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Achi, P.

Publications and source records attributed to Achi, P..

3 recordsLinked to original sources

Epistasis between Na+/K+-ATPase Substitutions May Influence Salinity Tolerance in Steinernema Entomopathogenic Nematodes

Soil salinity varies widely across geographies both due to natural factors and human activities, including agriculture, road salt application, sea level rise, and desertification. Increases in soil salinity may affect organisms widely and particularly impact soil foodwebs. As parasites, entomopathogenic nematodes (EPNs) occupy crucial links in soil foodwebs and are important for agriculture as biological control agents of insect pests. Previous research found that the EPN Steinernema carpocapsae may exhibit higher salt tolerance than several of its congeners. We recently identified that S. carpocapsae uniquely evolved two amino acid substitutions in the first extracellular loop of the sodium pump (Na{square}/K{square}-ATPase). Here, we tested if these substitutions explain S. carpocapsaes reported lower sensitivity to salt. Our results confirm that S. carpocapsae exhibits higher salt tolerance and show it can more effectively locate and infect insect hosts than its congeners S. feltiae and S. hermaphroditum in highly saline environments. We then retraced the evolution of the two amino acid substitutions in S. carpocapsae by introducing them alone and in combination in Caenorhabditis elegans using CRISPR genome engineering. We found that C. elegans mutants with single substitutions showed improved salt tolerance. However, this improvement disappeared in the double mutant, whose sodium pump mimicked that of S. carpocapsae. This pattern of negative epistasis between the amino acid substitutions suggests they are not responsible for variation in salt tolerance between Steinernema species. Sodium pump evolution in S. carpocapsae might instead be driven by encounters with cardiac glycosides, which are released into soil by several clades of plants including milkweeds, sequestered by some of this EPNs herbivorous insect hosts, and known to target the first extracellular loop of the sodium pump. Our findings provide valuable insights into EPN adaptation to changes in environmental sodium levels and may have implications for their use in biological control.

ecology↗

Cardenolides May Affect Herbivory on Milkweeds (Asclepias spp.) by the Root-Knot Nematode Meloidogyne incognita

Root-knot nematodes (RKNs) of the genus Meloidogyne are important pests in agriculture. RKNs are generalist herbivores with a wide host range including crop and wild plants. The latter are an important source of defensive metabolites that may be helpful for RKN management. Milkweeds (Asclepias spp.) produce toxic cardenolides that protect them from herbivory. However, it is unclear if cardenolides may defend milkweeds against RKNs. Here, we tested this directly through herbivory assays with the RKN M. incognita on milkweed species that produce negligible and high levels of cardenolides, A. tuberosa and A. curassavica, respectively. We found that M. incognita induces fewer galls on A. curassavica than A. tuberosa and fails to reproduce after reaching maturity on the former but not the latter species. This suggests that the predominantly polar cardenolides in A. curassavica may engender long-term reproductive toxicity. Further toxicity assays with the polar cardenolide ouabain showed that cardenolides can also have more immediate toxic effects on M. incognita at higher concentrations. Ouabain caused a coiled, paralytic phenotype in juvenile RKNs, a sign of neurotoxicity, leading to lethality in a subset of RKNs. Some nematodes recovered upon ouabain removal, confirming that neurotoxic cardenolides have a nematostatic effect that results in death when exposure persists. Taken together, our results provide further evidence that cardenolides may function as anti-herbivore defenses against RKNs. The dead end host plant A. curassaviva appears to possess useful properties that may be leveraged for control of RKNs in agriculture.

plant biology↗

Amino Acid Substitutions in the Na+/K+-ATPase May Contribute to Salinity Tolerance in Insects

O_LIEnvironmental salinity levels vary naturally across terrestrial ecosystems but can be heightened locally by coastal proximity and desertification as well as human activities such as road salt application and agriculture. Since salt is essential for many physiological processes in insects, rising environmental sodium concentrations may drive behavioral changes, where insects select environments and food sources with suitable sodium levels, or evolutionary changes in constitutive or plastic physiological mechanisms to process salt, potentially altering ecological dynamics and species interactions. C_LIO_LINumerous hematophagous (blood feeding) insects such as the yellow-fever mosquito Aedes aeqypti are known to be able to breed in relatively saline environments. Among phytophagous (plant feeding) insects, grasshoppers can be important herbivores in arid and coastal salt-affected regions, whereas the monarch butterfly (Danaus plexippus) appears to perform relatively well on milkweed host plants growing in roadsides influenced by salt runoff. Several of these insects share a common trait: amino acid substitutions in the first extracellular loop of the Na+/K+-ATPase (NKA), a sodium pump crucial for maintaining ion balance. For the monarch these substitutions confer resistance to toxic cardenolides from milkweeds, but it is unclear whether NKA substitutions may influence salt tolerance. C_LIO_LIHere, we investigate whether the NKA substitutions found in these insects may contribute to salt tolerance using gene-edited Drosophila melanogaster mutant strains as models. We show that flies with substitution Q111L (found in Aedes mosquitoes) or a combination of Q111L and A119S (found in grasshoppers) exhibited greater salt tolerance, whereas flies carrying the combination of substitutions found in the monarch (Q111V, A119S, and N122H) did not. C_LIO_LIOur results suggest that the monarch may rely on alternate mechanisms for salt tolerance and that its NKA substitutions are important primarily for cardenolide resistance. However, substitution Q111L and the combination of Q111L and A119S may be relevant for salt tolerance in a variety of insects. Uncovering mechanisms of salt tolerance enhances our understanding of species distributions, ecological interactions, and evolutionary physiology in response to changing environmental salinity levels. C_LI

genetics↗