facet Chen, Mingjie
Zhang, Yi
Du, Zhenghua
Kong, Xiangrui
Zhu, Xiaofang
author_sort Chen, Mingjie
collection PubMed
description Camellia seed oil is a top-end quality of cooking oil in China. The oil quality and quantity are formed during seed maturation and desiccation. So far, it remains largely unresolved whether lipid degradation occurs and contributes to Camellia oil traits. In this study, three different Camellia germplasms, C. oleifera cv. Min 43 (M43), C. meiocarpa var. Qingguo (QG), and C. meiocarpa cv Hongguo (HG) were selected, their seed oil contents and compositions were quantified across different stages of seed desiccation. We found that at the late stage of desiccation, M43 and QG lost a significant portion of seed oil, while such an event was not observed in HG. To explore the molecular bases for the oil loss In M43, the transcriptomic profiling of M43 and HG was performed at the early and the late seed desiccation, respectively, and differentially expressed genes (DEGs) from the lipid metabolic pathway were identified and analyzed. Our data demonstrated that different Camellia species have diverse mechanisms to regulate seed oil accumulation and degradation, and that triacylglycerol-to-terpenoid conversion could account for the oil loss in M43 during late seed desiccation.
format Online
Article
Text
id pubmed-10385360
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-103853602023-07-30 Integrative Metabolic and Transcriptomic Profiling in Camellia oleifera and Camellia meiocarpa Uncover Potential Mechanisms That Govern Triacylglycerol Degradation during Seed Desiccation Chen, Mingjie Zhang, Yi Du, Zhenghua Kong, Xiangrui Zhu, Xiaofang Plants (Basel) Article Camellia seed oil is a top-end quality of cooking oil in China. The oil quality and quantity are formed during seed maturation and desiccation. So far, it remains largely unresolved whether lipid degradation occurs and contributes to Camellia oil traits. In this study, three different Camellia germplasms, C. oleifera cv. Min 43 (M43), C. meiocarpa var. Qingguo (QG), and C. meiocarpa cv Hongguo (HG) were selected, their seed oil contents and compositions were quantified across different stages of seed desiccation. We found that at the late stage of desiccation, M43 and QG lost a significant portion of seed oil, while such an event was not observed in HG. To explore the molecular bases for the oil loss In M43, the transcriptomic profiling of M43 and HG was performed at the early and the late seed desiccation, respectively, and differentially expressed genes (DEGs) from the lipid metabolic pathway were identified and analyzed. Our data demonstrated that different Camellia species have diverse mechanisms to regulate seed oil accumulation and degradation, and that triacylglycerol-to-terpenoid conversion could account for the oil loss in M43 during late seed desiccation. MDPI 2023-07-08 /pmc/articles/PMC10385360/ /pubmed/37514206 http://dx.doi.org/10.3390/plants12142591 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Chen, Mingjie
Zhang, Yi
Du, Zhenghua
Kong, Xiangrui
Zhu, Xiaofang
Integrative Metabolic and Transcriptomic Profiling in Camellia oleifera and Camellia meiocarpa Uncover Potential Mechanisms That Govern Triacylglycerol Degradation during Seed Desiccation
title Integrative Metabolic and Transcriptomic Profiling in Camellia oleifera and Camellia meiocarpa Uncover Potential Mechanisms That Govern Triacylglycerol Degradation during Seed Desiccation
title_full Integrative Metabolic and Transcriptomic Profiling in Camellia oleifera and Camellia meiocarpa Uncover Potential Mechanisms That Govern Triacylglycerol Degradation during Seed Desiccation
title_fullStr Integrative Metabolic and Transcriptomic Profiling in Camellia oleifera and Camellia meiocarpa Uncover Potential Mechanisms That Govern Triacylglycerol Degradation during Seed Desiccation
title_full_unstemmed Integrative Metabolic and Transcriptomic Profiling in Camellia oleifera and Camellia meiocarpa Uncover Potential Mechanisms That Govern Triacylglycerol Degradation during Seed Desiccation
title_short Integrative Metabolic and Transcriptomic Profiling in Camellia oleifera and Camellia meiocarpa Uncover Potential Mechanisms That Govern Triacylglycerol Degradation during Seed Desiccation
title_sort integrative metabolic and transcriptomic profiling in camellia oleifera and camellia meiocarpa uncover potential mechanisms that govern triacylglycerol degradation during seed desiccation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10385360/
https://www.ncbi.nlm.nih.gov/pubmed/37514206
http://dx.doi.org/10.3390/plants12142591
work_keys_str_mv AT chenmingjie integrativemetabolicandtranscriptomicprofilingincamelliaoleiferaandcamelliameiocarpauncoverpotentialmechanismsthatgoverntriacylglyceroldegradationduringseeddesiccation
AT zhangyi integrativemetabolicandtranscriptomicprofilingincamelliaoleiferaandcamelliameiocarpauncoverpotentialmechanismsthatgoverntriacylglyceroldegradationduringseeddesiccation
AT duzhenghua integrativemetabolicandtranscriptomicprofilingincamelliaoleiferaandcamelliameiocarpauncoverpotentialmechanismsthatgoverntriacylglyceroldegradationduringseeddesiccation
AT kongxiangrui integrativemetabolicandtranscriptomicprofilingincamelliaoleiferaandcamelliameiocarpauncoverpotentialmechanismsthatgoverntriacylglyceroldegradationduringseeddesiccation
AT zhuxiaofang integrativemetabolicandtranscriptomicprofilingincamelliaoleiferaandcamelliameiocarpauncoverpotentialmechanismsthatgoverntriacylglyceroldegradationduringseeddesiccation