1. Davis AP, Chadburn H, Moat J, O'Sullivan R, Hargreaves S, Nic Lughadha E. High extinction risk for wild coffee species and implications for coffee sector sustainability. Sci Adv. 2019;5(1).
2. Reilly JM. Overview: Climate change adaptation in the agricultural sector. In: Advances in Global Change Research. Dordrecht: Springer Netherlands; 2011. p. 347–57.
3. Haggar J, Schepp K. Coffee and Climate Change: Impacts and Options for Adaptation in Brazil, Guatemala, Tanzania and Vietnam. 2012.
4. Labouisse JP, Bellachew B, Kotecha S, Bertrand B. Current status of coffee (Coffea arabica L.) genetic resources in Ethiopia: implications for conservation. Genet Resour Crop Evol. 2008;55(7):1079–93.
5. Avelino J, Cristancho M, Georgiou S, Imbach P, Aguilar L, Bornemann G, et al. The coffee rust crises in Colombia and Central America (2008–2013): impacts, plausible causes and proposed solutions. Food Secur. 2015;7(2):303–21.
6. Intergovernmental Panel on Climate Change. Climate Change 2021 – the physical science basis: Working Group I contribution to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change. Cambridge University Press; 2023.
7. Armendariz Sandoval SP. Influencia del diésel en el sector agrícola del Cantón Quinindé: Perspectivas económica. Journal of Economic and Social Science Research. 2021;1(3).
8. Bita CE, Gerats T. Plant tolerance to high temperature in a changing environment: scientific fundamentals and production of heat stress-tolerant crops. Front Plant Sci. 2013;4.
9. Bertrand B, Boulanger R, Dussert S, Ribeyre F, Berthiot L, Descroix F, et al. Climatic factors directly impact the volatile organic compound fingerprint in green Arabica coffee bean as well as coffee beverage quality. Food Chem. 2012;135(4):2575–83.
10. Silvarolla MB, Mazzafera P, Fazuoli LC. A naturally decaffeinated arabica coffee. Nature. 2004;429(6994):826.
11. Ruiz Sánchez CI, Herrera Feijoo RJ, Correa Salgado M de L, Peñafiel Arcos PA. Fundamentos Teóricos de Química Inorgánica. 2023.
12. Chicaiza-Ortiz CD, Rivadeneira-Arias V del C, Herrera-Feijoo RJ, Andrade JC. Guía de Biotecnología Ambiental. In: Biotecnología Ambiental, Aplicaciones y Tendencias. 2023.
13. Jassogne L, Läderach P, Asten P V. THE IMPACT OF CLIMATE CHANGE ON COFFEE IN UGANDA lessons from a case study in the Rwenzori Mountains. 2013.
14. González-Marcillo RL, Guamán-Rivera SA, Guerrero-Pincay AE, Ortiz-Naveda NR. Pastos Tropicales de la Amazonia Ecuatoriana Tomo I: Avances científicos sobre sistemas silvopastoriles como estrategia de reconversión de la ganadería. Editorial Grupo AEA; 2023. Available from: https://www.editorialgrupo-aea.com/index.php/EditorialGrupoAEA/catalog/book/46
15. Anthony F, Combes M, Astorga C, Bertrand B, Graziosi G, Lashermes P. The origin of cultivated Coffea arabica L. varieties revealed by AFLP and SSR markers. Züchter Genet Breed Res. 2002;104(5):894–900.
16. Leroy T, Henry AM, Royer M, Altosaar I, Frutos R, Duris D, Philippe R. Genetically modified coffee plants expressing the Bacillus thuringiensis cry 1Ac gene for resistance to leaf miner. Plant Cell Rep. 2000;19(4):382–5.
17. Breitler JC, Dechamp E, Campa C, Zebral Rodrigues LA, Guyot R, Marraccini P, Etienne H. CRISPR/Cas9-mediated efficient targeted mutagenesis has the potential to accelerate the domestication of Coffea canephora. Plant Cell Tissue Organ Cult. 2018;134(3):383–94.
18. Benti T, Gebre E, Tesfaye K, Berecha G, Lashermes P, Kyallo M, et al. Genetic diversity among commercial arabica coffee (Coffea arabica L.) varieties in Ethiopia using simple sequence repeat markers. J Crop Improv. 2021;35(2):147–68.
