{"id":6,"date":"2013-11-05T17:25:15","date_gmt":"2013-11-05T22:25:15","guid":{"rendered":"https:\/\/my.vanderbilt.edu\/malujorge\/publications\/"},"modified":"2026-04-15T06:52:04","modified_gmt":"2026-04-15T11:52:04","slug":"publications","status":"publish","type":"page","link":"https:\/\/my.vanderbilt.edu\/malujorge\/publications\/","title":{"rendered":"Publications"},"content":{"rendered":"<p>Peterson, MC, Bradham J, Ferraro K, Guillet M, Keuroghlian A, Ribeiro M, <strong>Jorge MLSP 2025<\/strong>. Modeling movement patterns to identify thresholds of functional connectivity in fragmented forest landscapes. Biological Conservation 307: 111177<\/p>\n<p>Giroux A., et al. <strong>2025<\/strong>. Sex Drives Intraspecific Scaling of Home Range Size in Mammals. Ecology letters 28 (11), e70245<\/p>\n<p>Fagan, W.F., et al. <strong>2025<\/strong>. Wild canids and felids differ in their reliance on reused travel routeways. Proceedings of the National Academy of Sciences 122 (40), e2401042122<\/p>\n<p>Rooney, B, et al. <strong>2025<\/strong>. SNAPSHOT USA 2019\u20132023: The First Five Years of Data From a Coordinated Camera Trap Survey of the United States. Global Ecology and Biogeography 34.1: e13941.<\/p>\n<p>Beltr\u00e3o MG, <strong>Jorge MLSP<\/strong>, Carmignotto AP, Silveira LF, &amp; Galetti M, <strong>2024<\/strong>. Turnover and connectivity as drivers of mammalian persistence in highly fragmented landscapes. Global Ecology and Conservation, 56, p.e03283<\/p>\n<p>Peterson M*, <strong>Jorge MLSP<\/strong>, &amp; Keuroghlian A, <strong>2024<\/strong>. A predominantly diurnal tropical mammal increases nocturnality in response to high temperatures. Biotropica DOI: https:\/\/doi.org\/10.1111\/btp.13271<\/p>\n<p>Darroch SA, Saupe EE, Casey MM, <strong>Jorge ML 2022<\/strong>. Integrating geographic ranges across temporal scales. Trends in Ecology &amp; Evolution, 37(10) :851-860 DOI: https:\/\/doi.org\/10.1016\/j.tree.2022.05.005<\/p>\n<p>Magioli, M, Villar, N., <strong>Jorge, MLSP<\/strong>, Biondo, C., Keuroghlian, A., Bradham, J.*, Pedrosa, F., Costa, V., Moreira, M.Z., Ferraz, K.M.P.M.d.B. and Galetti, M. <strong>2022<\/strong>. Dietary expansion facilitates the persistence of a large frugivore in fragmented tropical forests. Animal Conservation DOI 10.1111\/acv.12766<\/p>\n<p>Peterson M*, <strong>Jorge MLSP<\/strong>, Jain, A.*, Keuroghlian, A., Oshima, J., Richard-Hansen, C., Berzins, R., Ribeiro, M.C., &amp; Eaton, D. <strong>2021<\/strong>. Temperature induces activity reduction in a Neotropical ungulate. Journal of Mammalogy 102(6): 1514-1524 DOI: 10.1093\/jmammal\/gyab092<\/p>\n<p><strong>Jorge MLSP<\/strong>, J Bradham*, A Keuroghlian, J Oshima*, and MC Ribeiro <strong>2021<\/strong>. Permeability of Neotropical agricultural lands to a key native ungulate\u2014Are well\u2010connected forests important? <em>Biotropica 53 (1), 201-212<\/em>.<\/p>\n<p>Nagy\u2010Reis M, et al. <strong>2020<\/strong>. NEOTROPICAL CARNIVORES: a data set on carnivore distribution in the Neotropics. <em>Ecology 101 (11), e03128<\/em><\/p>\n<p>Bradham J*, <strong>MLSP Jorge<\/strong>, F Pedrosa, A Keuroghlian, M Galetti, VE Costa, and W Berc\u00ea <strong>2019<\/strong>. Isotopic dietary plasticity of a Neotropical forest ungulate: the white lipped peccary (Tayassu pecari, Tayassuidae, Cetartiodactyla). <em>Journal of Mammalogy 100 (2), 464-474<\/em>.