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Selective transport of plasma-derived reactive species through the plant aquaporin channels: a molecular dynamics study

Davronjon AbduvokhidovInstitute of Fundamental and Applied Research, National Research University TIIAME, Kori Niyoziy 39, Tashkent, 100000, Uzbekistan. [email protected]Parthiban MarimuthuPharmaceutical Science Laboratory (Pharmacy) and Structural Bioinformatics Laboratory (Biochemistry), Faculty of Science and Engineering (FNT), Åbo Akademi University, Turku, 20520, Finland. [email protected]Akbar KodirovInstitute of Material Sciences, Academy of Sciences of the Republic of Uzbekistan, Chingiz Aytmatov 2b, Tashkent, 100084, UzbekistanMukhammadali NiyozalievDepartment of Physics, National University of Singapore, Singapore, 117551, SingaporeChen ZhouSchool of Physics, Harbin Institute of Technology, Harbin, 150001, ChinaDingxin LiuState Key Laboratory of Electrical Insulation and Power Equipment, Centre for Plasma Biomedicine, Xi'an Jiaotong University, Xi'an, 710049, Shaanxi, PR ChinaJamoliddin RazzokovDepartment of Biotechnology, Tashkent State Technical University, Tashkent, 100095, Uzbekistan
2026en
ABI

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Abstract The selective permeability of reactive oxygen and nitrogen species (RONS), generated by cold atmospheric plasma (CAP), through plant aquaporins was investigated to identify plasma-derived species capable of intracellular delivery. Using atomistic molecular dynamics and enhanced sampling methods, we quantified the free energy profiles of eight RONS (HNO 3 , HO 2 , cis -HNO 2 , trans -HNO 2 , N 2 O 4 , NO, NO 2 , and O 3 ) across the PIP2;1 aquaporin channel embedded in a lipid bilayer. Hydrophobic species such as NO and O 3 exhibited minimal energy barriers (~1-2 kJ·mol −1 ) facilitating rapid permeation, while polar and bulky molecules like HNO 3 and N 2 O 4 encounter substantial energy barriers (>15 kJ·mol −1 ), particularly near the selective region (also known as the ar/R constriction), which acts like a filter to control what can pass through the aquaporin. These results reveal that RONS permeability is governed by molecular size, polarity, and hydrogen bonding capacity. This mechanistic insight enables rational selection of CAP-generated species for enhancing plant uptake efficiency, with implications for sustainable plasma-based agricultural technologies.

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