Results 231 to 240 of about 439,048 (358)
Multiomics Profiling Unveils Key Genes and Metabolites Involved in the Salt Tolerance of <i>Gossypium hirsutum</i>. [PDF]
Weng Z +5 more
europepmc +1 more source
Seasonal cold adaptation is vital for insect survival, yet the molecular mechanisms linking diapause to mitochondrial resilience remain largely unresolved. We identify ascaroside C9 (asc‐C9) as a key endocrine signal that enhances diapause survival during cold stress by activating the AKHR–PGC1α–UCP4 axis, thereby driving cold‐induced lipolysis and ...
Jiao Zhou +14 more
wiley +1 more source
Recent Insights into the Molecular Mechanisms of Salt Tolerance in Melon (<i>Cucumis melo</i> L.). [PDF]
Jing Y +8 more
europepmc +1 more source
Overexpression of 2-Cys Prx Increased Salt Tolerance of Photosystem II in Tobacco
Huihui Zhang
openalex +1 more source
Cinnamic‐hydroxamic‐acid derivatives (CHADs) are identified as novel inhibitors of the bacterial nucleoid‐associated protein HU, exhibiting potent antibacterial, anti‐biofilm (both inhibition and eradication), and DNA relaxation (anti‐supercoiling) activities. Moreover, CHADs demonstrate strong synergistic effects with multiple antibiotics.
Huan Chen +22 more
wiley +1 more source
Genomic and translational insights into eIF2B-mediated salt tolerance in sea rice HD961. [PDF]
Chen H +6 more
europepmc +1 more source
Recent advances in materials and device engineering enable continuous, real‐time monitoring of muscle activity via wearable and implantable systems. This review critically summarizes emerging technologies for tracking electrophysiological, biomechanical, and oxygenation signals, outlines fundamental principles, and highlights key challenges and ...
Zhengwei Liao +4 more
wiley +1 more source
Overexpression of SiGSTU24 enhances salt tolerance in transgenic Arabidopsis. [PDF]
Zhang H +12 more
europepmc +1 more source
Two Novel S‐methyltransferases Confer Dimethylsulfide Production in Actinomycetota
This study identifies two novel S‐adenosine‐methionine‐dependent methyltransferases, MddM1 and MddM2, in actinomycetes from the Mariana Trench. These enzymes can convert toxic hydrogen sulfide (H2S) and methanethiol (MeSH) into dimethylsulfide (DMS), serving as a cellular detoxification and oxidative stress response.
Ruihong Guo +11 more
wiley +1 more source

