Senthil Subramanian
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Explore the profile of Senthil Subramanian including associated specialties, affiliations and a list of published articles.
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40
Citations
1196
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Recent Articles
11.
Abagandura G, Sekaran U, Singh S, Singh J, Ibrahim M, Subramanian S, et al.
Sci Rep
. 2020 May;
10(1):7334.
PMID: 32355232
Prairie cordgrass (PCG) (Spartina pectinata Link) has a high tolerance to soil salinity and waterlogging, therefore, it can thrive on marginal lands. Optimizing the nitrogen (N) input is crucial to...
12.
Ma Q, Bucking H, Gonzalez Hernandez J, Subramanian S
Front Microbiol
. 2019 Nov;
10:2452.
PMID: 31736899
Plants in soil are not solitary, hence continually interact with and obtain benefits from a community of microbes ("microbiome"). The meta-functional output from the microbiome results from complex interactions among...
13.
Schreier S, Petla B, Lin T, Chakravarty S, Subramanian S
Plant Mol Biol
. 2019 Oct;
101(4-5):499-506.
PMID: 31621004
A simple, accessible, and inexpensive assay to quantify the strength of DNA-protein interactions was developed. The assay relies on capturing DNA-protein complexes using an affinity resin that binds tagged, recombinant...
14.
Damodaran S, Dubois A, Xie J, Ma Q, Hindie V, Subramanian S
Int J Mol Sci
. 2019 Feb;
20(4).
PMID: 30769886
Fabaceans produce two major classes of symbiotic nodules: the indeterminate type characterized by a persistent meristem, and the determinate type that lacks a persistent meristem. The class III homeodomain leucine...
15.
Kontz B, Adhikari S, Subramanian S, Mathew F
Plant Dis
. 2019 Jan;
100(8):1669-1676.
PMID: 30686243
Diaporthe caulivora and D. longicolla are the causal agents of stem canker of soybean (Glycine max L.). Accurate identification of stem canker pathogens upon isolation from infected soybean plants is...
16.
17.
Fisher J, Gaillard P, Fellbaum C, Subramanian S, Smith S
Plant Cell Environ
. 2018 Feb;
41(9):2080-2092.
PMID: 29469230
Legume-Rhizobium symbiosis results in root nodules where rhizobia fix atmospheric nitrogen into plant usable forms in exchange for plant-derived carbohydrates. The development of these specialized root organs involves a set...
18.
Damodaran S, Westfall C, Kisely B, Jez J, Subramanian S
Int J Mol Sci
. 2017 Nov;
18(12).
PMID: 29182530
Legume root nodules develop as a result of a symbiotic relationship between the plant and nitrogen-fixing rhizobia bacteria in soil. Auxin activity is detected in different cell types at different...
19.
White L, Ge X, Brozel V, Subramanian S
Environ Microbiol
. 2016 Nov;
19(4):1391-1406.
PMID: 27871141
Rhizodeposits play a key role in shaping rhizosphere microbial communities. In soybean, isoflavonoids are a key rhizodeposit component that aid in plant defense and enable symbiotic associations with rhizobia. However,...
20.
Tripathi P, Rabara R, Reese R, Miller M, Rohila J, Subramanian S, et al.
BMC Genomics
. 2016 Feb;
17:102.
PMID: 26861168
Background: The purpose of this project was to identify metabolites, proteins, genes, and promoters associated with water stress responses in soybean. A number of these may serve as new targets...