
{"id":62,"date":"2014-10-17T22:19:32","date_gmt":"2014-10-17T22:19:32","guid":{"rendered":"http:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/?page_id=62"},"modified":"2019-12-18T11:24:52","modified_gmt":"2019-12-18T19:24:52","slug":"publications","status":"publish","type":"page","link":"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/publications\/","title":{"rendered":"Publications"},"content":{"rendered":"<p>&nbsp;<\/p>\n<ul>\n<li><em><span style=\"color: #0000ff\"><a style=\"color: #0000ff\" href=\"http:\/\/scholar.google.com\/scholar?hl=en&amp;q=%22VL+Sork%22\">Google Scholar &#8220;V.L. Sork&#8221;<\/a><\/span><\/em><\/li>\n<\/ul>\n<p><span style=\"color: #339966\"><em><span style=\"color: #0000ff\">\u00a0<\/span><\/em><\/span>(Listed in reverse chronological order)<\/p>\n<p>Colgan D. 2019. One of California&#8217;s iconic tree species offers lessons for conservation. Environment and Climate, Top UCLA News. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2019\/12\/2019-One-of-California\u2019s-iconic-tree-species-offers-lessons-for-conservation-_-UCLA.pdf\">pdf<\/a><\/p>\n<p>Mead A, JM Pen\u0303aloza-Rami\u0301rez, MK Bartlett, JW Wright, L Sack, VL Sork. 2019. Seedling response to water stress in valley oak (<em>Quercus lobata<\/em>) is shaped by different gene networks across populations. Molecular Ecology, 00:1-17. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2019\/12\/2019-Mead_et_al-Molecular_Ecology.pdf\">pdf<\/a><\/p>\n<div class=\"page\" title=\"Page 1\">\n<div class=\"layoutArea\">\n<div class=\"column\">\n<div style=\"width: 90%;padding: 0 0 0 0;float: left\">\n<p>Burge DO, VT Parker, M Mulligan, VL Sork. 2019. Influence of a climatic gradient on genetic exchange between two oak species. American Journal of Botany, 106(6):864-878. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2019\/12\/2019-Burge-et-al.pdf\">pdf<\/a><\/p>\n<p>Browne L, JW Wright, S Fitz-Gibbon, PF Gugger, VL Sork. 2019. Adaptational lag to temperature in valley oak (<em>Quercus lobata<\/em>) can be mitigated by genome-informed assisted gene flow. Proceedings of the National Academy of Sciences of the United States of America, https:\/\/doi.org\/10.1073\/pnas.1908771116. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2019\/12\/2019-Browne-et-al-PNAS.pdf\">pdf<\/a><\/p>\n<p>Gugger PF, CT Liang, VL Sork, P Hodgskiss, JW Wright. 2018. Applying landscape genomic tools to forest management and restoration of Hawaiian koa (<em>Acacia<\/em> <em>koa<\/em>) in a changing environment. Evolutionary Applications, 11: 231\u2013242. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2019\/03\/2018-Gugger_et_al-Evolutionary_Applications.pdf\">pdf<\/a><\/p>\n<p>Zhao J, S Werth, M Ikegami, PF Gugger, VL Sork. 2018. Historical interactions are predicted to be disrupted under future climate change: The case of lace lichen and valley oak. Journal of Biogeography, 1\u201311. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2019\/03\/2018-Zhao_et_al-Journal_of_Biogeography.pdf\">pdf<\/a><\/p>\n<p>Wanderley AM, IC Sobreira Machado, E Mendonca de Almeida, L Pessoa Felix, Leonardo Galetto, AM Benko-Iseppon, VL Sork. 2018. The roles of geography and environment in divergence within and between two closely related plant species inhabiting an island-like habitat. Journal of Biogeography, 45: 381\u2013393. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2019\/03\/2018-Wanderley_et_al-Journal_of_Biogeography.pdf\">pdf<\/a><\/p>\n<p>Oney-Birol S, S Fitz-Gibbon, J Chen, PF Gugger, VL Sork. 2018. Assessment of shared alleles in drought-associated candidate genes among southern California white oak species (<em>Quercus<\/em> sect. <em>Quercus<\/em>). BMC Genetics, 19: 88-100. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2019\/03\/2018-Oney-Birol.pdf\">pdf<\/a><\/p>\n<p>Cannon CH, O Brendel, M Deng, AL Hipp, A Kremer, C Kua, C Plomion, J Romero-Severson, VL Sork. 2018. Gaining a global perspective on Fagaceae genomic diversification and adaptation. New Phytologist, 218: 894\u2013897. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2019\/03\/2018-Cannon_et_al-2018-New_Phytologist.pdf\">pdf<\/a><\/p>\n<p>Kim BY, X Wei, S Fitz-Gibbon, KE Lohmueller, J Ortego, PF Gugger, VL Sork. 2018. RADseq data reveal ancient, but not pervasive, introgression between Californian tree and scrub oak species (<em>Quercus<\/em> sect. <em>Quercus<\/em>: Fagaceae). Molecular Ecology, 27: 4556\u20134571. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2019\/03\/2018-Kim_et_al-Molecular_Ecology.pdf\">pdf<\/a><\/p>\n<p>Martins K, PF Gugger, J Llanderal-Mendoza, A Gonz\u00e1lez-Rodr\u00edguez, ST Fitz-Gibbon, J Zhao, H Rodr\u00edguez-Correa, K Oyama, VL Sork. 2018. Landscape genomics provides evidence of climate-associated genetic variation in Mexican populations of <em>Quercus<\/em> <em>rugosa<\/em>. Evolutionary Applications, 11: 1842\u20131858. