Cargando…

Z-Ligustilide Exerted Hormetic Effect on Growth and Detoxification Enzymes of Spodoptera litura Larvae

Plants have evolved a variety of phytochemicals to defense insect feeding, whereas insects have also evolved diverse detoxification enzymes, which are adaptively induced as a prosurvival mechanism. Herein, Z-ligustilide in Ligusticum chuanxiong Hort. was found to exhibit a similar trend in the accum...

Descripción completa

Detalles Bibliográficos
Autores principales: Yi, Yang, Dou, Guojun, Yu, Zanyang, He, Hui, Wang, Chengqiang, Li, Li, Zhou, Jia, Liu, Dejun, Shi, Jianyou, Li, Guanrong, Pang, Lei, Yang, Na, Huang, Qinwan, Qi, Hongyi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6051125/
https://www.ncbi.nlm.nih.gov/pubmed/30057645
http://dx.doi.org/10.1155/2018/7104513
_version_ 1783340461867401216
author Yi, Yang
Dou, Guojun
Yu, Zanyang
He, Hui
Wang, Chengqiang
Li, Li
Zhou, Jia
Liu, Dejun
Shi, Jianyou
Li, Guanrong
Pang, Lei
Yang, Na
Huang, Qinwan
Qi, Hongyi
author_facet Yi, Yang
Dou, Guojun
Yu, Zanyang
He, Hui
Wang, Chengqiang
Li, Li
Zhou, Jia
Liu, Dejun
Shi, Jianyou
Li, Guanrong
Pang, Lei
Yang, Na
Huang, Qinwan
Qi, Hongyi
author_sort Yi, Yang
collection PubMed
description Plants have evolved a variety of phytochemicals to defense insect feeding, whereas insects have also evolved diverse detoxification enzymes, which are adaptively induced as a prosurvival mechanism. Herein, Z-ligustilide in Ligusticum chuanxiong Hort. was found to exhibit a similar trend in the accumulation from December to May as the occurrence of Spodoptera litura (Fabricius) larvae. Importantly, S. litura larvae feeding enhanced Z-ligustilide level in the stem and leaf (p < 0.01). Moreover, Z-ligustilide ranging from 1 to 5 mg·g(−1) exhibited remarkable larvicidal activity, antifeedant activity, and growth inhibition against S. litura larvae. The LC(50) values of larvicidal activity for phthalides in L. chuanxiong were compared as follows: Z-ligustilide > levistilide A > senkyunolide A > 3-butylidenephthalide > senkyunolide I, implicating the critical role of conjugated structure. Notably, there was a biphasic dose response for glutathione S-transferase (GST), cytochrome P450 (CYP) 450, Acetylcholinesterase (AChE), and Carboxylesterase (CarE) activities and GSTs1, cytochrome P450 (CYP) 4S9, and CYP4M14 mRNA expression. Particularly, low dose (0.1 mg·g(−1)) of Z-ligustilide conferred the resistance of S. litura larvae against chlorpyrifos (p < 0.05). Together, our data suggest that Z-ligustilide may function in a hormetic way in the chemical defense of L. chuanxiong against S. litura larvae.
format Online
Article
Text
id pubmed-6051125
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher Hindawi
record_format MEDLINE/PubMed
spelling pubmed-60511252018-07-29 Z-Ligustilide Exerted Hormetic Effect on Growth and Detoxification Enzymes of Spodoptera litura Larvae Yi, Yang Dou, Guojun Yu, Zanyang He, Hui Wang, Chengqiang Li, Li Zhou, Jia Liu, Dejun Shi, Jianyou Li, Guanrong Pang, Lei Yang, Na Huang, Qinwan Qi, Hongyi Evid Based Complement Alternat Med Research Article Plants have evolved a variety of phytochemicals to defense insect feeding, whereas insects have also evolved diverse detoxification enzymes, which are adaptively induced as a prosurvival mechanism. Herein, Z-ligustilide in Ligusticum chuanxiong Hort. was found to exhibit a similar trend in the accumulation from December to May as the occurrence of Spodoptera litura (Fabricius) larvae. Importantly, S. litura larvae feeding enhanced Z-ligustilide level in the stem and leaf (p < 0.01). Moreover, Z-ligustilide ranging from 