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黄麻对非生物胁迫的响应与耐受性:机制与方法

Jute Responses and Tolerance to Abiotic Stress: Mechanisms and Approaches.

作者信息

Rahman Khussboo, Ahmed Naznin, Raihan Md Rakib Hossain, Nowroz Farzana, Jannat Faria, Rahman Mira, Hasanuzzaman Mirza

机构信息

Department of Agronomy, Faculty of Agriculture, Sher-e-Bangla Agricultural University, Sher-e-Bangla Nagar, Dhaka 1207, Bangladesh.

出版信息

Plants (Basel). 2021 Aug 3;10(8):1595. doi: 10.3390/plants10081595.


DOI:10.3390/plants10081595
PMID:34451640
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8398869/
Abstract

Jute ( spp.) belongs to the Malvaceae family, and there are two species of jute, and It is the second-largest natural bast fiber in the world according to production, which has diverse uses not only as a fiber but also as multiple industrial materials. Because of climate change, plants experience various stressors such as salt, drought, heat, cold, metal/metalloid toxicity, and flooding. Although jute is particularly adapted to grow in hot and humid climates, it is grown under a wide variety of climatic conditions and is relatively tolerant to some environmental adversities. However, abiotic stress often restricts its growth, yield, and quality significantly. Abiotic stress negatively affects the metabolic activities, growth, physiology, and fiber yield of jute. One of the major consequences of abiotic stress on the jute plant is the generation of reactive oxygen species, which lead to oxidative stress that damages its cellular organelles and biomolecules. However, jute's responses to abiotic stress mainly depend on the plant's age and type and duration of stress. Therefore, understanding the abiotic stress responses and the tolerance mechanism would help plant biologists and agronomists in developing climate-smart jute varieties and suitable cultivation packages for adverse environmental conditions. In this review, we summarized the best possible recent literature on the plant abiotic stress factors and their influence on jute plants. We described the possible approaches for stress tolerance mechanisms based on the available literature.

摘要

黄麻(属)属于锦葵科,有两种黄麻,即长蒴黄麻和圆果黄麻。按产量计算,它是世界上第二大天然韧皮纤维,不仅作为纤维,还作为多种工业材料有多种用途。由于气候变化,植物会经历各种胁迫因素,如盐、干旱、高温、低温、金属/类金属毒性和洪涝。尽管黄麻特别适合在炎热潮湿的气候中生长,但它在各种气候条件下都能生长,并且对一些环境逆境具有相对耐受性。然而,非生物胁迫常常严重限制其生长、产量和品质。非生物胁迫会对黄麻的代谢活动、生长、生理和纤维产量产生负面影响。非生物胁迫对黄麻植株的一个主要后果是产生活性氧,这会导致氧化胁迫,损害其细胞器和生物分子。然而,黄麻对非生物胁迫的反应主要取决于植株的年龄、胁迫的类型和持续时间。因此,了解非生物胁迫反应和耐受机制将有助于植物生物学家和农学家培育适应气候变化的黄麻品种,并为不利环境条件制定合适的种植方案。在这篇综述中,我们总结了关于植物非生物胁迫因素及其对黄麻植株影响的近期最佳文献。我们根据现有文献描述了胁迫耐受机制的可能方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/607c/8398869/8a0b0eefce6b/plants-10-01595-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/607c/8398869/ac530ef34359/plants-10-01595-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/607c/8398869/7a70cc37258e/plants-10-01595-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/607c/8398869/8a0b0eefce6b/plants-10-01595-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/607c/8398869/ac530ef34359/plants-10-01595-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/607c/8398869/7a70cc37258e/plants-10-01595-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/607c/8398869/8a0b0eefce6b/plants-10-01595-g003.jpg

相似文献

[1]
Jute Responses and Tolerance to Abiotic Stress: Mechanisms and Approaches.

Plants (Basel). 2021-8-3

[2]
Genetic analyses of morphological traits, and phenotypic screening of tossa jute germplasm grown under salinity stress.

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[3]
Genome-wide in silico identification of phospholipase D (PLD) gene family from Corchorus capsularis and Corchorus olitorius: reveals their responses to plant stress.