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2019\/03\/2018-Martins_et_al-Evolutionary_Applications.pdf\">pdf<\/a><\/p>\n<p>Browne L, K Ottewell, VL Sork, J Karubian. 2018. The relative contributions of seed and pollen dispersal to gene flow and genetic diversity in seedlings of a tropical palm. Molecular Ecology, 27: 3159\u20133173. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2019\/03\/2018-Browne_et_al-Molecular_Ecology.pdf\">pdf<\/a><\/p>\n<p>Sork VL. 2018. Genomic Studies of Local Adaptation in Natural Plant Populations. Journal of Heredity, 109(1): 3-15. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2017-Sork-JHered-small.pdf\">pdf<\/a><\/p>\n<p>Ortego J, PF Gugger, VL Sork. 2017. Impacts of human-induced environmental disturbances on hybridization between two ecologically differentiated Californian oak species. New Phytologist, 213: 942\u2013955. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2017Ortego-et-al-NewPhyt.pdf\">pdf<\/a><\/p>\n<p>Ortego J, PF Gugger, VL Sork. 2017. Genomic data reveal cryptic lineage diversification and introgression in Californian golden cup oaks (section Protobalanus) New Phytologist, <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2017-Ortego-etal-New-Phytologist-Ortego-et-al.pdf\">pdf<\/a><\/p>\n<p>Fitz-Gibbon S, A Hipp A, K Pham, P Manos, VL Sork. 2017. Phylogenomic inferences from reference-mapped and de novo assembled short-read sequence data using RADseq sequencing of California white oaks (<em>Quercus<\/em> subgenus <em>Quercus<\/em>). Genome, 60: 743-755. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2017-FitzGibbon-gen-2016-0202.pdf\">pdf<\/a><\/p>\n<p>Peguero G, R Bonal, D Sol, A Mu\u00f1oz, VL Sork, JM Espelta. 2017. Tropical insect diversity: evidence of greater host specialization in seed-feeding weevils. Ecology, 98(8):2180-2190. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/06\/2017Peguero_et_al-Ecology.pdf\">pdf<\/a><\/p>\n<p>Gugger PF, JM Pen\u0303aloza-Rami\u0301rez, JW Wright, VL Sork. 2016. Whole-transcriptome response to experimental water stress treatment in valley oak, <em>Quercus lobata<\/em>. Tree Physiology, 00: 1-13. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2016GuggerPenalozaTreePhysiology.pdf\">pdf<\/a><\/p>\n<p>Sork VL, ST Fitz-Gibbon, D Puiu, M Crepeau, PF Gugger, R Sherman, K Stevens, CH Langley, M Pellegrini, SL Salzberg. 2016. First draft assembly and annotation of the genome of a California endemic oak, <em>Quercus lobata<\/em> Ne\u0301e (Fagaceae). G3: Genes| Genomes| Genetics, 11: 3485-3495. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2016-Sorketal-genome.pdf\">pdf<\/a><\/p>\n<p>Sork VL, J Ortego, E Riordan, PF Gugger, S Fitz-Gibbon, X Wei. 2016. Phylogeny and introgression of California scrub white oaks (<em>Quercus<\/em> sect. <em>Quercus<\/em>). International Oaks Journal 27: 61-74. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2016Sorketal-IntOaks.pdf\">pdf<\/a><\/p>\n<p>Sork VL, PF Gugger, Chen JM, S Werth. 2016. Evolutionary lessons from California plant phylogeography. Proceedings of the National Academy of Sciences of the United States of America, 113(29):8064\u20138071. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/06\/2016Sork-et-al-PNAS.pdf\">pdf<\/a><\/p>\n<p>Chen JM, S Werth, VL Sork. 2016. Comparison of phylogeographical structures of a lichen-forming fungus and its green algal photobiont in Western North America. Journal of Biogeography, 43: 932\u2013943. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2016Chen_et_alJ.Biogeog.pdf\">pdf<\/a><\/p>\n<p>Gugger PF, S. Fitz-Gibbon, M. Pellegrini, VL Sork. 2016. Species-wide patterns of DNA methylation variation in <em>Quercus lobata<\/em> and their association with climate gradients. Molecular Ecology, 25: 1665\u20131680. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2016-Gugger_et_al-Molecular_Ecology.pdf\">pdf<\/a><\/p>\n<p>Verhoeven, KJF, BM Vonholdt, VL Sork. 2016. Epigenetics in ecology and evolution: what we know and what we need to know. Molecular Ecology, 25: 1631-1638.<\/p>\n<p>Verhoeven, K.J., BM Vonholdt, VL Sork. (Co-editors). 2016. Special Issue: Epigenetic studies in Ecology and Evolution. Molecular Ecology, volume 25, issue 8.<\/p>\n<p>Gugger PF, SJ Cokus, M Pellegrini, VL Sork. 2016. Association of transcriptome-wide sequence variation with climate gradients in valley oak (<em>Quercus lobata<\/em>). Tree Genetics and Genomics 12: 1-14.<\/p>\n<p>Bonal, R, JM Espelta, A Mun\u0303oz, J Ortego, JM Aparicio, K Gaddis, VL Sork. 2016. Diversity in insect seed parasite guilds at large geographical scale: the roles of host specificity and spatial distance. Journal of Biogeography. 43: 1620\u20131630. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2016-Bonal_et_al-Journal_of_Biogeography.pdf\">pdf<\/a><\/p>\n<p>Sork VL, K Squire, PF Gugger, E Levy, S Steele, AJ Eckert. 2016. Landscape genomic analysis of candidate genes for climate adaption in a California endemic oak, <em>Quercus lobata<\/em>. American Journal of Botany 103: 33-46. