Unzipped genome assemblies of polyploid root-knot nematodes reveal unusual and clade-specific telomeric repeats. [PDF]
Mota APZ +17 more
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Root-knot nematodes exploit the catalase-like effector to manipulate plant reactive oxygen species levels by directly degrading H<sub>2</sub>O<sub>2</sub>. [PDF]
Zhu Z +13 more
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Virulence of Five Root-Knot Nematodes (<i>Meloidogyne</i> spp.) on Nine Industrial Hemp (<i>Cannabis sativa</i> L.) Varieties and Nematicidal Potential of Hemp Seed Extracts Against <i>Meloidogyne javanica</i>. [PDF]
Ntinokas D +8 more
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Utilizing bio-synthesis of nanomaterials as biological agents for controlling soil-borne diseases in pepper plants: root-knot nematodes and root rot fungus. [PDF]
Y Ghareeb R +3 more
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Activity of dehydrogenases in tomato root-knots infected with the root-knot nematode.
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This chapter covers the life cycle, behaviour, survival, cytogenetics, general morphology, post-infection development, and management and control (through cultural, physical, chemical and biological methods, and crop resistance) of root-knot nematodes (Meloidogyne arenaria, M. artiella, M. chitwoodi, M. exigua, M. fallax, M. graminicola, M.
Karssen, G., Moens, M.
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The Genomes of Root-Knot Nematodes
Annual Review of Phytopathology, 2009Plant-parasitic nematodes are the most destructive group of plant pathogens worldwide and are extremely challenging to control. The recent completion of two root-knot nematode genomes opens the way for a comparative genomics approach to elucidate the success of these parasites.
Bird, David Mck +6 more
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Plant-parasitic nematodes devastate crops worldwide, in turn impacting international trade, social and economic development. Effective control of nematodes is essential for crop protection, and requires an understanding of nematode biology, taxonomy, population dynamics and sampling methods.
Karssen, G., Wesemael, W.M.L., Moens, M.
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The interaction of SO2 and root-knot nematode on tomato
Environmental Pollution, 1993Intermittent exposure of tomato plants (cv. Pusa Ruby) to SO(2) at 286 microg m(-3) (3 h every heavy third day for 75 days) induced slight chlorosis of leaves. At 571 microg m(-3), considerable chlorosis with browning developed on the foliage. These symptoms were more pronounced and appeared earlier on SO(2)-exposed plants infected with Meloidogyne ...
M R, Khan, M W, Khan
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