J Genet Eng Biotechnol. 2022-2-11

[4]
Influence of phosphorus on copper phytoextraction via modulating cellular organelles in two jute (Corchorus capsularis L.) varieties grown in a copper mining soil of Hubei Province, China.

Chemosphere. 2020-1-25

[5]
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[6]
Evolution and expression analysis of the caffeoyl-CoA 3-O-methyltransferase (CCoAOMT) gene family in jute (Corchorus L.).

BMC Genomics. 2023-4-17

[7]
De novo assembly of transcriptome and genome-wide identification reveal GA stress-responsive WRKY transcription factors involved in fiber formation in jute (Corchorus capsularis).

BMC Plant Biol. 2020-9-1

[8]
Overexpression of CcNAC1 gene promotes early flowering and enhances drought tolerance of jute (Corchorus capsularis L.).

Protoplasma. 2021-3

[9]
Comparative transcriptome sequencing analysis and functional identification of a NAM-2-like gene in jute (Corchorus capsularis L.).

Plant Physiol Biochem. 2021-4

[10]
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Heliyon. 2021-5-25

引用本文的文献

[1]
Identification of Gene Family Involved in the Response of ABA under Salt and Drought Stresses in Jute ( L.).

Plants (Basel). 2023-3-3

[2]
Genome-wide investigation of SnRK2 gene family in two jute species: Corchorus olitorius and Corchorus capsularis.

J Genet Eng Biotechnol. 2023-1-18

[3]
Biochar and Chitosan Regulate Antioxidant Defense and Methylglyoxal Detoxification Systems and Enhance Salt Tolerance in Jute ( L.).

Antioxidants (Basel). 2021-12-19

[4]
Morpho-phenetical study of high yielding tossa jute variety BJRI Tossa Pat 7 (MG-1) for bast fibre yield and qualities.

Heliyon. 2021-10-5

本文引用的文献

[1]
Comparative transcriptome sequencing analysis and functional identification of a NAM-2-like gene in jute (Corchorus capsularis L.).

Plant Physiol Biochem. 2021-4

[2]
Effects of Megafol on the Olive Cultivar 'Arbequina' Grown Under Severe Saline Stress in Terms of Physiological Traits, Oxidative Stress, Antioxidant Defenses, and Cytosolic Ca.

Front Plant Sci. 2021-1-15

[3]
Overexpression of CcNAC1 gene promotes early flowering and enhances drought tolerance of jute (Corchorus capsularis L.).

Protoplasma. 2021-3

[4]
How Does Proline Treatment Promote Salt Stress Tolerance During Crop Plant Development?

Front Plant Sci. 2020-7-23

[5]
Reactive Oxygen Species and Antioxidant Defense in Plants under Abiotic Stress: Revisiting the Crucial Role of a Universal Defense Regulator.

Antioxidants (Basel). 2020-7-29

[6]
Foliar application of gibberellic acid endorsed phytoextraction of copper and alleviates oxidative stress in jute (Corchorus capsularis L.) plant grown in highly copper-contaminated soil of China.

Environ Sci Pollut Res Int. 2020-6-24

[7]
Ethylenediaminetetraacetic Acid (EDTA) Mitigates the Toxic Effect of Excessive Copper Concentrations on Growth, Gaseous Exchange and Chloroplast Ultrastructure of L. and Improves Copper Accumulation Capabilities.

Plants (Basel). 2020-6-16

[8]
Auxin-mediated responses under salt stress: from developmental regulation to biotechnological applications.

J Exp Bot. 2020-6-26

[9]
Effect of Citric Acid on Growth, Ecophysiology, Chloroplast Ultrastructure, and Phytoremediation Potential of Jute ( L.) Seedlings Exposed to Copper Stress.

Biomolecules. 2020-4-11

[10]
Copper Uptake and Accumulation, Ultra-Structural Alteration, and Bast Fibre Yield and Quality of Fibrous Jute ( L.) Plants Grown Under Two Different Soils of China.

Plants (Basel). 2020-3-24

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