Abstract Anthropogenic stresses in dryland regions can alter hydrology, salinization, and biogeochemical processes. How these pressures influence methane (CH 4 ) cycling and emissions from aquatic ecosystems remains poorly understood. Over the course of 1 year, we measured diffusive and ebullitive CH 4 emissions from resacas—shallow, hydrologically managed distributary channels prevalent throughout the Lower Rio Grande Valley along the US–Mexico border. Despite warm, nutrient‐rich waters, CH 4 emissions from resacas were low, and more comparable to rates observed in estuarine systems. CH 4 fluxes were positively related to temperature but negatively related to salinity and rainfall. Elevated salinity, driven by evaporation and source water from the salinized Rio Grande, may suppress methanogenesis. These findings highlight the complex interplay of salinity, hydrology, and management in shaping aquatic CH 4 emissions from dryland regions. As dryland water bodies face growing salinization and warming temperatures, resacas offer valuable insight into CH 4 dynamics in increasingly altered freshwater ecosystems.
Stassi et al. (2026) studied this question.