4.7 Article

Heme oxygenase-nitric oxide crosstalk-mediated iron homeostasis in plants under oxidative stress

期刊

FREE RADICAL BIOLOGY AND MEDICINE
卷 182, 期 -, 页码 192-205

出版社

ELSEVIER SCIENCE INC
DOI: 10.1016/j.freeradbiomed.2022.02.034

关键词

Abiotic stress; Antioxidants; Biliverdin; Dinitrosyl iron complexes; Ferritin; Frataxin; Heme oxygenase; Iron homeostasis; Iron uptake strategies; Iron-deficiency; Nitric oxide; Oxidative stress; Reactive oxygen species

资金

  1. Joint UGC-Israel Science Foundation Research Project [6-9/2017]
  2. [6-9/2017(IC)]

向作者/读者索取更多资源

Under oxidative stress conditions, plants enhance antioxidant capacity by regulating iron homeostasis through HO-1, thereby modulating ROS scavenging and antioxidant responses to maintain intracellular redox balance.
Plant growth under abiotic stress conditions significantly enhances intracellular generation of reactive oxygen species (ROS). Oxidative status of plant cells is directly affected by the modulation of iron homeostasis. Among mammals and plants, heme oxygenase-1 (HO-1) is a well-known antioxidant enzyme. It catalyzes oxygenation of heme, thereby producing Fe2+, CO and biliverdin as byproducts. The antioxidant potential of HO-1 is primarily due to its catalytic reaction byproducts. Biliverdin and bilirubin possess conjugated pi-electrons which escalate the ability of these biomolecules to scavenge free radicals. CO also enhances the ROS scavenging ability of plants cells by upregulating catalase and peroxidase activity. Enhanced expression of HO-1 in plants under oxidative stress accompanies sequestration of iron in specialized iron storage proteins localized in plastids and mitochondria, namely ferritin for Fe(3+ )storage and frataxin for storage of Fe-S clusters, respectively. Nitric oxide (NO) crosstalks with HO-1 at multiple levels, more so in plants under oxidative stress, in order to maintain intracellular iron status. Formation of dinitrosyl-iron complexes (DNICs) significantly prevents Fenton reaction during oxidative stress. DNICs also release NO upon dissociation in target cells over long distance in plants. They also function as antioxidants against superoxide anions and lipidic free radicals. A number of NO-modulated transcription factors also facilitate iron homeostasis in plant cells. Plants facing oxidative stress exhibit modulation of lateral root formation by HO-1 through NO and auxin-dependent pathways. The present review provides an in-depth analysis of the structure-function relationship of HO-1 in plants and mammals, correlating them with their adaptive mechanisms of survival under stress.

作者

我是这篇论文的作者
点击您的名字以认领此论文并将其添加到您的个人资料中。

评论

主要评分

4.7
评分不足

次要评分

新颖性
-
重要性
-
科学严谨性
-
评价这篇论文

推荐

暂无数据
Correction Biochemistry & Molecular Biology

miR-196a provides antioxidative neuroprotection via USP15/Nrf2 regulation in Huntington's disease (vol 209, pg 292, 2023)

Siew Chin Chan, Chih-Wei Tung, Chia-Wei Lin, Yun-Shiuan Tung, Po-Min Wu, Pei-Hsun Cheng, Chuan-Mu Chen, Shang-Hsun Yang

FREE RADICAL BIOLOGY AND MEDICINE (2024)

Article Biochemistry & Molecular Biology

Ribosome-targeting antibiotic control NLRP3-mediated inflammation by inhibiting mitochondrial DNA synthesis

Suyuan Liu, Meiling Tan, Jiangxue Cai, Chenxuan Li, Miaoxin Yang, Xiaoxiao Sun, Bin He

Summary: This study reveals that the antibiotic doxycycline effectively inhibits NLRP3 inflammasome activation by targeting mitochondrial translation and mtDNA synthesis, offering potential for the treatment of NLRP3-related diseases.

FREE RADICAL BIOLOGY AND MEDICINE (2024)

Article Biochemistry & Molecular Biology

Protectin D1 inhibits TLR4 signaling pathway to alleviate non-alcoholic steatohepatitis via upregulating IRAK-M

Hao Liu, Nana Li, Ge Kuang, Xia Gong, Ting Wang, Jun Hu, Hui Du, Minxuan Zhong, Jiashi Guo, Yao Xie, Yang Xiang, Shengwang Wu, Yiling Yuan, Xinru Yin, Jingyuan Wan, Ke Li

Summary: Protectin D1 (PTD1) improves hepatic steatosis, inflammation and fibrosis in a NASH mouse model by inhibiting the activation of TLR4 downstream signaling pathway, possibly through upregulation of IRAK-M expression, suggesting a potential new treatment for NASH.

FREE RADICAL BIOLOGY AND MEDICINE (2024)