Cargando…

Biochemical and Genetic Responses of Tea (Camellia sinensis (L.) Kuntze) Microplants under Mannitol-Induced Osmotic Stress In Vitro

Osmotic stress is a major factor reducing the growth and yield of many horticultural crops worldwide. To reveal reliable markers of tolerant genotypes, we need a comprehensive understanding of the responsive mechanisms in crops. In vitro stress induction can be an efficient tool to study the mechani...

Descripción completa

Detalles Bibliográficos
Autores principales: Samarina, Lidiia, Matskiv, Alexandra, Simonyan, Taisiya, Koninskaya, Natalia, Malyarovskaya, Valentina, Gvasaliya, Maya, Malyukova, Lyudmila, Tsaturyan, Gregory, Mytdyeva, Alfiya, Martinez-Montero, Marcos Edel, Choudhary, Ravish, Ryndin, Alexey
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7766420/
https://www.ncbi.nlm.nih.gov/pubmed/33348920
http://dx.doi.org/10.3390/plants9121795
_version_ 1783628714289922048
author Samarina, Lidiia
Matskiv, Alexandra
Simonyan, Taisiya
Koninskaya, Natalia
Malyarovskaya, Valentina
Gvasaliya, Maya
Malyukova, Lyudmila
Tsaturyan, Gregory
Mytdyeva, Alfiya
Martinez-Montero, Marcos Edel
Choudhary, Ravish
Ryndin, Alexey
author_facet Samarina, Lidiia
Matskiv, Alexandra
Simonyan, Taisiya
Koninskaya, Natalia
Malyarovskaya, Valentina
Gvasaliya, Maya
Malyukova, Lyudmila
Tsaturyan, Gregory
Mytdyeva, Alfiya
Martinez-Montero, Marcos Edel
Choudhary, Ravish
Ryndin, Alexey
author_sort Samarina, Lidiia
collection PubMed
description Osmotic stress is a major factor reducing the growth and yield of many horticultural crops worldwide. To reveal reliable markers of tolerant genotypes, we need a comprehensive understanding of the responsive mechanisms in crops. In vitro stress induction can be an efficient tool to study the mechanisms of responses in plants to help gain a better understanding of the physiological and genetic responses of plant tissues against each stress factor. In the present study, the osmotic stress was induced by addition of mannitol into the culture media to reveal biochemical and genetic responses of tea microplants. The contents of proline, threonine, epigallocatechin, and epigallocatechin gallate were increased in leaves during mannitol treatment. The expression level of several genes, namely DHN2, LOX1, LOX6, BAM, SUS1, TPS11, RS1, RS2, and SnRK1.3, was elevated by 2–10 times under mannitol-induced osmotic stress, while the expression of many other stress-related genes was not changed significantly. Surprisingly, down-regulation of the following genes, viz. bHLH12, bHLH7, bHLH21, bHLH43, CBF1, WRKY2, SWEET1, SWEET2, SWEET3, INV5, and LOX7, was observed. During this study, two major groups of highly correlated genes were observed. The first group included seven genes, namely CBF1, DHN3, HXK2, SnRK1.1, SPS, SWEET3, and SWEET1. The second group comprised eight genes, viz. DHN2, SnRK1.3, HXK3, RS1, RS2, LOX6, SUS4, and BAM5. A high level of correlation indicates the high strength connection of the genes which can be co-expressed or can be linked to the joint regulons. The present study demonstrates that tea plants develop several adaptations to cope under osmotic stress in vitro; however, some important stress-related genes were silent or downregulated in microplants.
format Online
Article
Text
id pubmed-7766420
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-77664202020-12-28 Biochemical and Genetic Responses of Tea (Camellia sinensis (L.) Kuntze) Microplants under Mannitol-Induced Osmotic Stress In Vitro Samarina, Lidiia Matskiv, Alexandra Simonyan, Taisiya Koninskaya, Natalia Malyarovskaya, Valentina Gvasaliya, Maya Malyukova, Lyudmila Tsaturyan, Gregory Mytdyeva, Alfiya Martinez-Montero, Marcos Edel Choudhary, Ravish Ryndin, Alexey Plants (Basel) Article Osmotic stress is a major factor reducing the growth and yield of many horticultural crops worldwide. To reveal reliable markers of tolerant genotypes, we need a comprehensive understanding of the responsive mechanisms in crops. In vitro stress induction can be an efficient tool to study the mechanisms of responses in plants to help gain a better understanding of the physiological and genetic responses of plant tissues against each stress factor. In the present study, the osmotic stress was induced by addition of mannitol into the culture media to reveal