1 to 5 mg·g(−1) exhibited remarkable larvicidal activity, antifeedant activity, and growth inhibition against S. litura larvae. The LC(50) values of larvicidal activity for phthalides in L. chuanxiong were compared as follows: Z-ligustilide > levistilide A > senkyunolide A > 3-butylidenephthalide > senkyunolide I, implicating the critical role of conjugated structure. Notably, there was a biphasic dose response for glutathione S-transferase (GST), cytochrome P450 (CYP) 450, Acetylcholinesterase (AChE), and Carboxylesterase (CarE) activities and GSTs1, cytochrome P450 (CYP) 4S9, and CYP4M14 mRNA expression. Particularly, low dose (0.1 mg·g(−1)) of Z-ligustilide conferred the resistance of S. litura larvae against chlorpyrifos (p < 0.05). Together, our data suggest that Z-ligustilide may function in a hormetic way in the chemical defense of L. chuanxiong against S. litura larvae. Hindawi 2018-07-02 /pmc/articles/PMC6051125/ /pubmed/30057645 http://dx.doi.org/10.1155/2018/7104513 Text en Copyright © 2018 Yang Yi et al. https://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Yi, Yang
Dou, Guojun
Yu, Zanyang
He, Hui
Wang, Chengqiang
Li, Li
Zhou, Jia
Liu, Dejun
Shi, Jianyou
Li, Guanrong
Pang, Lei
Yang, Na
Huang, Qinwan
Qi, Hongyi
Z-Ligustilide Exerted Hormetic Effect on Growth and Detoxification Enzymes of Spodoptera litura Larvae
title Z-Ligustilide Exerted Hormetic Effect on Growth and Detoxification Enzymes of Spodoptera litura Larvae
title_full Z-Ligustilide Exerted Hormetic Effect on Growth and Detoxification Enzymes of Spodoptera litura Larvae
title_fullStr Z-Ligustilide Exerted Hormetic Effect on Growth and Detoxification Enzymes of Spodoptera litura Larvae
title_full_unstemmed Z-Ligustilide Exerted Hormetic Effect on Growth and Detoxification Enzymes of Spodoptera litura Larvae
title_short Z-Ligustilide Exerted Hormetic Effect on Growth and Detoxification Enzymes of Spodoptera litura Larvae
title_sort z-ligustilide exerted hormetic effect on growth and detoxification enzymes of spodoptera litura larvae
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6051125/
https://www.ncbi.nlm.nih.gov/pubmed/30057645
http://dx.doi.org/10.1155/2018/7104513
work_keys_str_mv AT yiyang zligustilideexertedhormeticeffectongrowthanddetoxificationenzymesofspodopteralituralarvae
AT douguojun zligustilideexertedhormeticeffectongrowthanddetoxificationenzymesofspodopteralituralarvae
AT yuzanyang zligustilideexertedhormeticeffectongrowthanddetoxificationenzymesofspodopteralituralarvae
AT hehui zligustilideexertedhormeticeffectongrowthanddetoxificationenzymesofspodopteralituralarvae
AT wangchengqiang zligustilideexertedhormeticeffectongrowthanddetoxificationenzymesofspodopteralituralarvae
AT lili zligustilideexertedhormeticeffectongrowthanddetoxificationenzymesofspodopteralituralarvae
AT zhoujia zligustilideexertedhormeticeffectongrowthanddetoxificationenzymesofspodopteralituralarvae
AT liudejun zligustilideexertedhormeticeffectongrowthanddetoxificationenzymesofspodopteralituralarvae
AT shijianyou zligustilideexertedhormeticeffectongrowthanddetoxificationenzymesofspodopteralituralarvae
AT liguanrong zligustilideexertedhormeticeffectongrowthanddetoxificationenzymesofspodopteralituralarvae
AT panglei zligustilideexertedhormeticeffectongrowthanddetoxificationenzymesofspodopteralituralarvae
AT yangna zligustilideexertedhormeticeffectongrowthanddetoxificationenzymesofspodopteralituralarvae
AT huangqinwan zligustilideexertedhormeticeffectongrowthanddetoxificationenzymesofspodopteralituralarvae
AT qihongyi zligustilideexertedhormeticeffectongrowthanddetoxificationenzymesofspodopteralituralarvae