Abstract Soil salinity limits wheat productivity by disrupting water uptake, Na⁺/K⁺ homeostasis, photosynthesis, reproductive development, and grain filling. Although wheat salinity tolerance is often discussed in terms of individual traits such as Na⁺ exclusion, antioxidant defense, osmolyte accumulation, or abscisic acid signaling, these responses operate as interconnected signaling networks. This review reframes wheat salinity adaptation as a crosstalk-driven process linking early root perception with whole-plant acclimation and yield-related outcomes. At the root-soil interface, salinity rapidly lowers external water potential, alters membrane potential, disturbs ion fluxes, and induces early Ca2⁺, reactive oxygen species (ROS), pH, nitric oxide, electrical, and phosphorylation signals. Ca2⁺ sensors and decoders, including CaM/CMLs, CDPKs, and CBL-CIPK modules, connect these early signals with ROS regulation, ion-transporter activity, kinase cascades, and transcriptional reprogramming. ABA integrates osmotic stress with stomatal closure, hydraulic adjustment, compatible-solute accumulation, and water-use regulation, whereas additional hormonal and metabolic signals shape root architecture, growth restraint, senescence, source-sink balance, and reproductive protection. Wheat-specific evidence strongly supports the importance of HKT1;5-mediated Na⁺ retrieval, SOS-like ion regulation, K⁺ retention, antioxidant capacity, ABA-associated water regulation, osmotic adjustment, and genotype-dependent transcriptional responses. However, several important signaling models, including precise Ca2⁺ signatures, real-time Ca2⁺-ROS feedback dynamics, guard-cell ABA-ROS-Ca2⁺ signaling, systemic Ca2⁺/ROS waves, and salinity-specific sugar-redox-hormone control of grain filling, remain incompletely validated in wheat. By distinguishing wheat-supported mechanisms from conserved model-plant frameworks, this review identifies key signaling hubs and physiological trade-offs that may guide breeding, genome editing, priming, and agronomic strategies for improving wheat performance under saline environments.
Hakim Zamir, Daud Ali Shah, F. Rauf et al.· Plant Signalling & Behavior· 1 citation
Gastrointestinal nematode (GIN) infections represent one of the most significant constraints to the health and productivity of small ruminants worldwide, leading to substantial economic losses and animal welfare concerns. Control of these parasites has historically relied on the extensive use of anthelmintic drugs; however, the rapid emergence and global spread of anthelmintic resistance (AR) have compromised their effectiveness. Resistance is now reported across all major classes of anthelmintics and is particularly prevalent in key species such as Haemonchus contortus. The development of AR is driven by complex mechanisms, including genetic mutations in drug target genes, enhanced drug efflux mediated by transport proteins, alterations in receptor function, and polygenic adaptations. Accurate detection of resistance remains challenging, with conventional methods such as fecal egg count reduction tests and in vitro assays offering limited sensitivity, while molecular diagnostics provide improved specificity but remain constrained by technical and economic factors. Sustainable control of GIN infections requires a shift toward integrated parasite management strategies. Approaches such as targeted selective treatment, maintenance of refugia, improved nutrition, genetic selection for host resistance, and alternative control methods including phytotherapy and biological control have shown promise in reducing reliance on anthelmintics. In conclusion, a multidisciplinary and sustainable approach is essential to mitigate the impact of AR and ensure long-term effectiveness of parasite control strategies in small ruminant production systems.
Zeenat Korai, Shahrukh Khan, S. K. Korai et al.· Molecular and biochemical pa...· 0 citations
Evidence from functional genomics studies demonstrates that sulfur metabolism is closely integrated with redox signaling, stress tolerance, and plant immunity, which supports a view of sulfur metabolism as a dynamic regulatory network rather than a linear nutrient‐assimilation pathway.
F. Rauf, Hakim Zamir, Hussam Ahmad et al.· Plant Direct· 0 citations
It is proposed that sulfur metabolism should be viewed as a dynamic resource allocation network rather than a linear assimilation pathway, to help identify regulatory variants that improve sulfur-use efficiency, stress resilience, immunity, and grain quality without compromising yield stability.
F. Rauf, Hakim Zamir, Hussam Ahmad et al.· Molecular Biotechnology· 0 citations