<\/p>\n<p>Santos P, et al. <strong>2019<\/strong>. Neotropical Xenarthrans: a dataset of occurrence of xenarthran species in the Neotropics. <em>Ecology 100 (7), e02663<\/em><\/p>\n<p><strong>Jorge MLSP<\/strong>, J Oshima*, J Bradham*, A Keuroghlian and MC Ribeiro <strong>2019<\/strong>. White-lipped peccary seasonal movement in agricultural lands of Central Brazil. In: R Reyna-Hurtado and C Chapman (eds) Movement Ecology of Neotropical Forest Mammals, Springer.<\/p>\n<p>Merrick T*, S Pau, <strong>MLSP Jorge<\/strong>, TSF Silva, R Bennartz <strong>2019<\/strong>. Spatiotemporal patterns and phenology of tropical vegetation solar-induced chlorophyll fluorescence across Brazilian biomes using satellite observations <em>Remote Sensing 11 (15), 1746<\/em><\/p>\n<p>Hofman MPG, et al. <strong>2019<\/strong>. Right on track? Performance of satellite telemetry in terrestrial wildlife research. <em>PloS one 14 (5), e0216223<\/em><\/p>\n<p>Bradham J*, L DeSantis L, <strong>MLSP Jorge<\/strong>, A Keuroghlian <strong>2018<\/strong>. Dietary variability of extinct tayassuids and modern white-lipped peccaries (Tayassu pecari) as inferred from dental microwear and stable isotope analysis. <em>Palaeogeography, Palaeoclimatology, Palaeoecology<\/em>. DOI: 10.1016\/j.palaeo.2018.03.020<\/p>\n<p>Paviolo A, C De Angelo, K Ferraz, RG Morato, JM Pardo, AC Srbek-Araujo, BM Beisegel, F Lima, D Sana, MX Silva, MC Vel\u00e1zquez, L Cullen, P Crawshaw, <strong>MLSP Jorge<\/strong>, PM Galetti Jr, MS Di Bitetti, RC de Paula, E Eizirik, TM Aide, P Cruz, MLL Perrilli, ASM Souza, V Quiroga, E Nakano, FR Pinto, S Fernandez, S Costa, EA Moraes Jr, F Azevedo <strong>2016<\/strong>. A biodiversity hotspot without its top predator? The challenge of jaguar conservation in the Atlantic Forest of South America. <em>Scientific Reports<\/em>. doi:10.1038\/srep37147<\/p>\n<p>Galetti M, H Camargo, T Siqueira, A Keuroghlian, C Donatti, <strong>MLSP Jorge<\/strong>, F Pedrosa, C Kanda, M Ribeiro <strong>2015<\/strong>. Diet overlap and foraging activity between feral pigs and native peccaries in the Pantanal. <em>PLOS One<\/em> 10(11). doi:10.1371\/journal.pone.0141459<\/p>\n<p>Lima ES, <strong>MLSP Jorge<\/strong>, RSP Jorge, RG Morato <strong>2014<\/strong>. Carnivores&#8217; area requirement and habitat preference in cultivated lands: good news and bad news from the bush dog (<em>Speothos venaticus<\/em>). <em>Oryx<\/em> 49: 64-70. doi:10.1017\/S0030605314000076<\/p>\n<p><strong>Jorge MLSP<\/strong>, M Galetti, MC Ribeiro, K Ferraz <strong>2013<\/strong>. Mammal defaunation as surrogate of trophic cascades in a biodiversity hotspot. <em>Biological Conservation<\/em> Special Issue: Defaunation\u2019s impact in tropical terrestrial ecosystems, 163:49-57, doi:10.1016\/j.biocon.2013.04.018<\/p>\n<p>Galetti M, E Eizirik, B Beisiegel, K Ferraz, S Cavalcanti, AC Srbek-Araujo, P Crawshaw, A Paviolo, PM Galetti Jr, <strong>ML Jorge<\/strong>, J Marinho-Filho, U Vercillo, RG Morato <strong>2013<\/strong>;. Atlantic Rainforest&#8217;s Jaguars in Decline. <em>Science<\/em> 342 (6161): 930. doi:10.1126\/science.342.6161.930-a<\/p>\n<p>Lima ES, KE DeMatteo, RSP Jorge, <strong>MLSP