Niacin Protects against Butyrate-Induced Apoptosis in Rumen Epithelial Cells

The effects and underlying mechanisms of butyrate and butyrate+niacin on apoptosis in sheep rumen epithelial cells were investigated. Cells were exposed to butyrate (0–140 mM) for 6 h. A low concentration (20 mM) of butyrate increased cell viability and promoted growth whereas high concentrations (4...

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Main Authors: Dan Luo, Zhipeng Peng, Le Yang, Mingren Qu, Xiaowen Xiong, Lanjiao Xu, Xianghui Zhao, Ke Pan, Kehui Ouyang
Format: Article
Language:English
Published: Hindawi Limited 2019-01-01
Series:Oxidative Medicine and Cellular Longevity
Online Access:http://dx.doi.org/10.1155/2019/2179738
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spelling doaj-88312f735cfe483c9bb9420227699d882020-11-25T01:42:23ZengHindawi LimitedOxidative Medicine and Cellular Longevity1942-09001942-09942019-01-01201910.1155/2019/21797382179738Niacin Protects against Butyrate-Induced Apoptosis in Rumen Epithelial CellsDan Luo0Zhipeng Peng1Le Yang2Mingren Qu3Xiaowen Xiong4Lanjiao Xu5Xianghui Zhao6Ke Pan7Kehui Ouyang8Jiangxi Provincial Key Laboratory of Animal Nutrition, Jiangxi Agricultural University, Nanchang 330045, ChinaMenon Animal Nutrition Technology Co. Ltd., Shanghai 201800, ChinaKaihua County Animal Husbandry and Veterinary Bureau, Quzhou 324000, ChinaJiangxi Provincial Key Laboratory of Animal Nutrition, Jiangxi Agricultural University, Nanchang 330045, ChinaJiangxi Provincial Key Laboratory of Animal Nutrition, Jiangxi Agricultural University, Nanchang 330045, ChinaJiangxi Provincial Key Laboratory of Animal Nutrition, Jiangxi Agricultural University, Nanchang 330045, ChinaJiangxi Provincial Key Laboratory of Animal Nutrition, Jiangxi Agricultural University, Nanchang 330045, ChinaJiangxi Provincial Key Laboratory of Animal Nutrition, Jiangxi Agricultural University, Nanchang 330045, ChinaJiangxi Provincial Key Laboratory of Animal Nutrition, Jiangxi Agricultural University, Nanchang 330045, ChinaThe effects and underlying mechanisms of butyrate and butyrate+niacin on apoptosis in sheep rumen epithelial cells were investigated. Cells were exposed to butyrate (0–140 mM) for 6 h. A low concentration (20 mM) of butyrate increased cell viability and promoted growth whereas high concentrations (40–140 mM) inhibited proliferation. Cells were then cocultured with 120 mM butyrate and niacin (0–100 mM) for 6 h. Niacin addition attenuated butyrate-induced cellular damage and promoted proliferation at 20–80 mM; 40 mM presented the optimal effect. Higher concentrations (100 mM) of niacin resulted in low cell viability. Subsequent experiments confirmed that 120 mM butyrate increased intracellular reactive oxygen species (ROS) production and reduced the intracellular total antioxidant capacity (T-AOC) versus the untreated control. Compared with 120 mM butyrate, cotreatment with 40 mM niacin significantly reduced the intracellular ROS content and increased the intracellular T-AOC. Flow cytometry analysis revealed that 120 mM butyrate increased the proportion of apoptotic cells by 17.8% versus the untreated control, and 120 mM butyrate+40 mM niacin treatment reduced the proportion of apoptotic cells by 28.6% and 39.4% versus the untreated control and butyrate treatment, respectively. Treatment with 120 mM butyrate increased caspase-9 and p53 mRNA levels and decreased the expression of Bcl-2 and Bax, and the Bcl-2/Bax ratio versus the untreated control. Treatment with 120 mM butyrate+40 mM niacin downregulated the expression of caspase-3 and p53 and increased the expression of Bcl-2 and Bax versus butyrate treatment alone but had no effect on the Bcl-2/Bax ratio. Thus, high concentrations of butyrate may induce rumen epithelial cell apoptosis by increasing oxidative stress and inducing caspase-9 and p53 expression. Cotreatment with niacin regulates apoptosis-related gene expression by reducing intracellular ROS production and DNA damage and downregulating caspase-3 and p53 expressions to protect rumen epithelial cells against butyrate-induced apoptosis.http://dx.doi.org/10.1155/2019/2179738
