Fitzpatrick, Megan J., et al. “Future Winters present a complex energetic landscape of decreased costs and reduced risk for a freeze‐tolerant amphibian, the wood frog (lithobates sylvaticus).” Global Change Biology, vol. 26, no. 11, 24 Sept. 2020, pp. 6350–6362, https://doi.org/10.1111/gcb.15321.
Storey KB; Storey JM (1984). "Biochemical adaption for freezing tolerance in the wood frog, Rana sylvatica". Journal of Comparative Physiology B. 155: 29–36. doi:10.1007/BF00688788. S2CID29760226.
Bansal, Saumya (2016). "MicroRNA Regulation in Heart and Skeletal Muscle over the Freeze–thaw Cycle in the Freeze Tolerant Wood Frog". Journal of Comparative Physiology B. 186 (2, Springer Berlin Heidelberg, 2015): 229–41. doi:10.1007/s00360-015-0951-3. PMID26660652. S2CID16490101.
Berman, D. I.; Meshcheryakova, E. N.; Bulakhova, N. A. (Jan 2016). "The Japanese tree frog (Hyla japonica), one of the most cold-resistant species of amphibians". Doklady Biological Sciences. 471 (1): 276–279. doi:10.1134/s0012496616060065. PMID28058600. S2CID254413388.
Hobel, Gerlinde (2013). "Wood frogs (Lithobates sylvaticus) use water surface waves in their reproductive behaviour". Behaviour. 150 (5): 471–483. doi:10.1163/1568539X-00003062.
Seale DB (1982). "Physical factors influencing oviposition by the woodfrog, Rana sylvatica, in Pennsylvania". Copeia. 1982 (3): 627–635. doi:10.2307/1444663. JSTOR1444663.
Berven KA; Grudzien TA (1990). "Dispersal in the wood frog (Rana sylvatica): implications for genetic population structure". Evolution. 44 (8): 2047–2056. doi:10.2307/2409614. JSTOR2409614. PMID28564421.
Berven KA (1988). "Factors affecting variation in reproductive traits within a population of wood frogs (Rana sylvatica)". Copeia. 1988 (3): 605–615. doi:10.2307/1445378. JSTOR1445378.
Seale DB (1982). "Physical factors influencing oviposition by the woodfrog, Rana sylvatica, in Pennsylvania". Copeia. 1982 (3): 627–635. doi:10.2307/1444663. JSTOR1444663.
Berven KA; Grudzien TA (1990). "Dispersal in the wood frog (Rana sylvatica): implications for genetic population structure". Evolution. 44 (8): 2047–2056. doi:10.2307/2409614. JSTOR2409614. PMID28564421.
Berven KA (1988). "Factors affecting variation in reproductive traits within a population of wood frogs (Rana sylvatica)". Copeia. 1988 (3): 605–615. doi:10.2307/1445378. JSTOR1445378.
Bansal, Saumya (2016). "MicroRNA Regulation in Heart and Skeletal Muscle over the Freeze–thaw Cycle in the Freeze Tolerant Wood Frog". Journal of Comparative Physiology B. 186 (2, Springer Berlin Heidelberg, 2015): 229–41. doi:10.1007/s00360-015-0951-3. PMID26660652. S2CID16490101.
Berman, D. I.; Meshcheryakova, E. N.; Bulakhova, N. A. (Jan 2016). "The Japanese tree frog (Hyla japonica), one of the most cold-resistant species of amphibians". Doklady Biological Sciences. 471 (1): 276–279. doi:10.1134/s0012496616060065. PMID28058600. S2CID254413388.
Berven KA; Grudzien TA (1990). "Dispersal in the wood frog (Rana sylvatica): implications for genetic population structure". Evolution. 44 (8): 2047–2056. doi:10.2307/2409614. JSTOR2409614. PMID28564421.
Storey KB; Storey JM (1984). "Biochemical adaption for freezing tolerance in the wood frog, Rana sylvatica". Journal of Comparative Physiology B. 155: 29–36. doi:10.1007/BF00688788. S2CID29760226.
Bansal, Saumya (2016). "MicroRNA Regulation in Heart and Skeletal Muscle over the Freeze–thaw Cycle in the Freeze Tolerant Wood Frog". Journal of Comparative Physiology B. 186 (2, Springer Berlin Heidelberg, 2015): 229–41. doi:10.1007/s00360-015-0951-3. PMID26660652. S2CID16490101.
Berman, D. I.; Meshcheryakova, E. N.; Bulakhova, N. A. (Jan 2016). "The Japanese tree frog (Hyla japonica), one of the most cold-resistant species of amphibians". Doklady Biological Sciences. 471 (1): 276–279. doi:10.1134/s0012496616060065. PMID28058600. S2CID254413388.