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2016Sork-etal-AJB.pdf\">pdf<\/a><\/p>\n<p>Riordan EC, PF Gugger, J Ortego, C Smith, K Gaddis, P Thompson, VL Sork. 2016. Association of genetic and phenotypic variability with geography and climate in three southern California oaks. American Journal of Botany 103(1): 73-85. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2016Riordan-etal-AJB.pdf\">pdf<\/a><\/p>\n<p>Delfino-Mix A, JW Wright, PF Gugger, C Liang, VL Sork. 2015. Establishing a range-wide provenance test in valley oak (<em>Quercus lobata<\/em> Ne\u0301e) at two California sites. Proceedings of the 7th California Oak Symposium: Managing Oak Woodlands in a Dynamic World. Visalia, CA. Pages 413-424. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2015-Mix-etal-psw_gtr251_413.pdf\">pdf<\/a><\/p>\n<p>Ortego J, V Noguerales, PF Gugger, VL Sork. 2015. Evolutionary and demographic history of the Californian scrub white oak species complex: an integrative approach. Molecular Ecology 24: 6188-6208. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2015eOrtego-et-al.pdf\">pdf<\/a><\/p>\n<p>Albarra\u0301n-Lara AL, JW Wright, PF Gugger, A Delfino-Mix, JM Pen\u0303aloza Rami\u0301rez, VL Sork. 2015. Phenotypic variation in California populations of valley oak (<em>Quercus lobata<\/em> Ne\u0301e) Sampled Along Elevation Gradients. Proceedings of the 7th California Oak Symposium: Managing Oak Woodlands in a Dynamic World. Visalia, CA. Pages 433-445. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2015-Albarran-Lara-etal-psw_gtr251_433.pdf\">pdf<\/a><\/p>\n<p>Sork, VL. 2015. Gene flow and natural selection shape spatial patterns of genes in tree populations: implications for evolutionary processes and applications. Evolutionary Applications 9: 291-310. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2016-Sork-Evolutionary_Applications.pdf\">pdf<\/a><\/p>\n<p>Sork VL, PE Smouse, D Grivet, Scofield DG. 2015. Impact of asymmetric male and female gamete disersal on allelic diversity and spatial genetic structure in valley oak (<em>Quercus lobata<\/em> Ne\u0301e). Evolutionary Ecology 29: 927-945. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2015Sork-Smouse-Grivet-Scofield.pdf\">pdf<\/a><\/p>\n<p>Cokus SJ, PF Gugger, VL Sork. 2015. Evolutionary insights from de novo transcriptome assembly and SNP discovery in California white oaks. BMC Genomics 16:552. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2015Cokusetal-MBCGenomics.pdf\">pdf<\/a><\/p>\n<p>Platt A, PF Gugger, M Pellegrini, VL Sork. 2015. Genome-wide signature of local adaptation linked to variable CpG methylation in oak populations. Molecular Ecology 24: 3823-3830. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2015-Platt_et_al-Molecular_Ecology.pdf.pdf\">pdf<\/a><\/p>\n<p>Ortego J, PF Gugger, VL Sork. 2015. Climatically stable landscapes predict patterns of genetic structure and admixture in the Californian canyon live oak. Journal of Biogeography 42:328-338.<\/p>\n<p>Thompson PT, PE Smouse, DG Scofield, VL Sork. 2014. What seeds tell us about birds: a multi-year analysis of acorn woodpecker foraging movements. Movement Ecology 2(12): 1-10. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2014Thompson-etalMovementEcol.pdf\">pdf<\/a><\/p>\n<p>Aguilar-Barajas, E, VL Sork, A Gonza\u0301lez-Zamora, V Rocha-Rami\u0301rez, V Arroyo-Rodri\u0301guez, K Oyama. 2014 . Isolation and characterization of polymorphic microsatellite loci in <em>Spondias radlkoferi<\/em> (Anacardiaceae). Applications in plant sciences, 2(11).<\/p>\n<p>Werth S, VL Sork. 2014. Ecological specialization in <em>Trebouxia<\/em> (Trebouxiophyceae) photobionts of <em>Ramalina menziesii<\/em> (Ramalinaceae) across six range-covering ecoregions of western North America. American Journal of Botany 101(7): 1127-1140. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2014WerthSork.pdf\">pdf<\/a><\/p>\n<p>Sork VL, S Werth. 2014. Phylogeography of <em>Ramalina menziesii<\/em>, a widely distributed lichen-forming fungus in western North America. Molecular Ecology 23: 2326-2339. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2014SorkWerth.pdf\">pdf<\/a><\/p>\n<p>Ortego J, PF Gugger, EC Riordan, VL Sork. 2014. Influence of climatic niche suitability and geographical overlap on hybridization patterns among southern Californian oaks. Journal of Biogeography 41:1895-1908. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2014Ortego-etal.pdf\">pdf<\/a><\/p>\n<p>Gaddis KD, HL Zukin, IA Dieterich, E Braker, VL Sork. 2013. Effect of clonal reproduction on genetic structure in <em>Pentaclethra macroloba<\/em> (Fabaceae: Mimosoideae). International Journal of Tropical Biology 62(2): 443-454. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2014Gaddis-Effect-of-clonal-reproduction-Pentaclethra-macroloba.pdf\">pdf<\/a><\/p>\n<p>Moroney J, PW Rundel, VL Sork. 2013. Phenotypic plasticity and differentiation in fitness-related traits in invasive populations of the Mediterranean forb, <em>Centaurea melitensis<\/em> (Asteraceae). American Journal of Botany 100: 2040-2051.