Skip to main content
ARS Home » Southeast Area » Stoneville, Mississippi » Crop Production Systems Research » Research » Publications at this Location » Publication #421741

Research Project: Development of Productive, Profitable, and Sustainable Crop Production Systems for the Mid-South

Location: Crop Production Systems Research

Title: Physiological responses to light in drought-tolerant novel peanut (Arachis hypogaea L) genotypes

Author
item ADIREDDY, RAJANNA - Oak Ridge Institute For Science And Education (ORISE)
item Anapalli, Saseendran
item MANISHA, OJHA - New Mexico State University
item PUPPLA, NAVEEN - New Mexico State University
item Reddy, Krishna

Submitted to: Frontiers in Plant Science
Publication Type: Peer Reviewed Journal
Publication Acceptance Date: 7/7/2025
Publication Date: 7/11/2025
Citation: Adireddy, R.G., Anapalli, S.S., Manisha, O., Puppla, N., Reddy, K.N. 2025. Physiological responses to light in drought-tolerant novel peanut (Arachis hypogaea L) genotypes. Frontiers in Plant Science. Scientific Reports (2025) 15:25032. https://doi.org/10.1038/s41598-025-10978-z.
DOI: https://doi.org/10.1038/s41598-025-10978-z

Interpretive Summary: Droughts, characterized by extended periods without rainfall that lead to soil moisture shortages, significantly diminish both the productivity and quality of peanuts by hindering photosynthesis. To combat these challenges, developing new peanut varieties through advanced breeding techniques is crucial. Creating drought-tolerant genotypes that can maintain elevated photosynthetic rates even in dry conditions is vital for sustaining peanut production. In this study, we rigorously assessed the photosynthetic responses to light in ten innovative drought-tolerant peanut genotypes from New Mexico, tested under varying irrigation levels within a greenhouse environment. This research aims to pinpoint the most promising genotypes with superior photosynthetic performance for further evaluation and field trials, ultimately paving the way for practical recommendations that can enhance peanut resilience against drought.

Technical Abstract: In plants, the photo-inhibitory effects of incident lights on the light-harvesting complexes are balanced by photoprotective mechanisms to maintain photosynthesis. With increasing air CO2 concentrations and temperatures, the balance can tilt either way, with unpredictable consequences for biomass assimilated through photosynthesis. As such, it is critical to assess the photosynthetic responses of crop plants growing in future climates to light for developing strategies for sustaining food production. This study evaluated changes in photosynthetic and chlorophyll fluorescence responses to light intensities in peanuts (Arachis hypogaea L) acclimated to projected future climates by Global Circulation Models (GCM). The plants were grown in plant growth chambers under three climate conditions (CC): (1) ambient air [CO2] and ambient temperature [Ta] (CC1), (2) [CO2] at 570 ppm and Ta + 3° C (CC2 climate possible in 2050), and (3) [CO2] at 780 ppm and Ta + 5°C (CC3, climate possible in 2080). Plants growing under all three climates enhanced photosynthetic rates (A) with light intensities from 0 to 1500 µ mol m-2 s-1 but decreased afterward. Compared to CC1, plants growing under CC2 and CC3 reduced electron transport rates (ETR), A, and transpiration (Tr) between 48 and 190%, 52 and 65%, and 22 and 24%, respectively. Concurrently, the quantum efficiency of photosystem II ('PS2) was reduced by 88-200% and photochemical quenching (qP) by 55-170%. Non-photochemical quenching increased with increasing light levels from 200-1500 µmol m'² s'¹ and decreased afterward. Results indicated the possibility of reduced photosynthetic efficiencies under CC2 and CC3, which would significantly reduce biomass production in future climates. Gaining insight into these impacts can help understand plant's ability to adapt and assist in developing adaptive strategies for sustainable peanut farming.