210
Hernández-Leal MS, Suarez-Atilanos M, Piñero D, Gonzalez-Rodriguez A (2019) Regional patterns of genetic structure and environmental differentiation in willow populations (Salix humboldtiana Willd.) from Central Mexico. Ecol Evol 00:1–16
Herrmann TM (2006) Indigenous knowledge and management of Araucaria araucana forest in
the Chilean Andes: implications for native forest conservation. Biodivers Conserv 15:647–662
Heusser CJ, Lowell TV, Heusser LE et al (1996) Full-glacial – late-glacial paleoclimate of the
southern Andes: evidence from pollen, beetle and glacial records. J Quat Sci 11:173–184
Heusser CJ, Heusser LE, Lowell TV (1999) Paleoecology of the southern chilean lake district-Isla
Grande de Chilo‚ during middle-late Llanquihue glaciation and deglaciation. Geogr Ann 81A
:231–284
Hill RS, Enright NJ, Hill RS (1995) Conifer origin, evolution and diversification in the southern
hemisphere. In: Ecology of the southern conifers. Melbourne University Press, Melbourne,
pp 10–29
Hollin JT, Schilling DH (1981) Late Wisconsin-Weichselian mountain glaciers and small ice
caps. In: Denton GH, Hughes TJ (eds) The last great ice sheets. Willey, New York/Chichester/
Brisbane/Toronto, pp 179–206
Huang CL, Chang CT, Huang BH, Chung JD, Chen JH, Chiang YC, Hwang SY (2015) Genetic
relationships and ecological divergence in Salix species and populations in Taiwan. Tree Genet
Genomes 11:39
Ipinza R (2017) Migración Asistida. Una opción para la Conservación de la Araucaria. In: Reunión
Internacional Daño Foliar de Araucaria araucana. Villarrica, Chile
Ipinza R, Gutiérrez B, Muller-Using S et al (2019) La migración asistida de la Araucaria araucana. Plan operacional. Cienc e Investig For INFOR 25:75–88
Isebrands JG, Richardson J (2014) Poplars and willows: trees for society and the environment. Ed.
Isebrands JG, Richardson J. CABI/ FAO, 634 pp.
IUCN (2020) The IUCN red list of threatened species. Version 2020–1. https://www.iucnredlist.org
Izquierdo F (2009) Análisis de la diversidad y diferenciación genética del pehuén (Araucaria araucana). MSc thesis, Fac. de Agronomía, Universidad de Buenos Aires
Izquierdo F, Gallo LA (2006) Variación de la altura promedio en plantines de poblaciones argentinas de Araucaria araucana en relación al peso de sus semillas. In: IUFROLAT, segundo
congreso Latinoamericano IUFRO. La serena, Chile
Jombart T, Devillard S, Balloux F (2010) Discriminant analysis of principal components: a new
method for the analysis of genetically structured populations. BMC Genet 11:94
Kaur D, Bhatnagar S (1984) Fertilization and formation of neocytoplasm in Agathis robusta.
Phytomorphology 34:56–60
Kershaw P, Wagstaff B (2001) The southern conifer family Araucariaceae: history, status, and
value for Paleoenvironmental reconstruction. Annu Rev Ecol Syst 32:397–414
Kershaw AP, McGlone M, Enright NJ, Hill RS (1995) The quaternary history of the southern conifers. In: Ecology of the southern conifers. Melbourne University Press, Melbourne, pp 30–63
Kitzberger T (2013) Ecotones as complex arenas of disturbance, climate, and human impacts: the
trans-Andean forest-steppe ecotone of northern Patagonia. In: Ecotones between forest and
grassland. Springer, New York, pp 59–88
Krauss J, Bommarco R, Guardiola M et al (2010) Habitat fragmentation causes immediate and
time-delayed biodiversity loss at different trophic levels. Ecol Lett 13:597–605
Kuussaari M, Bommarco R, Heikkinen RK et al (2009) Extinction debt: a challenge for biodiversity conservation. Trends Ecol Evol 24:564–571
Lande R, Shannon S (1996) The role of genetic variation in adaptation and population persistence
in a changing environment. Evolution 50:434–437
Larroulet A, Résico C, Arbeletche G, Benmuyal L, Bejar W (2011) Usos no madereros de Salix
humboldtiana. III Congreso Internacional de Salicáceas en Argentina. Neuquén, March
14–19, 2011
Lauron-Moreau A, Pitre FE, Argus GW, Labrecque M, Brouillet L (2015) Phylogenetic relationships of American willows (Salix L., Salicaceae). PLoS One 10:e0121965