collection DOAJ
language English
format Article
sources DOAJ
author Dan Luo
Zhipeng Peng
Le Yang
Mingren Qu
Xiaowen Xiong
Lanjiao Xu
Xianghui Zhao
Ke Pan
Kehui Ouyang
spellingShingle Dan Luo
Zhipeng Peng
Le Yang
Mingren Qu
Xiaowen Xiong
Lanjiao Xu
Xianghui Zhao
Ke Pan
Kehui Ouyang
Niacin Protects against Butyrate-Induced Apoptosis in Rumen Epithelial Cells
Oxidative Medicine and Cellular Longevity
author_facet Dan Luo
Zhipeng Peng
Le Yang
Mingren Qu
Xiaowen Xiong
Lanjiao Xu
Xianghui Zhao
Ke Pan
Kehui Ouyang
author_sort Dan Luo
title Niacin Protects against Butyrate-Induced Apoptosis in Rumen Epithelial Cells
title_short Niacin Protects against Butyrate-Induced Apoptosis in Rumen Epithelial Cells
title_full Niacin Protects against Butyrate-Induced Apoptosis in Rumen Epithelial Cells
title_fullStr Niacin Protects against Butyrate-Induced Apoptosis in Rumen Epithelial Cells
title_full_unstemmed Niacin Protects against Butyrate-Induced Apoptosis in Rumen Epithelial Cells
title_sort niacin protects against butyrate-induced apoptosis in rumen epithelial cells
publisher Hindawi Limited
series Oxidative Medicine and Cellular Longevity
issn 1942-0900
1942-0994
publishDate 2019-01-01
description The effects and underlying mechanisms of butyrate and butyrate+niacin on apoptosis in sheep rumen epithelial cells were investigated. Cells were exposed to butyrate (0–140 mM) for 6 h. A low concentration (20 mM) of butyrate increased cell viability and promoted growth whereas high concentrations (40–140 mM) inhibited proliferation. Cells were then cocultured with 120 mM butyrate and niacin (0–100 mM) for 6 h. Niacin addition attenuated butyrate-induced cellular damage and promoted proliferation at 20–80 mM; 40 mM presented the optimal effect. Higher concentrations (100 mM) of niacin resulted in low cell viability. Subsequent experiments confirmed that 120 mM butyrate increased intracellular reactive oxygen species (ROS) production and reduced the intracellular total antioxidant capacity (T-AOC) versus the untreated control. Compared with 120 mM butyrate, cotreatment with 40 mM niacin significantly reduced the intracellular ROS content and increased the intracellular T-AOC. Flow cytometry analysis revealed that 120 mM butyrate increased the proportion of apoptotic cells by 17.8% versus the untreated control, and 120 mM butyrate+40 mM niacin treatment reduced the proportion of apoptotic cells by 28.6% and 39.4% versus the untreated control and butyrate treatment, respectively. Treatment with 120 mM butyrate increased caspase-9 and p53 mRNA levels and decreased the expression of Bcl-2 and Bax, and the Bcl-2/Bax ratio versus the untreated control. Treatment with 120 mM butyrate+40 mM niacin downregulated the expression of caspase-3 and p53 and increased the expression of Bcl-2 and Bax versus butyrate treatment alone but had no effect on the Bcl-2/Bax ratio. Thus, high concentrations of butyrate may induce rumen epithelial cell apoptosis by increasing oxidative stress and inducing caspase-9 and p53 expression. Cotreatment with niacin regulates apoptosis-related gene expression by reducing intracellular ROS production and DNA damage and downregulating caspase-3 and p53 expressions to protect rumen epithelial cells against butyrate-induced apoptosis.
url http://dx.doi.org/10.1155/2019/2179738
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AT mingrenqu niacinprotectsagainstbutyrateinducedapoptosisinrumenepithelialcells
AT xiaowenxiong niacinprotectsagainstbutyrateinducedapoptosisinrumenepithelialcells
AT lanjiaoxu niacinprotectsagainstbutyrateinducedapoptosisinrumenepithelialcells
AT xianghuizhao niacinprotectsagainstbutyrateinducedapoptosisinrumenepithelialcells
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