Jorge<\/strong>, JC Dalponte, HS Lima, S Klorfine <strong>2012<\/strong>. First&lt; telemetry study of the bush dog (<em>Speothos venaticus<\/em>): providing information on home range, activity, and habitat selection. <em>Wildlife Research<\/em> 39(6): 512-519 doi:10.1071\/WR1176<\/p>\n<p><strong>Jorge MLSP<\/strong>, JS Brown, M van der Merwe <strong>2011<\/strong>. Handling time and the evolution of caching behavior. <em>Behavioral Ecology<\/em> 23(2):410-417 doi:10.1093\/beheco\/arr2<\/p>\n<p><strong>Jorge MLSP<\/strong>, HF Howe <strong>2009<\/strong>. Can fragmentation disrupt a conditional mutualism? A case from Central Amazon. <em>Oecologia<\/em> 161:709\u2013718 doi:10.1007\/s00442-009-1417-7<\/p>\n<p><strong>Jorge MLSP.<\/strong> <strong>2008<\/strong>. Effects of forest fragmentation on two sister genera of Amazonian rodents (<em>Myoprocta acouchy<\/em> and <em>Dasyprocta leporina<\/em>). <em>Biological Conservation<\/em> 141(3): 617-623 doi:10.1016\/j.biocon.2007.11.013<\/p>\n<p><strong>Jorge MLSP<\/strong>, PM Velazco <strong>2006<\/strong>;. Mammals. In: TS Schulenberg, C Vriesendorp, JI Rojas, and DK Moskovits (eds): Peru: Sierra del Divisor. The Field Museum: Rapid Biological Inventories Report Number 17<\/p>\n<p><strong>Jorge MSP<\/strong>, CA Peres <strong>2005<\/strong>. Population density and home range use of red-rumped agoutis (<em>Dasyprocta leporina<\/em>) within and outside a natural Brazil nut stand in South-eastern Amazonia. <em>Biotropica<\/em> 37(2):317-320 doi:10.1111\/j.1744-7429.2005.00041.x<\/p>\n<p><strong>* designates student<\/strong><\/p>\n","protected":false},"excerpt":{"rendered":"<p>Peterson, MC, Bradham J, Ferraro K, Guillet M, Keuroghlian A, Ribeiro M, Jorge MLSP 2025. Modeling movement patterns to identify thresholds of functional connectivity in fragmented forest landscapes. Biological Conservation 307: 111177 Giroux A., et al. 2025. Sex Drives Intraspecific Scaling of Home Range Size in Mammals. Ecology letters 28 (11), e70245 Fagan, W.F., et&#8230;<\/p>\n","protected":false},"author":2406,"featured_media":0,"parent":0,"menu_order":3,"comment_status":"open","ping_status":"closed","template":"","meta":{"footnotes":""},"tags":[],"class_list":["post-6","page","type-page","status-publish","hentry"],"_links":{"self":[{"href":"https:\/\/my.vanderbilt.edu\/malujorge\/wp-json\/wp\/v2\/pages\/6","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/my.vanderbilt.edu\/malujorge\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/my.vanderbilt.edu\/malujorge\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/my.vanderbilt.edu\/malujorge\/wp-json\/wp\/v2\/users\/2406"}],"replies":[{"embeddable":true,"href":"https:\/\/my.vanderbilt.edu\/malujorge\/wp-json\/wp\/v2\/comments?post=6"}],"version-history":[{"count":20,"href":"https:\/\/my.vanderbilt.edu\/malujorge\/wp-json\/wp\/v2\/pages\/6\/revisions"}],"predecessor-version":[{"id":214,"href":"https:\/\/my.vanderbilt.edu\/malujorge\/wp-json\/wp\/v2\/pages\/6\/revisions\/214"}],"wp:attachment":[{"href":"https:\/\/my.vanderbilt.edu\/malujorge\/wp-json\/wp\/v2\/media?parent=6"}],"wp:term":[{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/my.vanderbilt.edu\/malujorge\/wp-json\/wp\/v2\/tags?post=6"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}