P. Marchelli et al.
Hernández-Leal MS, Suarez-Atilanos M, Piñero D, Gonzalez-Rodriguez A (2019) Regional patterns of genetic structure and environmental differentiation in willow populations (Salix humboldtiana Willd.) from Central Mexico. Ecol Evol 00:1–16
Herrmann TM (2006) Indigenous knowledge and management of Araucaria araucana forest in
the Chilean Andes: implications for native forest conservation. Biodivers Conserv 15:647–662
Heusser CJ, Lowell TV, Heusser LE et al (1996) Full-glacial – late-glacial paleoclimate of the
southern Andes: evidence from pollen, beetle and glacial records. J Quat Sci 11:173–184
Heusser CJ, Heusser LE, Lowell TV (1999) Paleoecology of the southern chilean lake district-Isla
Grande de Chilo‚ during middle-late Llanquihue glaciation and deglaciation. Geogr Ann 81A
:231–284
Hill RS, Enright NJ, Hill RS (1995) Conifer origin, evolution and diversification in the southern
hemisphere. In: Ecology of the southern conifers. Melbourne University Press, Melbourne,
pp 10–29
Hollin JT, Schilling DH (1981) Late Wisconsin-Weichselian mountain glaciers and small ice
caps. In: Denton GH, Hughes TJ (eds) The last great ice sheets. Willey, New York/Chichester/
Brisbane/Toronto, pp 179–206
Huang CL, Chang CT, Huang BH, Chung JD, Chen JH, Chiang YC, Hwang SY (2015) Genetic
relationships and ecological divergence in Salix species and populations in Taiwan. Tree Genet
Genomes 11:39
Ipinza R (2017) Migración Asistida. Una opción para la Conservación de la Araucaria. In: Reunión
Internacional Daño Foliar de Araucaria araucana. Villarrica, Chile
Ipinza R, Gutiérrez B, Muller-Using S et al (2019) La migración asistida de la Araucaria araucana. Plan operacional. Cienc e Investig For INFOR 25:75–88
Isebrands JG, Richardson J (2014) Poplars and willows: trees for society and the environment. Ed.
Isebrands JG, Richardson J. CABI/ FAO, 634 pp.
IUCN (2020) The IUCN red list of threatened species. Version 2020–1. https://www.iucnredlist.org
Izquierdo F (2009) Análisis de la diversidad y diferenciación genética del pehuén (Araucaria araucana). MSc thesis, Fac. de Agronomía, Universidad de Buenos Aires
Izquierdo F, Gallo LA (2006) Variación de la altura promedio en plantines de poblaciones argentinas de Araucaria araucana en relación al peso de sus semillas. In: IUFROLAT, segundo
congreso Latinoamericano IUFRO. La serena, Chile
Jombart T, Devillard S, Balloux F (2010) Discriminant analysis of principal components: a new
method for the analysis of genetically structured populations. BMC Genet 11:94
Kaur D, Bhatnagar S (1984) Fertilization and formation of neocytoplasm in Agathis robusta.
Phytomorphology 34:56–60
Kershaw P, Wagstaff B (2001) The southern conifer family Araucariaceae: history, status, and
value for Paleoenvironmental reconstruction. Annu Rev Ecol Syst 32:397–414
Kershaw AP, McGlone M, Enright NJ, Hill RS (1995) The quaternary history of the southern conifers. In: Ecology of the southern conifers. Melbourne University Press, Melbourne, pp 30–63
Kitzberger T (2013) Ecotones as complex arenas of disturbance, climate, and human impacts: the
trans-Andean forest-steppe ecotone of northern Patagonia. In: Ecotones between forest and
grassland. Springer, New York, pp 59–88
Krauss J, Bommarco R, Guardiola M et al (2010) Habitat fragmentation causes immediate and
time-delayed biodiversity loss at different trophic levels. Ecol Lett 13:597–605
Kuussaari M, Bommarco R, Heikkinen RK et al (2009) Extinction debt: a challenge for biodiversity conservation. Trends Ecol Evol 24:564–571
Lande R, Shannon S (1996) The role of genetic variation in adaptation and population persistence
in a changing environment. Evolution 50:434–437
Larroulet A, Résico C, Arbeletche G, Benmuyal L, Bejar W (2011) Usos no madereros de Salix
humboldtiana. III Congreso Internacional de Salicáceas en Argentina. Neuquén, March
14–19, 2011
Lauron-Moreau A, Pitre FE, Argus GW, Labrecque M, Brouillet L (2015) Phylogenetic relationships of American willows (Salix L., Salicaceae). PLoS One 10:e0121965
P. Marchelli et al.