<\/p>\n<p>Gugger P, M Ikegami, VL Sork. 2013. Influence of late Quaternary climate change on present patterns of genetic variation in valley oak, <em>Quercus lobata<\/em> Ne\u0301e. Molecular Ecology 22: 3598-3612. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2013Gugger-et-al-ME.pdf\">pdf<\/a><\/p>\n<p>Andrew RL, L Bernatchez, A Bonin, CA Buerkle, BC Carstens, BC Emerson, D Garant, T Giraud, NC Kane, SM Rogers, J Slate, H Smith, VL Sork, GN Stone, TH Vines, L Waits, A Widmer, LH Rieseberg. 2013. A road map for molecular ecology. Molecular Ecology 22: 2605-2626. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2013MERoad_Map_Paper.pdf\">pdf<\/a><\/p>\n<p>Herrera-Arroyo ML, VL Sork, A Gonzalez, V Rocha-Rami\u0301rez, E Vega, K Oyama. 2013. Seed mediated connectivity among fragmented populations of Quercus castanea in a Mexican landscape. American Journal of Botany 100: 1663-1671<\/p>\n<p>Petit RJ, J Carlson, AL Curtu, M-L Loustau, C Plomion, A Gonzalez-Rodr\u0131guez, V Sork, A Ducousso. 2013. Fagaceae trees as models to integrate ecology, evolution and genomics. IUFRO Conference, Genetics of Fagaceae and Nothofagaceae, in Bordeaux, France, October 2012. New Phytologist 197: 369\u2013371 <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2012PetitNP.pdf\">pdf<\/a><\/p>\n<p>Sork VL, SN Aitken, RJ Dyer, AJ Eckert, P Legendre, DB Neale. 2013. Putting the landscape into the genomics of trees: approaches for understanding local adaptation and population responses to changing climate. Tree Genetics and Genomics 9:901-911. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2013LandscapeGenomicsTGGcommentary.pdf\">pdf<\/a><\/p>\n<p>Scofield DG, PE Smouse, J Karubian, VL Sork. 2012. Use of Alpha, Beta, and Gamma Diversity Measures to Characterize Seed Dispersal by Animals. The American Naturalist 180(6):719-732. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2012ScofieldSork-et-al-AmNat.pdf\">pdf<\/a><\/p>\n<p>Gonzalez-Zamora A, V Arroyo-Rodriguez, K Oyama, V Sork, CA Chapman, KE Stoner. 2012. Sleeping Sites and Latrines of Spider Monkeys in Continuous and Fragmented Rainforests: Implications for Seed Dispersal and Forest Regeneration. PLOS ONE 7(10):1-11. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2012Gonzalez-ZamoraStonerSork.pdf\">pdf<\/a><\/p>\n<p>Ortego J, EC Riordan, PF Gugger, VL Sork. 2012. Influence of environmental heterogeneity on genetic diversity and structure in an endemic southern Californian oak. Molecular Ecology 21: 3210-3223. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2012Ortego-etal.pdf\">pdf<\/a><\/p>\n<p>Robledo-Arnuncio JJ, D Grivet, PE Smouse, VL Sork 2012. PSA: software for parental structure analysis of seed or seedling patches. Molecular Ecology Resources 12(6):1180-1189. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2012Robledo-Arnuncio_etal_.pdf\">pdf<\/a><\/p>\n<p>Smouse PE, VL Sork, DG Scofield, D Grivet. 2012. Using Seedling and Pericarp Tissues to Determine Maternal Parentage of Dispersed Valley Oak Recruits. Journal of Heredity 103(2): 250-259. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2012SmouseSorketal.pdf\">pdf<\/a><\/p>\n<p>Rosas F, M Quesada, JA Lobo, VL Sork. 2011. Effects of habitat fragmentation on pollen flow and genetic diversity of the endangered tropical tree Swietenia humilis (Meliaceae). Biological Conservation 144:3082-3088<\/p>\n<p>Scofield DG, VR Alfaro, VL Sork, D Grivet, E Martinez, J Papp, AR Pluess, WD Koenig, PE Smouse. 2011. Foraging patterns of acorn woodpeckers (<em>Melanerpes formicivorus<\/em>) on valley oak (<em>Quercus lobata<\/em> Ne\u0301e) in two California oak savanna-woodlands. Oecologia 166:187-196.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2010ScofieldetalOecologia.pdf\">pdf<\/a><\/p>\n<p>Sanchez-Humanes B, VL Sork, J Maria Espelta. 2011. Trade-offs between vegetative growth and acorn production in <em>Quercus lobata<\/em> during a mast year: the relevance of crop size and hierarchical level within the canopy. Oecologia 166:101-110. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2011BelenOecologia.pdf\">pdf<\/a><\/p>\n<p>Sork VL and L Waits. 2010. Contributions of landscape genetics \u2013 approaches, insights, and future potential. Molecular Ecology 19: 3489\u20133495. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2010SorkWaitsmec_4786.pdf\">pdf<\/a><\/p>\n<p>Sork VL, FW Davis, R Westfall, A Flint, M Ikegami, HF Wang, D Grivet. 2010. Gene movement and genetic association with regional climate gradients in California valley oak (<em>Quercus lobata<\/em> Ne\u0301e) in the face of climate change. Molecular Ecology 19:3806\u20133823.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2010Sork-et-al-ME.pdf\">pdf<\/a><\/p>\n<p>Waits L, VL Sork 2010. (Co-editors). Special Issue on Landscape Genetics. Molecular Ecology volume 19<\/p>\n<p>Wang H, VL Sork, J Wu, J Ge. 2010. Effect of patch size and isolation on mating patterns and seed production in an urban population of Chinese Pine (<em>Pinus tabulaeformis<\/em> Carr.). Forest Ecology and Management 260: 965-974. