Articles citing this paper
cfArticle2ecfc1291681887$funcTITLE@28a91049
Phat M. Dang A D , Charles Y. Chen B and C. Corley Holbrook C
+ Author Affiliations
- Author Affiliations
A USDA-ARS, National Peanut Research Laboratory, PO Box 509, 1011 Forrester Dr SE, Dawson, GA 39842, USA.
B Department of Agronomy and Soil Sciences, Auburn University, 201 Funchess Hall, Auburn, AL 36849, USA.
C USDA-ARS, Crop Genetics and Breeding Research Unit, 115 Coastal Way, Tifton, GA 31793, USA.
D Corresponding author. Email: phat.dang@ars.usda.gov
This paper originates from a presentation at the ‘VI International Conference on Legume Genetics and Genomics (ICLGG)’ Hyderabad, India, 2–7 October 2012.
Functional Plant Biology 40(12) 1323-1333 https://doi.org/10.1071/FP13116
Submitted: 24 April 2013 Accepted: 5 August 2013 Published: 13 September 2013
21 articles found in Crossref database.
Sample Preparation Techniques for Soil, Plant, and Animal Samples (2016)
Pod yield performance and stability of peanut genotypes under differing soil water and regional conditions
Zurweller B.A.,
Xavier A.,
Tillman B.L.,
Mahan J.R.,
Payton P.R.,
Puppala N., Rowland D.L.
Journal of Crop Improvement. 2018 32(4). p.532
Paired-row planting and furrow irrigation increased light interception, pod yield and water use efficiency of groundnut in a hot sub-humid climate
Mandal K.G.,
Thakur A.K., Mohanty S.
Agricultural Water Management. 2019 213 p.968
Transgenerational stress memory of water deficit in peanut production
Racette Kelly,
Zurweller Brendan,
Tillman Barry, Rowland Diane
Field Crops Research. 2020 248 p.107712
Rainout Shelter-Induced Water Deficit Negatively Impacts Peanut Yield and Quality in a Sub-Humid Environment
Balota M.
Peanut Science. 2020 47(2). p.54
Association of differentially expressed R-gene candidates with leaf spot resistance in peanut (Arachis hypogaea L.)
Dang Phat M.,
Lamb Marshall C., Chen Charles Y.
Molecular Biology Reports. 2021 48(1). p.323
Edible Oilseeds Research - Updates and Prospects (2024)
Response of certain peanut (Arachis hypogea L.) varieties to water regime using different irrigation systems in new reclaimed areas
Emara Eman. I.R.,
Moursy M.A.M., Hamed L.M.M.
Journal of the Saudi Society of Agricultural Sciences. 2023 22(4). p.245
Tolerance to mid‐season drought in peanut can be achieved by high water use efficiency or high efficient use of water
Zhang Qiong,
Dang Phat,
Chen Charles,
Feng Yucheng,
Batchelor William,
Lamb Marshall, Sanz‐Saez Alvaro
Crop Science. 2022 62(5). p.1948
Relics of interspecific hybridization retained in the genome of a drought-adapted peanut cultivar
Grabowski Paul P,
Dang Phat,
Jenkins Jerry J,
Sreedasyam Avinash,
Webber Jenell,
Lamb Marshall,
Zhang Qiong,
Sanz-Saez Alvaro,
Feng Yucheng,
Bunting Victoria,
Talag Jayson,
Clevenger Josh,
Ozias-Akins Peggy,
Holbrook C Corley,
Chu Ye,
Grimwood Jane,
Schmutz Jeremy,
Chen Charles,
Lovell John T, McIntyre L
G3: Genes, Genomes, Genetics. 2024 14(11).
Transcriptome and Co-expression Network Analyses Reveal Differential Gene Expression and Pathways in Response to Severe Drought Stress in Peanut (Arachis hypogaea L.)
Zhao Nannan,
Cui Shunli,
Li Xiukun,
Liu Bokuan,
Deng Hongtao,
Liu Yingru,
Hou Mingyu,
Yang Xinlei,
Mu Guojun, Liu Lifeng
Frontiers in Genetics. 2021 12
Understanding the impacts of drought on peanuts (Arachis hypogaea L.): exploring physio-genetic mechanisms to develop drought-resilient peanut cultivars
Pokhrel Sameer,
Kharel Prasanna,
Pandey Swikriti,
Botton Stephanie,
Nugraha Gema Takbir,
Holbrook Corley, Ozias-Akins Peggy
Frontiers in Genetics. 2025 15
Genetically Modified Crops (2021)
Peanut photosynthesis response to drought can include diffusive and biochemical limitations depending on cultivar
Soba David,
Parker Summer,
Chen Charles,
Shekoofa Avat, Sanz‐Saez Alvaro
Physiologia Plantarum. 2024 176(4).
CO<sub>2 </sub>and Chamber Effects on Epidermal Development in Field-Grown Peanut (<i>Arachis hypogaea</i> L.)
Gitz III D. C.,
Baker J. T.,
Echevarria-Laza H.,
Payton P.,
Mahan J. R., Lascano R. J.
American Journal of Plant Sciences. 2017 08(03). p.349
Identification of expressed R-genes associated with leaf spot diseases in cultivated peanut
Dang Phat M.,
Lamb Marshall C.,
Bowen Kira L., Chen Charles Y.
Molecular Biology Reports. 2019 46(1). p.225
‘Walton’, a new virginia‐type peanut suitable for Virginia and northern U.S. growing regions
Balota Maria,
Tillman Barry L.,
Paula‐Moraes Silvana V., Anco Dan
Journal of Plant Registrations. 2021 15(3). p.422
Genome-Wide Association Analysis Identified Quantitative Trait Loci (QTLs) Underlying Drought-Related Traits in Cultivated Peanut (Arachis hypogaea L.)
Dang Phat,
Patel Jinesh,
Sorensen Ron,
Lamb Marshall, Chen Charles Y.
Genes. 2024 15(7). p.868
Drought-tolerant peanut (Arachis hypogaea L.) varieties can mitigate negative impacts of climate change on yield in the Southeastern U.S.
Zhen Xiaoxing,
Huo Weige,
Sanz-Saez Alvaro,
Miao Yuxin,
Chen Charles Y., Batchelor William D.
Computers and Electronics in Agriculture. 2024 224 p.109105
Characterization of small RNA populations in non-transgenic and aflatoxin-reducing-transformed peanut
Power Imana L.,
Dang Phat M.,
Sobolev Victor S.,
Orner Valerie A.,
Powell Joseph L.,
Lamb Marshall C., Arias Renee S.
Plant Science. 2017 257 p.106
Simulating drought tolerance of peanut varieties by maintaining photosynthesis under water deficit
Zhen Xiaoxing,
Zhang Qiong,
Sanz-Saez Alvaro,
Chen Charles Y.,
Dang Phat M., Batchelor William D.
Field Crops Research. 2022 287 p.108650