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2021-03-14
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1. Gougherty, A. V., Keller, S. R., & Fitzpatrick, M. C. (2021). Maladaptation, migration and extirpation fuel climate change risk in a forest tree species. Nature Climate Change11(2), 166-171.

https://doi.org/10.1038/s41558-020-00968-6

2. Bjorkman, A. D., Myers-Smith, I. H., Elmendorf, S. C., Normand, S., Rüger, N., Beck, P. S., ... & Weiher, E. (2018). Plant functional trait change across a warming tundra biome. Nature562(7725), 57-62.

https://doi.org/10.1038/s41586-018-0563-7

3. Myers-Smith, I. H., Elmendorf, S. C., Beck, P. S., Wilmking, M., Hallinger, M., Blok, D., ... & Vellend, M. (2015). Climate sensitivity of shrub growth across the tundra biome. Nature Climate Change5(9), 887-891.

https://doi.org/10.1038/nclimate2697
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Barbour, M. M., Walcroft, A. S., & Farquhar, G. D. (2002). Seasonal variation in δ13C and δ18O of cellulose from growth rings of Pinus radiata.Plant, Cell & Environment,25(11), 1483-1499. https://doi.org/10.1046/j.0016-8025.2002.00931.x
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20210314_Narayan Bhusal
/ Narayan Bhusal
Wood anatomy and carbon-isotope discrimination support long-term hydraulic deterioration as a major cause of drought-induced dieback Global Change Biology (2016) 22, 2125–2137, doi: 10.1111/gcb.13227