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/06\/2010_Wang_etal.pdf\">pdf<\/a><\/p>\n<p>Werth S and VL Sork. 2010. Identity and genetic structure of the photobiont of the epiphytic lichen <em>Ramalina menziesii<\/em> on three oak species in southern California. American Journal of Botany 97:821-830.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2010Werth_Sork_AmJBot.pdf\">pdf<\/a><\/p>\n<p>Scofield DG, VL Sork, PE Smouse. 2010. Influence of acorn woodpecker social behaviour on transport of coast live oak (<em>Quercus agrifolia<\/em>) acorns in a southern California oak savanna. Journal of Ecology 98:561-572.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2010Scofield-et-al-JE.pdf\">pdf<\/a><\/p>\n<p>Karubian J, VL Sork, T Roorda, R. Dur\u00e3es, TB Smith. 2010. Destination-based seed dispersal homogenizes genetic structure of a tropical palm. Molecular Ecology 19:1743-1745.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2010JordanetalME.pdf\">pdf<\/a><\/p>\n<p>Grivet D, Robledo-Arnuncio JJ, Smouse PE, VL Sork. 2009. Relative contribution of contemporary pollen and seed dispersal to the effective parental size of seedling population of California valley oak (<em>Quercus lobata<\/em>, Ne\u0301e). Molecular Ecology 18:3967-3979. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2009Grivet_R-A_etal.pdf\">pdf<\/a><\/p>\n<p>Pluess AR, VL Sork, B Dolan, FW Davis, D Grivet, K Merg, J Papp, PE Smouse. 2009. Short distance pollen movement in a wind-pollinated tree, <em>Quercus lobata<\/em> (Fagaceae). Forest Ecology and Management 258: 735-744 <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2009PluessFORECO11660.pdf\">pdf<\/a><\/p>\n<p>Sork VL, FW Davis, D Grivet. 2009. Incorporating genetic information into conservation planning for California valley oak. Pages 497-509 in Merenlender A, D McCreary, KL Purcell KL (Technical editors). Proceedings of the sixth California oak symposium: today\u2019s challenges, tomorrow\u2019s opportunities. Gen. Tech. Rep. PSW-GTR-217. Albany, CA: U.S. Department of Agriculture, Forest Service, Pacific Southwest Research Station.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2009SorketalOakSympFinal.pdf\">pdf<\/a><\/p>\n<p>Werth S, VL Sork. 2008. Local genetic structure in a North American epiphytic lichen, <em>Ramalina menziesii&lt;\/em (Ramalinaceae). American Journal of Botany 95(5):1-9.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2007WerthSorkAJB.pdf\">pdf<\/a><\/em><\/p>\n<p>Grivet D, VL Sork, RD Westfall, FW Davis. 2008. Conserving the evolutionary potential of California valley oak (<em>Quercus lobata<\/em> Ne\u0301e): a multivariate genetic approach to conservation planning. Molecular Ecology 17:139-156.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2008GrivetSork.pdf\">pdf<\/a><\/p>\n<p>Wang BC, VL Sork, MT Leong, TB Smith. 2007. Repercussions of hunting mammals on seed removal and dispersal of the Afrotropical tree, Antrocaryon klaineanum (Anacardiaceae). Biotropica 39:340-347.<\/p>\n<p>Fernandez-M JF, VL Sork. 2007. Genetic variation in fragmented forest stands of the Andean oak Quercus humboldtii Bonpl. (Fagaceae). Biotropica 39:72-78.<\/p>\n<p>Austerlitz F, C Dutech, PE Smouse, F Davis, VL Sork. 2007. Estimating anisotropic pollen dispersal: a case study in <em>Quercus lobata<\/em>. Heredity, 99:193-204. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2007Austerlitzetal.pdf\">pdf<\/a><\/p>\n<p>Ferna\u0301ndez-M JF, J Idol, VL Sork. 2006. Mating patterns of black oak Quercus velutina (Fagaceae) in a Missouri oak- hickory forest. J. Heredity 97: 451-455<\/p>\n<p>Grivet D, M-F Deguilloux, RJ Petit, VL Sork. 2006. Contrasting patterns of historical colonization in white oaks (<em>Quercus<\/em> spp.) in California and Europe. Molecular Ecology 15: 4085-4093. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2006GrivetSorkme.pdf\">pdf<\/a><\/p>\n<p>Sork VL and PE Smouse. 2006. Genetic analysis of landscape connectivity in tree populations. Landscape Ecology 21:821-836. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2006SorkSmouse.pdf\">pdf<\/a><\/p>\n<p>Valbuena-Caraban\u0303a M, SC Gonza\u0301lez-Marti\u0301nez, VL Sork, C Collada, A Soto, PG Goicoechea, L Gil. 2005. Gene flow and hybridisation in a mixed oak forest [Quercus pyrenaica Willd. and Q. petraea (Matts.) Liebl.] in central Spain. Heredity 87: 680\u2013690<\/p>\n<p>Ferna\u0301ndez-M JF and VL Sork. 2005. Mating patterns in a subdivided population of the Andean oak (Quercus humboldtii Bonpl., Fagaceae). J. Heredity 96: 635-643.<\/p>\n<p>Grivet D, PE Smouse, VL Sork. 2005. A novel approach to an old problem: tracking dispersed seeds. Molecular Ecology 14:3585\u20133595.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2005GrivetSork.pdf\">pdf<\/a><\/p>\n<p>Dutech C, VL Sork, AJ Irwin, PE Smouse, FW Davis. 