Strigolactones: Coordination with other phytohormones and enhancement of abiotic stress responses

被引:11
作者
Sharma, Pallavi [1 ]
Jha, Ambuj Bhushan [2 ]
Dubey, Rama Shanker [3 ]
机构
[1] Cent Univ Gujarat, Sch Environm & Sustainable Dev, Sect 30, Gandhinagar 382030, Gujarat, India
[2] Cent Univ Gujarat, Sch Life Sci, Sect 30, Gandhinagar 382030, Gujarat, India
[3] Cent Univ Gujarat, Sect 29, Gandhinagar 382030, Gujarat, India
关键词
Strigolactones; Carotenoid; Phytohormones; Signaling molecules; Abiotic stresses; ROOT DEVELOPMENT; SEED-GERMINATION; SALT STRESS; HYPOCOTYL ELONGATION; CHILLING TOLERANCE; DROUGHT RESISTANCE; HYDROGEN-PEROXIDE; LEAF SENESCENCE; NITRIC-OXIDE; ARABIDOPSIS;
D O I
10.1016/j.envexpbot.2024.105782
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Abiotic stresses such as drought, salinity, extreme temperatures, light intensity fluctuations, and nutrient deficiencies are significant challenges in agriculture. Climate change exacerbates these challenges, threatening crop yields and food security. To address these challenges, efforts should focus on developing resilient crop varieties and promoting sustainable farming practices. Strigolactones (SLs) were originally identified for their role in promoting germination in root parasitic plants. They have since been recognized as significant contributors to various aspects of plant biology. SLs function as versatile signaling molecules, orchestrating a myriad of plant physiological processes, including abiotic stress tolerance. They enhance plant resilience to abiotic stresses, improve growth, optimize photosynthesis, enhance water use efficiency, and reduce oxidative stress damage. SLs engage in interactions with diverse phytohormones to finely regulate essential processes in plants, aiding their survival and productivity in challenging environments. SLs hold the promise of enhancing our ability to protect plants from abiotic stress impacts. They can ensure sustainable food production amid climate change. This review delves into SL metabolism, explores the molecular mechanisms driving SLs perception and signal transduction, and the multifaceted roles that SLs play in plant physiology. Special emphasis is placed on their interactions with diverse phytohormones and their substantial role in bolstering resilience against abiotic stress. Moreover, the review covers crucial research gaps and future prospects concerning SLs application. Overall, our review enhances understanding of SLs application and advances efforts towards global food security and environmental sustainability.
引用
收藏
页数:18
相关论文
共 174 条
[1]   Carlactone is converted to carlactonoic acid by MAX1 in Arabidopsis and its methyl ester can directly interact with AtD14 in vitro [J].
Abe, Satoko ;
Sado, Aika ;
Tanaka, Kai ;
Kisugi, Takaya ;
Asami, Kei ;
Ota, Saeko ;
Kim, Hyun Il ;
Yoneyama, Kaori ;
Xie, Xiaonan ;
Ohnishi, Toshiyuki ;
Seto, Yoshiya ;
Yamaguchi, Shinjiro ;
Akiyama, Kohki ;
Yoneyama, Koichi ;
Nomura, Takahito .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2014, 111 (50) :18084-18089
[2]   The Apocarotenoid Zaxinone Is a Positive Regulator of Strigolactone and Abscisic Acid Biosynthesis in Arabidopsis Roots [J].
Ablazov, Abdugaffor ;
Mi, Jianing ;
Jamil, Muhammad ;
Jia, Kun-Peng ;
Wang, Jian You ;
Feng, Qitong ;
Al-Babili, Salim .
FRONTIERS IN PLANT SCIENCE, 2020, 11
[3]   A review on drought stress in plants: Implications, mitigation and the role of plant growth promoting rhizobacteria [J].
Ahluwalia, Ojasvini ;
Singh, Poonam C. ;
Bhatia, Ranjana .
RESOURCES ENVIRONMENT AND SUSTAINABILITY, 2021, 5
[4]   Assessment of heavy metal distribution and bioaccumulation in soil and plants near coal mining areas: implications for environmental pollution and health risks [J].
Akbar, Waqas Ali ;
Rahim, Hafeez Ur ;
Irfan, Muhammad ;
Sehrish, Adiba Khan ;
Mudassir, Muhammad .
ENVIRONMENTAL MONITORING AND ASSESSMENT, 2024, 196 (01)
[5]   Strigolactones, a Novel Carotenoid-Derived Plant Hormone [J].
Al-Babili, Salim ;
Bouwmeester, Harro J. .
ANNUAL REVIEW OF PLANT BIOLOGY, VOL 66, 2015, 66 :161-186
[6]   The Path from β-Carotene to Carlactone, a Strigolactone-Like Plant Hormone [J].
Alder, Adrian ;
Jamil, Muhammad ;
Marzorati, Mattia ;
Bruno, Mark ;
Vermathen, Martina ;
Bigler, Peter ;
Ghisla, Sandro ;
Bouwmeester, Harro ;
Beyer, Peter ;
Al-Babili, Salim .
SCIENCE, 2012, 335 (6074) :1348-1351
[7]   Strigolactone-Mediated Oxidative Stress Alleviation in Brassica rapa Through Upregulating Antioxidant System Under Water Deficit Conditions [J].
Ali, Ahmad ;
Shah, Tariq ;
Haider, Ghulam ;
Awan, Masood Iqbal ;
Gohar, Madiha ;
Munsif, Fazal ;
Ahmad, Ijaz .
JOURNAL OF PLANT GROWTH REGULATION, 2023, 42 (08) :4675-4687
[8]  
Ali K, 2022, Acta Scientific Agriculture, P50, DOI [10.31080/asag.2022.06.1098, 10.31080/ASAG.2022.06.1098, DOI 10.31080/ASAG.2022.06.1098, 10.31080/asag.2022.06.1098]
[9]   Ecological relevance of strigolactones in nutrient uptake and other abiotic stresses, and in plant-microbe interactions below-ground [J].
Andreo-Jimenez, Beatriz ;
Ruyter-Spira, Carolien ;
Bouwmeester, Harro J. ;
Lopez-Raez, Juan A. .
PLANT AND SOIL, 2015, 394 (1-2) :1-19
[10]   Salinity induced physiological and biochemical changes in plants: An omic approach towards salt stress tolerance [J].
Arif, Yamshi ;
Singh, Priyanka ;
Siddiqui, Husna ;
Bajguz, Andrzej ;
Hayat, Shamsul .
PLANT PHYSIOLOGY AND BIOCHEMISTRY, 2020, 156 :64-77