biochemical and genetic responses of tea microplants. The contents of proline, threonine, epigallocatechin, and epigallocatechin gallate were increased in leaves during mannitol treatment. The expression level of several genes, namely DHN2, LOX1, LOX6, BAM, SUS1, TPS11, RS1, RS2, and SnRK1.3, was elevated by 2–10 times under mannitol-induced osmotic stress, while the expression of many other stress-related genes was not changed significantly. Surprisingly, down-regulation of the following genes, viz. bHLH12, bHLH7, bHLH21, bHLH43, CBF1, WRKY2, SWEET1, SWEET2, SWEET3, INV5, and LOX7, was observed. During this study, two major groups of highly correlated genes were observed. The first group included seven genes, namely CBF1, DHN3, HXK2, SnRK1.1, SPS, SWEET3, and SWEET1. The second group comprised eight genes, viz. DHN2, SnRK1.3, HXK3, RS1, RS2, LOX6, SUS4, and BAM5. A high level of correlation indicates the high strength connection of the genes which can be co-expressed or can be linked to the joint regulons. The present study demonstrates that tea plants develop several adaptations to cope under osmotic stress in vitro; however, some important stress-related genes were silent or downregulated in microplants. MDPI 2020-12-17 /pmc/articles/PMC7766420/ /pubmed/33348920 http://dx.doi.org/10.3390/plants9121795 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Samarina, Lidiia
Matskiv, Alexandra
Simonyan, Taisiya
Koninskaya, Natalia
Malyarovskaya, Valentina
Gvasaliya, Maya
Malyukova, Lyudmila
Tsaturyan, Gregory
Mytdyeva, Alfiya
Martinez-Montero, Marcos Edel
Choudhary, Ravish
Ryndin, Alexey
Biochemical and Genetic Responses of Tea (Camellia sinensis (L.) Kuntze) Microplants under Mannitol-Induced Osmotic Stress In Vitro
title Biochemical and Genetic Responses of Tea (Camellia sinensis (L.) Kuntze) Microplants under Mannitol-Induced Osmotic Stress In Vitro
title_full Biochemical and Genetic Responses of Tea (Camellia sinensis (L.) Kuntze) Microplants under Mannitol-Induced Osmotic Stress In Vitro
title_fullStr Biochemical and Genetic Responses of Tea (Camellia sinensis (L.) Kuntze) Microplants under Mannitol-Induced Osmotic Stress In Vitro
title_full_unstemmed Biochemical and Genetic Responses of Tea (Camellia sinensis (L.) Kuntze) Microplants under Mannitol-Induced Osmotic Stress In Vitro
title_short Biochemical and Genetic Responses of Tea (Camellia sinensis (L.) Kuntze) Microplants under Mannitol-Induced Osmotic Stress In Vitro
title_sort biochemical and genetic responses of tea (camellia sinensis (l.) kuntze) microplants under mannitol-induced osmotic stress in vitro
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7766420/
https://www.ncbi.nlm.nih.gov/pubmed/33348920
http://dx.doi.org/10.3390/plants9121795
work_keys_str_mv AT samarinalidiia biochemicalandgeneticresponsesofteacamelliasinensislkuntzemicroplantsundermannitolinducedosmoticstressinvitro
AT matskivalexandra biochemicalandgeneticresponsesofteacamelliasinensislkuntzemicroplantsundermannitolinducedosmoticstressinvitro
AT simonyantaisiya biochemicalandgeneticresponsesofteacamelliasinensislkuntzemicroplantsundermannitolinducedosmoticstressinvitro
AT koninskayanatalia biochemicalandgeneticresponsesofteacamelliasinensislkuntzemicroplantsundermannitolinducedosmoticstressinvitro
AT malyarovskayavalentina biochemicalandgeneticresponsesofteacamelliasinensislkuntzemicroplantsundermannitolinducedosmoticstressinvitro
AT gvasaliyamaya biochemicalandgeneticresponsesofteacamelliasinensislkuntzemicroplantsundermannitolinducedosmoticstressinvitro
AT malyukovalyudmila biochemicalandgeneticresponsesofteacamelliasinensislkuntzemicroplantsundermannitolinducedosmoticstressinvitro
AT tsaturyangregory biochemicalandgeneticresponsesofteacamelliasinensislkuntzemicroplantsundermannitolinducedosmoticstressinvitro
AT mytdyevaalfiya biochemicalandgeneticresponsesofteacamelliasinensislkuntzemicroplantsundermannitolinducedosmoticstressinvitro
AT martinezmonteromarcosedel biochemicalandgeneticresponsesofteacamelliasinensislkuntzemicroplantsundermannitolinducedosmoticstressinvitro
AT choudharyravish biochemicalandgeneticresponsesofteacamelliasinensislkuntzemicroplantsundermannitolinducedosmoticstressinvitro
AT ryndinalexey biochemicalandgeneticresponsesofteacamelliasinensislkuntzemicroplantsundermannitolinducedosmoticstressinvitro