2005. Gene flow and fine-scale genetic structure in a wind-pollinated tree species, <em>Quercus lobata<\/em> (Fagaceae). American Journal of Botany 92(2):252-261.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2005Dutech_etal.pdf\">pdf<\/a><\/p>\n<p>Sork VL, PE Smouse, VJ Apsit, RJ Dyer, RD Westfall. 2005. A two-generation analysis of pollen pool genetic structure in flowering dogwood <em>Cornus florida<\/em> (Cornaceae), in the Missouri Ozarks. American Journal of Botany 92(2):262-271. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2005Sorketal-AJB.pdf\">pdf<\/a><\/p>\n<p>Smouse PE and VL Sork. 2005. Measuring pollen flow in forest trees: an exposition of alternative approaches. Forest Ecology and Management 197:21-38.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2004SmouseSork.pdf\">pdf<\/a><\/p>\n<p>Dyer RJ, RD Westfall, VL Sork, PE Smouse. 2004. Two-generation analysis of pollen flow across a landscape V: a stepwise approach for extracting factors contributing to pollen structure. Heredity 92:204-211.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2004Dyer2Gener.pdf\">pdf<\/a><\/p>\n<p>Austerlitz F, CW Dick, C Dutech, EK Klein, S Oddou-Muratorio, PE Smouse, VL Sork. 2004. Using genetic markers to estimate the pollen dispersal curve. Molecular Ecology 13: 937-954.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2004Austerlitzetal.pdf\">pdf<\/a><\/p>\n<p>Liebhold A, VL Sork, M Peltonen, W Koenig, O Bj\u00f8rnstad, R Westfall, J Elkinton, J Knops. 2004. Within-population spatial synchrony in mast seeding of North American oaks. Oikos 104:154-164.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2004Liebhold-Sork-et-al.pdf\">pdf<\/a><\/p>\n<p>Buonaccorsi JP, J Elkinton, W Koenig, RP Duncan, D Kelly, VL Sork. 2003. Measuring mast seeding behavior: relationships among population variation, individual variation and synchrony. Journal of Theoretical Biology 224:107-114. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2003Buonocorso-etal-masting.pdf\">pdf<\/a><\/p>\n<p>Hochwender CG, VL Sork, RJ Marquis. 2003. Fitness consequences of herbivory on Quercus alba. American Midland Naturalist 150:246-253.<\/p>\n<p>Koenig WD, D Kelly, VL Sork, RP Duncan, JS Elkinton, MS Peltonen, RD Westfall. 2003. Dissecting components of population-level variation in seed production and the evolution of masting behavior. Oikos 102: 581-591.<\/p>\n<p>Kelly D, VL Sork. 2002. Mast seeding in perennial plants: why, how, where? Annual Review of Ecology, Evolution and Systematics 33:427-447.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2002Kelly-Sork-.pdf\">pdf<\/a><\/p>\n<p>Sork VL, FW Davis, PE Smouse, VJ Apsit, RJ Dyer, J Fernandez-M, B Kuhn. 2002. Pollen movement in declining populations of California Valley Oak, <em>Quercus lobata<\/em>: Where have all the fathers gone? Molecular Ecology 11: 1657-1668.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2002SorketalME.pdf\">pdf<\/a><\/p>\n<p>Sork VL, FW Davis, RJ Dyer, PE Smouse. 2002. Mating patterns in a savanna population of Valley oak, (<em>Quercus lobata<\/em> Ne\u0301e). Pp 427- 440 in Standiford, R.B. McCreary, D; Purcell, K.L. (technical coordinators). Proceedings of the Fifth Symposium on Oak Woodlands: Oaks in California\u2019s Changing Landscape. 2001 October 22-25; San Diego, CA. Gen. Tech. Rep. PSW-GTR-184. Albany, CA: Pacific Southwest Research Station, Forest Service, U.S. Department of Agriculture; 427-444.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2002SorketalVOconf.pdf\">pdf<\/a><\/p>\n<p>Dyer RJ and VL Sork. 2001. The effects of autocorrelated patterns among adults on pollen pool differentiation. Pages 89-93 in B Degen, MD Loveless, A Kremer (eds). Modeling and experimental research on genetic processes in tropical and temperate forests. Embrapa Amazonia Oriental. Bele\u0301m PA, Brazil.<\/p>\n<p>Apsit VJ, VL Sork, RJ Dyer. 2002. Patterns of mating in an insect-pollinated tree species in the Missouri Ozark Forest Ecosystem Project (MOFEP). Pages 213-227 in Shifley, R Stephen and JM Kabrick (eds.). Proceedings of the Second Missouri Ozark Forest Ecosystem Symposium: Post-treatment results of the landscape experiment, 2000 October 17-18, St. Louis, MO. Gen. Tech. Rep. NC-227. St. Paul, MN: U.S. Department of Agriculture, Forest Service, North Central Forest Experiment Station: 228 pp.<\/p>\n<p>Gram WK, VL Sork, RJ Marquis, RB Renken, RL Clawson, J Faaborg, DK Fantz, J LeCorff, J Lill, PA Porneluzi. 2002. Evaluating the effects of ecosystem management: a case study in a Missouri Ozark Forest. P. 227 in Shifley, R Stephen, JM Kabrick, (eds.). Proceedings of the Second Missouri Ozark Forest Ecosystem Symposium: Post- treatment results of the landscape experiment, 2000 October 17-18, St. Louis, MO. Gen. Tech. Rep. NC-227.<\/p>\n<p>St. Paul, MN: U.S. Department of Agriculture, Forest Service, North Central Forest Experiment Station: 228 pp. (Abstract reprinted from below).