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Effects of Heat Shock on Photosynthesis-related Characteristics and Lipid Profile of Cycas Multipinnata and C. Panzhihuaensis

Overview
Journal BMC Plant Biol
Publisher Biomed Central
Specialty Biology
Date 2022 Sep 15
PMID 36109687
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Abstract

Background: Cycas multipinnata and C. panzhihuaensis are two attractive ornamental tree species. With the global climate change, the temperature in the natural habitats of both the species shows a marked rising trend. However, how the two species respond to extreme high temperatures are not clear. Chlorophyll fluorescence parameters, chlorophyll content, chloroplast ultrastructure and lipid metabolism in the two species were determined following plant exposure to heat stress.

Results: The results demonstrated that the photosynthetic efficiency decreased significantly in both the species following heat shock and recovery, but to a greater extent in C. panzhihuaensis. Compared to the control, chlorophyll content of C. multipinnata did not change significantly following heat stress and recovery. However, chlorophyll content of C. panzhihuaensis increased significantly after 1 d of recovery in comparison with the control. Chloroplast ultrastructures of C. panzhihuaensis were more severely affected by heat shock than C. multipinnata. C. multipinnata and C. panzhihuaensis followed a similar change trend in the amounts of most of the lipid categories after heat stress. However, only the amounts of lysophospholipids and fatty acyls differed significantly between the two species following heat treatment. Additionally, the unsaturation levels of the major lipid classes in C. multipinnata were significantly lower than or equal to those in C. panzhihuaensis.

Conclusions: C. multipinnata was less affected by extremely high temperatures than C. panzhihuaensis. The differential stability of chlorophyll and chloroplast ultrastructure and the differential adjustment of lipid metabolism might contribute to the different responses to heat shock between the two species.

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References
1.
Rawat N, Singla-Pareek S, Pareek A . Membrane dynamics during individual and combined abiotic stresses in plants and tools to study the same. Physiol Plant. 2020; 171(4):653-676. DOI: 10.1111/ppl.13217. View

2.
Hussain S, Ulhassan Z, Brestic M, Zivcak M, Zhou W, Allakhverdiev S . Photosynthesis research under climate change. Photosynth Res. 2021; 150(1-3):5-19. DOI: 10.1007/s11120-021-00861-z. View

3.
Yu L, Fan J, Yan C, Xu C . Starch Deficiency Enhances Lipid Biosynthesis and Turnover in Leaves. Plant Physiol. 2018; 178(1):118-129. PMC: 6130009. DOI: 10.1104/pp.18.00539. View

4.
Li Y, Hou X, Li X, Zhao X, Wu Z, Xiao Y . Will the climate of plant origins influence the chemical profiles of cuticular waxes on leaves of in a common garden experiment?. Ecol Evol. 2020; 10(1):543-556. PMC: 6972809. DOI: 10.1002/ece3.5930. View

5.
Malitsky S, Ziv C, Rosenwasser S, Zheng S, Schatz D, Porat Z . Viral infection of the marine alga Emiliania huxleyi triggers lipidome remodeling and induces the production of highly saturated triacylglycerol. New Phytol. 2016; 210(1):88-96. DOI: 10.1111/nph.13852. View