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5. The microbiome at the interface between environmental stress and animal health: an example from the most threatened vertebrate group. Eterovick PC; Schmidt R; Sabino-Pinto J; Yang C; Künzel S; Ruthsatz K Proc Biol Sci; 2024 Sep; 291(2031):20240917. PubMed ID: 39291456 [TBL] [Abstract][Full Text] [Related]
6. Developmental plasticity in amphibian larvae across the world: Investigating the roles of temperature and latitude. Sinai N; Glos J; Mohan AV; Lyra ML; Riepe M; Thöle E; Zummach C; Ruthsatz K J Therm Biol; 2022 May; 106():103233. PubMed ID: 35636893 [TBL] [Abstract][Full Text] [Related]
7. Contributions of water-borne corticosterone as one non-invasive biomarker in assessing nitrate pollution stress in tadpoles of Rana temporaria. Ruthsatz K; Eterovick PC; Bartels F; Mausbach J Gen Comp Endocrinol; 2023 Jan; 331():114164. PubMed ID: 36400158 [TBL] [Abstract][Full Text] [Related]
8. Thermal tolerance and acclimation capacity in the European common frog (Rana temporaria) change throughout ontogeny. Ruthsatz K; Dausmann KH; Peck MA; Glos J J Exp Zool A Ecol Integr Physiol; 2022 Jun; 337(5):477-490. PubMed ID: 35226414 [TBL] [Abstract][Full Text] [Related]
9. Heat hardening of a larval amphibian is dependent on acclimation period and temperature. Dallas J; Warne RW J Exp Zool A Ecol Integr Physiol; 2023 May; 339(4):339-345. PubMed ID: 36811331 [TBL] [Abstract][Full Text] [Related]
11. Ontogenetic reduction in thermal tolerance is not alleviated by earlier developmental acclimation in Rana temporaria. Enriquez-Urzelai U; Sacco M; Palacio AS; Pintanel P; Tejedo M; Nicieza AG Oecologia; 2019 Feb; 189(2):385-394. PubMed ID: 30694384 [TBL] [Abstract][Full Text] [Related]
12. Better together: Cross-tolerance induced by warm acclimation and nitrate exposure improved the aerobic capacity and stress tolerance of common carp Cyprinus carpio. Opinion AGR; Çakir R; De Boeck G Ecotoxicol Environ Saf; 2021 Dec; 225():112777. PubMed ID: 34534834 [TBL] [Abstract][Full Text] [Related]
13. Double whammy: Nitrate pollution heightens susceptibility to both hypoxia and heat in a freshwater salmonid. Rodgers EM; Opinion AGR; Gomez Isaza DF; Rašković B; Poleksić V; De Boeck G Sci Total Environ; 2021 Apr; 765():142777. PubMed ID: 33077222 [TBL] [Abstract][Full Text] [Related]
14. Thyroid hormone levels and temperature during development alter thermal tolerance and energetics of Ruthsatz K; Dausmann KH; Peck MA; Drees C; Sabatino NM; Becker LI; Reese J; Hartmann L; Glos J Conserv Physiol; 2018; 6(1):coy059. PubMed ID: 30464840 [TBL] [Abstract][Full Text] [Related]
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17. Thermal compensation reduces DNA damage from UV radiation. Hird C; Cramp RL; Franklin CE J Therm Biol; 2023 Oct; 117():103711. PubMed ID: 37717403 [TBL] [Abstract][Full Text] [Related]
19. Synergism between elevated temperature and nitrate: Impact on aerobic capacity of European grayling, Thymallus thymallus in warm, eutrophic waters. Opinion AGR; De Boeck G; Rodgers EM Aquat Toxicol; 2020 Sep; 226():105563. PubMed ID: 32673887 [TBL] [Abstract][Full Text] [Related]
20. Acclimation capacity to global warming of amphibians and freshwater fishes: Drivers, patterns, and data limitations. Ruthsatz K; Dahlke F; Alter K; Wohlrab S; Eterovick PC; Lyra ML; Gippner S; Cooke SJ; Peck MA Glob Chang Biol; 2024 May; 30(5):e17318. PubMed ID: 38771091 [TBL] [Abstract][Full Text] [Related] [Next] [New Search]