<\/p>\n<p>Gram WK, VL Sork, RJ Marquis, RB Renken, RL Clawson, J Faaborg, DK Fantz, J LeCorff, J Lill, PA Porneluzi. 2002. Evaluating the effects of ecosystem management: a case study in a Missouri Ozark Forest. Ecological Applications 11: 1667-1679.<\/p>\n<p>Dyer RJ and VL Sork. 2001. Pollen pool heterogeneity in shortleaf pine, <em>Pinus echinata<\/em> Mill. Molecular Ecology 10:859-866. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2001DyerSork.pdf\">pdf<\/a><\/p>\n<p>Pe\u0301rez-Salicrup DR, VL Sork, FJ Putz. 2001. Lianas and trees in a Liana forest of Amazonia Bolivia. Biotropica 33:34- 47.<\/p>\n<p>Gram WK and VL Sork. 2001. Association between environmental and genetic heterogeneity in forest tree populations. Ecology 82(7):2012-2021.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2001GramSork.pdf\">pdf<\/a><\/p>\n<p>Smouse PE, RJ Dyer, RD Westfall, VL Sork. 2001. Two generation analysis of pollen flow across a landscape. I. Male gamete heterogeneity among females. Evolution 55:260-271. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/2001-Smouse_et_al-Evolution.pdf\">pdf<\/a><\/p>\n<p>Ferna\u0301ndez JF, VL Sork, G Gallego, J Lo\u0301pez, A Bohorqes, J Tohme. 2000. Cross-amplification of microsatellite loci in a neotropical Quercus species and standardization of DNA extraction from mature leaves dried in silica gel. Plant Molecular Biology Reporter 18: 97.<\/p>\n<p>Gram WK and VL Sork. 1999. Population density as a predictor of genetic variation for woody plant species. Conservation Biology 13: 1079-1087.<\/p>\n<p>Sork VL, J Nason, DR Campbell, JF Ferna\u0301ndez. 1999. Landscape approaches to historical and contemporary gene flow in plants. Trends in Ecology and Evolution 14:219-224.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/1999Sorketal.pdf\">pdf<\/a><\/p>\n<p>Sork VL, DR Campbell, RJ Dyer, JF Ferna\u0301ndez, J Nason, R Petit, PE Smouse, E Steinberg. 1998. Proceedings from a workshop on gene flow in fragmented, managed, continuous populations. National Center for Ecological Analysis and Synthesis Research Paper No. 3: http:\/\/www.nceas.ucsb.edu\/papers\/geneflow.<\/p>\n<p>Sork VL, AL Koop, MA de la Fuente, P Foster, JA Raveill. 1997. Patterns of genetic variation in woody plant species in the Missouri Ozark Forest Ecosystem Project (MOFEP). Pp. 233-249 in BL Brookshire and SR Shifley (Eds). Report of the Missouri Forest Ecosystem Project. General Technical Report, USDA Forest Service.<\/p>\n<p>Gram WK, VL Sork, RJ Marquis. 1997. Synthesis and integration of pretreatment results from the Missouri Ozark Forest Ecosystem Project. Pp. 356-369 in BL Brookshire and SR Shifley (Eds). Report of the Missouri Forest Ecosystem Project. General Technical Report, USDA Forest Service.<\/p>\n<p>Foster PF and VL Sork. 1997. Population and genetic structure of the West African rain forest liana, <em>Ancistrocladus korupensis<\/em> (Ancistrocladaceae). American Journal of Botany 84:1078-1091.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/1997FosterSork.pdf\">pdf<\/a><\/p>\n<p>Schellhorn NA and VL Sork. 1997. The impact of weed diversity on insect population dynamics and crop yield in collards <em>Brassica oleraceae<\/em> (Brassicaceae). Oecologia 111:233-240.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/1997-SchellhornSork.pdf\">pdf<\/a><\/p>\n<p>Sork VL. 1996. Quantitative genetics, feminism, evolutionary theories of gender differences. Pp. 86-116 in PA Gowaty (Ed.), Feminism and Evolutionary Biology. Chapman and Hall Publishers, New York.<\/p>\n<p>Loiselle BA, VL Sork, C Graham. 1995. Comparison of genetic variation in bird-dispersed shrubs of a tropical wet forest. Biotropica 27:487-494.<\/p>\n<p>Loiselle BA, VL Sork, J Nason, C Graham. 1995. Spatial genetic structure of a tropical understory shrub, <em>Psychotria officinalis<\/em> (Rubiaceae). American Journal of Botany 82(11):1420-1425.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/1995LoiselleSorkNason.pdf\">pdf<\/a><\/p>\n<p>Stowe K, VL Sork, A Farrell. 1994. Effects of maternal microhabitat and water availability on the phenotypic expression of resistance to herbivores in northern red oak, Quercus rubra L. Oecologia 100: 309-315.<\/p>\n<p>Sork VL, KA Stowe, C Hochwender. 1993. Evidence for local adaptation in closely adjacent subpopulations of Northern red oak (<em>Quercus rubra<\/em> L.) expressed as resistance to leaf herbivores. American Naturalist 142(6):928- 936. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/1993SorkAmNat.pdf\">pdf<\/a><\/p>\n<p>Sork VL, S Huang, E Wiener. 1993. Macrogeographic and fine-scale genetic structure in a North American oak species, <em>Quercus rubra<\/em> L. Annales des Sciences Forestieres, 50 (Suppl.) 1:261-270.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/1993-Sork-Huang-Werner.pdf\">pdf<\/a><\/p>\n<p>Sork VL, J Bramble, O Sexton. 1993. Ecology of mast-fruiting in three species of North American deciduous oaks. Ecology 74(2):528-541. