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M B Shine

Showing results (1-10 of 15) with videos related to

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Journal of Biosciences|August 28, 2012
Oxyradicals and PSII activity in maize leaves in the absence of UV components of solar spectrumM B Shine, K N Guruprasad
Bioelectromagnetics|January 19, 2012
Effect of stationary magnetic field strengths of 150 and 200 mT on reactive oxygen species production in soybeanM B Shine, K N Guruprasad, Anjali Anand
Bioelectromagnetics|March 8, 2011
Enhancement of germination, growth, and photosynthesis in soybean by pre-treatment of seeds with magnetic fieldM B Shine, K N Guruprasad, Anjali Anand
Plant Science : an International Journal of Experimental Plant Biology|February 3, 2019
Signaling mechanisms underlying systemic acquired resistance to microbial pathogensM B Shine, Xueqiong Xiao, Pradeep Kachroo, et al.
The New Phytologist|December 31, 2013
Soybean NDR1-like proteins bind pathogen effectors and regulate resistance signalingDevarshi Selote, M B Shine, Guillaume P Robin, et al.
Plant Signaling & Behavior|September 17, 2015
Nitric oxide and reactive oxygen species are required for systemic acquired resistance in plantsMohamed El-Shetehy, Caixia Wang, M B Shine, et al.
Nature Communications|November 24, 2019
Glycerol-3-phosphate mediates rhizobia-induced systemic signaling in soybeanM B Shine, Qing-Ming Gao, R V Chowda-Reddy, et al.
Plant Physiology|July 1, 2016
The Potyviral P3 Protein Targets Eukaryotic Elongation Factor 1A to Promote the Unfolded Protein Response and Viral PathogenesisHexiang Luan, M B Shine, Xiaoyan Cui, et al.
Cell Reports|December 4, 2014
Mono- and digalactosyldiacylglycerol lipids function nonredundantly to regulate systemic acquired resistance in plantsQing-Ming Gao, Keshun Yu, Ye Xia, et al.
Cell Reports|April 15, 2014
Free radicals mediate systemic acquired resistanceCaixia Wang, Mohamed El-Shetehy, M B Shine, et al.
Pageof 2

Showing results (1-10 of 15) with videos related to

Sort By:
Pageof 2
Journal of Biosciences|August 28, 2012
Oxyradicals and PSII activity in maize leaves in the absence of UV components of solar spectrumM B Shine, K N Guruprasad
Bioelectromagnetics|January 19, 2012
Effect of stationary magnetic field strengths of 150 and 200 mT on reactive oxygen species production in soybeanM B Shine, K N Guruprasad, Anjali Anand
Bioelectromagnetics|March 8, 2011
Enhancement of germination, growth, and photosynthesis in soybean by pre-treatment of seeds with magnetic fieldM B Shine, K N Guruprasad, Anjali Anand
Plant Science : an International Journal of Experimental Plant Biology|February 3, 2019
Signaling mechanisms underlying systemic acquired resistance to microbial pathogensM B Shine, Xueqiong Xiao, Pradeep Kachroo, et al.
The New Phytologist|December 31, 2013
Soybean NDR1-like proteins bind pathogen effectors and regulate resistance signalingDevarshi Selote, M B Shine, Guillaume P Robin, et al.
Plant Signaling & Behavior|September 17, 2015
Nitric oxide and reactive oxygen species are required for systemic acquired resistance in plantsMohamed El-Shetehy, Caixia Wang, M B Shine, et al.
Nature Communications|November 24, 2019
Glycerol-3-phosphate mediates rhizobia-induced systemic signaling in soybeanM B Shine, Qing-Ming Gao, R V Chowda-Reddy, et al.
Plant Physiology|July 1, 2016
The Potyviral P3 Protein Targets Eukaryotic Elongation Factor 1A to Promote the Unfolded Protein Response and Viral PathogenesisHexiang Luan, M B Shine, Xiaoyan Cui, et al.
Cell Reports|December 4, 2014
Mono- and digalactosyldiacylglycerol lipids function nonredundantly to regulate systemic acquired resistance in plantsQing-Ming Gao, Keshun Yu, Ye Xia, et al.
Cell Reports|April 15, 2014
Free radicals mediate systemic acquired resistanceCaixia Wang, Mohamed El-Shetehy, M B Shine, et al.
Pageof 2