Sorghum is an important food, feed, and industrial crop worldwide. Parasitic weeds of the genus Striga constitute a major constraint to sorghum production, particularly in the drier parts of the world. In this study we analysed the Striga germination stimulants, strigolactones, in the root exudates of 36 sorghum genotypes and assessed Striga germination and infection. Low germination-stimulating activity and low Striga infection correlated with the exudation of low amounts of 5-deoxystrigol and high amounts of orobanchol, whereas susceptibility to Striga and high germination-stimulating activity correlated with high concentrations of 5-deoxystrigol and low concentrations of orobanchol. Marker analysis suggested that similar genetics to those previously described for the resistant sorghum variety SRN39 and the susceptible variety Shanqui Red underlie these differences. This study shows that the strigolactone profile in the root exudate of sorghum has a large impact on the level of Striga infection. High concentrations of 5-deoxystrigol result in high infection, while high concentrations of orobanchol result in low infection. This knowledge should help to optimize the use of low germination stimulant-based resistance to Striga by the selection of sorghum genotypes with strigolactone profiles that favour normal growth and development, but reduce the risk of Striga infection.
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http://dx.doi.org/10.1093/jxb/ery041 | DOI Listing |
Mol Plant Microbe Interact
December 2024
Kenyatta University, Department of Biochemistry, Microbiology and Biotechnology, P O Box 43844, Nairobi, Nairobi, Kenya, 00100;
In the plant-plant pathosystem of rice () and the parasitic plant , cell walls from either plant are important defensive and offensive structures. Here we reveal cell wall dynamics in both and rice using simultaneous RNA sequencing. We used weighted gene co-expression network analysis (WGCNA) to home in on cell wall modification processes occurring in interactions with a resistant rice cultivar (Nipponbare) compared to a susceptible one (IAC 165).
View Article and Find Full Text PDFBio Protoc
September 2024
Department of Plant Biology and Genome Center, University of California, Davis, CA, USA.
The root parasitic weed has a devastating effect on sorghum and other cereal crops in Sub-Saharan Africa. Available Striga management strategies are rarely sufficient or not widely accessible or affordable. Identification of soil- or plant-associated microorganisms that interfere in the Striga infection cycle holds potential for development of complementary biological control measures.
View Article and Find Full Text PDFJ Agric Food Chem
April 2024
State Key Laboratory of Plant Environmental Resilience & Engineering Research Center of Plant Growth Regulator, MOE, College of Agronomy and Biotechnology, China Agricultural University, 2 Yuanmingyuan West Road, Beijing 100193, China.
The pernicious parasitism exhibited by root parasitic weeds such as and poses substantial peril to agricultural productivity and global food security. This deleterious phenomenon hinges upon the targeted induction of the signaling molecule strigolactones (SLs). Consequently, the identification of prospective SL antagonists holds significant promise in the realm of mitigating the infection of these pernicious weeds.
View Article and Find Full Text PDFBMC Plant Biol
April 2024
School of Biosciences, University of Sheffield, Western Bank, Sheffield, S10 2TN, UK.
Background: Many parasitic plants of the genera Striga and Cuscuta inflict huge agricultural damage worldwide. To form and maintain a connection with a host plant, parasitic plants deploy virulence factors (VFs) that interact with host biology. They possess a secretome that represents the complement of proteins secreted from cells and like other plant parasites such as fungi, bacteria or nematodes, some secreted proteins represent VFs crucial to successful host colonisation.
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