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/1993Sorketal-Ecol.pdf\">pdf<\/a><\/p>\n<p>Sork VL. 1993. Evolutionary ecology of mast-seeding in temperate and tropical oaks (<em>Quercus<\/em> spp.). Vegetatio 107\/108:133-147. <a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/1993-Sork-Vegetatio.pdf\">pdf<\/a><\/p>\n<p>Sork VL and JE Bramble. 1993. Prediction of acorn crops in three species of North American oaks: <em>Quercus alba, Q rubra<\/em> and <em>Q velutina<\/em>. Annales des Sciences Forestieres, 50 (Suppl.) 1:128-136.<a style=\"color: #0000ff\" href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-content\/uploads\/sites\/6\/2018\/01\/1993-SorkBramble.pdf\">pdf<\/a><\/p>\n<p>Kelly CK and VL Sork. 1993. (Letter to the editor.) Bulletin of the Ecological Society of America 74:141-142. Sork VL and DW Schemske. 1992. Fitness consequences of mixed-donor pollen loads in the annual legume<\/p>\n<p>Chamaecrista fasciculata. American Journal of Botany 79:508-515.<br \/>\nFenster C and VL Sork, 1988. Effects of crossing distance and male parent on in vivo pollen tube growth in<\/p>\n<p>Chamaecrista fasciculata. American J. Botany 75:1898-1903.<br \/>\nSork VL. 1988. The ecology of terrestrial plant animal interactions. Book Review of: Howe, H.F. and L.C. Westley,<\/p>\n<p>Ecological Relationships of Plants and Animals. Ecology 69:2035.<\/p>\n<p>Charlesworth D, DW Schemske, VL Sork. 1987. The evolution of plant reproductive characters: sexual versus natural selection. Pp. 317-335 in S Stern (Editor), The Evolution of Sex and Its Consequences. Birkhauser, Basel, Switzerland.<\/p>\n<p>Sork VL. 1987. Effects of predation and light on seedling establishment in Gustavia superba. Ecology 68:1341-1350. Sork VL. 1985. Germination response in a large\u2013seeded neotropical tree specie, Gustavia superba (Lecythidaceae). Biotropica 17:130-136.<\/p>\n<p>Rose S and VL Sork. 1984. Teaching about female sexuality. Women&#8217;s Studies Quarterly 12:19\u201322.<\/p>\n<p>Sork VL. 1984. Examination of seed dispersal and survival in red oak, Quercus rubra (Fagaceae), using metal tagged acorns. Ecology 65: 1020\u20131022.<\/p>\n<p>Sork VL. 1983a. Mast fruiting in hickories and availability of nuts. American Midland Naturalist 109:81\u201388.<\/p>\n<p>Sork VL. 1983b. Mammalian seed dispersal of pignut hickory during three fruiting seasons. Ecology 64:1049\u20131056.<\/p>\n<p>Sork VL. 1983c. Distribution of pignut hickory, Carya glabra, along a forest to edge transect, and factors affecting seedling recruitment. Bulletin of the Torrey Botanical Club 110:494\u2013506.<\/p>\n<p>Sork VL, P Stacey, J Averett. 1983. Utilization of red oak acorns in non-bumper crop year. Oecologia 59:49\u201353. Rabinowitz D, JK Rapp, VL Sork, FA Reese, JC Weaver. 1981. Phenological properties of wind\u2013 and insect\u2013pollinated prairie plants. Ecology 62:49\u201356.<\/p>\n<p>Boucher DH and VL Sork. 1979. Early drop of infested nuts in response to insect infestation. Oikos 33: 440\u2013443.<\/p>\n<p>Sork VL. 1978. A comparison of physiological and behavioral adjustments to water stress in three species of kangaroo rat. Southwestern Naturalist 23:95\u2013102.<\/p>\n<p>Sork VL, DH Boucher. 1977. Dispersal of sweet pignut hickory in a year of low fruit production, and the influence of predation by a curculionid beetle. Oecologia 18:289\u2013299.<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n","protected":false},"excerpt":{"rendered":"<p>&nbsp; Google Scholar &#8220;V.L. Sork&#8221; \u00a0(Listed in reverse chronological order) Colgan D. 2019. One of California&#8217;s iconic tree species offers lessons for conservation. Environment and Climate, Top UCLA News. pdf Mead A, JM Pen\u0303aloza-Rami\u0301rez, MK Bartlett, JW Wright, L Sack, VL Sork. 2019. Seedling response to water stress in valley oak (Quercus lobata) is shaped<\/p>\n<p><a href=\"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/publications\/\" class=\"more-link themebutton\">Read More<\/a><\/p>\n","protected":false},"author":15,"featured_media":749,"parent":0,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"footnotes":""},"class_list":["post-62","page","type-page","status-publish","has-post-thumbnail","hentry"],"_links":{"self":[{"href":"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-json\/wp\/v2\/pages\/62","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-json\/wp\/v2\/users\/15"}],"replies":[{"embeddable":true,"href":"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-json\/wp\/v2\/comments?post=62"}],"version-history":[{"count":89,"href":"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-json\/wp\/v2\/pages\/62\/revisions"}],"predecessor-version":[{"id":1405,"href":"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-json\/wp\/v2\/pages\/62\/revisions\/1405"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-json\/wp\/v2\/media\/749"}],"wp:attachment":[{"href":"https:\/\/sites.lifesci.ucla.edu\/eeb-sorklab\/wp-json\/wp\/v2\/media?parent=62"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}