19. Marraccini P, Gomes VN, Duarte KE, Aquino SO, Carneiro FA, Costa TS, et al. Molecular responses of coffee plants to drought stress. 2013.
20. Chicaiza-Ortiz CD, Rivadeneira-Arias V del C, Herrera-Feijoo RJ, Andrade JC. Prácticas de laboratorio y cuestionario sobre biotecnología ambiental. In: Biotecnología Ambiental, Aplicaciones y Tendencias. 2023.
21. Herrera-Feijoo RJ, Chicaiza-Ortiz CD, Rivadeneira-Arias V del C, Andrade JC. Análisis bibliométrico como una herramienta en la biotecnología ambiental. In: Biotecnología Ambiental, Aplicaciones y Tendencias. 2023.
22. Chicaiza-Ortiz CD, Rivadeneira-Arias V del C, Herrera-Feijoo RJ, Andrade JC. Biotecnología Ambiental, Aplicaciones y Tendencias. 2023.
23. Giardi MT, Cona A, Geiken B, Kučera T, Masojídek J, Mattoo AK. Long-term drought stress induces structural and functional reorganization of photosystem II. Planta. 1996;199(1):118–25.
24. Yamane K, Nishikawa M, Hirooka Y, Narita Y, Kobayashi T, Kakiuchi M, et al. Temperature tolerance threshold and mechanism of oxidative damage in the leaf of Coffea arabica 'Typica' under heat stress. Plant Prod Sci. 2022;25(3):337–49.
25. Silva AG, Ariyoshi C, Shigueoka LH, Pereira LFP, Sera GH. Assisted selection using molecular markers linked to rust resistance SH3 gene in Coffea arabica. Crop Breed Appl Biotechnol. 2023;23(4).
26. Casarin T, Freitas NC, Pinto RT, Breitler J, Rodrigues LAZ, Marraccini P, et al. Multiplex CRISPR/Cas9-mediated knockout of the phytoene desaturase gene in Coffea canephora. Sci Rep. 2022;12(1).
27. Ho TQ, Hoang VN, Wilson C. Sustainability certification and water efficiency in coffee farming: The role of irrigation technologies. Resour Conserv Recycl. 2022;180(106175):106175.
28. Perfecto I, Vandermeer J, Wright A. Nature's matrix: Linking agriculture, biodiversity conservation and food sovereignty. 2nd ed. Londres, Inglaterra: Routledge; 2019.
29. Oliveira JR De, Santana W do R, Altoé JA, Carrion PAN, Baldan WG, Lima AS, Rosa LVCAF, et al. Integrated Pest Management In Coffee. Int J Plant Soil Sci. 2021;9–16.
30. Cerda R, Avelino J, Harvey CA, Gary C, Tixier P, Allinne C. Coffee agroforestry systems capable of reducing disease-induced yield and economic losses while providing multiple ecosystem services. Crop Prot. 2020;134(105149):105149.
31. Vega. The use of fungal entomopathogens as endophytes in biological control: a review. Mycologia. 2018;110(1):4–30.
32. DaMatta FM, Avila RT, Cardoso AA, Martins SCV, Ramalho JC. Physiological and agronomic performance of the coffee crop in the context of climate change and global warming: A review. J Agric Food Chem. 2018;66(21):5264–74.
33. Jaramillo J, Muchugu E, Vega FE, Davis A, Borgemeister C, Chabi-Olaye A. Some like it hot: The influence and implications of climate change on coffee berry borer (Hypothenemus hampei) and coffee production in east Africa. PLoS One. 2011;6(9):e24528.
34. Bilen C, El Chami D, Mereu V, Trabucco A, Marras S, Spano D. A systematic review on the impacts of Climate Change on coffee agrosystems. Plants. 2022;12(1):102.
35. Bunn C, Läderach P, Ovalle Rivera O, Kirschke D. A bitter cup: climate change profile of global production of Arabica and Robusta coffee. Clim Change. 2015;129(1–2):89–101.
36. Camargo MBP de. The impact of climatic variability and climate change on arabic coffee crop in Brazil. Bragantia. 2010;69(1):239–47.
37. Voss-Fels KP, Stahl A, Hickey LT. Q&A: modern crop breeding for future food security. BMC Biol. 2019;17(1):18.