Bluer in the city: urban male lizards exhibit more intense sexual coloration and lower parasite loads than non-urban males

Juan C. GONZÁLEZ-MORALES , Jimena RIVERA-REA , Gabriel SUÁREZ-VARÓN , Elizabeth BASTIAANS , Heliot ZARZA

Integrative Zoology ›› 2025, Vol. 20 ›› Issue (4) : 894 -908.

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Integrative Zoology ›› 2025, Vol. 20 ›› Issue (4) : 894 -908. DOI: 10.1111/1749-4877.12908
ORIGINAL ARTICLE

Bluer in the city: urban male lizards exhibit more intense sexual coloration and lower parasite loads than non-urban males

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Abstract

Urbanization is a global phenomenon that involves the transformation of natural areas into urban spaces, thereby subjecting organisms to new selective pressures including a wide variety of pollutants and changes in intra- and interspecific interactions. Considering that projections indicate that by the year 2050, 65% of the human population will live in urban areas and that urbanization is a phenomenon with an upward pattern, identifying these phenotypic traits is vital to implementing conservation and management plans for urban fauna. The urban environment may exert different selective pressures on sexually selected traits than more pristine environments, a phenomenon which has been well studied in birds but is less understood in other vertebrates such as lizards, although they are common inhabitants of urban environments. Here, we compare sexual coloration, parasite load, and immune response in Sceloporus torquatus lizards in urban and non-urban environments of Central Mexico. Our study shows that sexual coloration is more saturated (bluer) in male lizards from urban environments, while UV chroma was higher in non-urban lizards. The average parasite load is lower in urban lizards than in non-urban lizards, and we found a negative relationship between hemoparasite count and sexual coloration in male lizards from non-urban environments but not in male lizards from urban environments. Additionally, non-urban lizards exhibited a higher immune response. In female lizards, sexual coloration differed significantly between urban and non-urban environments, but parasite load and immune response did not differ. These results may be useful to improve herpetofauna conservation plans in urbanized environments.

Keywords

hemoparasites / immune response / Sceloporus torquatus / sexual coloration / urbanization

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Juan C. GONZÁLEZ-MORALES, Jimena RIVERA-REA, Gabriel SUÁREZ-VARÓN, Elizabeth BASTIAANS, Heliot ZARZA. Bluer in the city: urban male lizards exhibit more intense sexual coloration and lower parasite loads than non-urban males. Integrative Zoology, 2025, 20(4): 894-908 DOI:10.1111/1749-4877.12908

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References

[1]

Amdekar MS, Kakkar A, Thaker M (2018). Measures of health provide insights into the coping strategies of urban lizards. Frontiers in Ecology and Evolution 6, 128.

[2]

Arnold EN (1986). Mite pockets of lizards, a possible means of reducing damage by ectoparasites. Biological Journal of the Linnean Society 29, 1-21.

[3]

Artim JM, Nicholson MD, Hendrick GC, Brandt M, Smith TB, Sikkel PC (2020). Abundance of a cryptic generalist parasite reflects degradation of an ecosystem. Ecosphere 11, e03268

[4]

Assis BA, Avery JD, Tylan C, Engler HI, Earley RL, Langkilde T (2021). Honest signals and sexual conflict: Female lizards carry undesirable indicators of quality. Ecology and Evolution 11, 7647-7659.

[5]

Baeckens S, Martín J, García-Roa R, Van Damme R (2018). Sexual selection and the chemical signal design of lacertid lizards. Zoological Journal of the Linnean Society 183, 445-457.

[6]

Batabyal A, Thaker M (2017). Signalling with physiological colours: High contrast for courtship but speed for competition. Animal Behaviour 129, 229-236.

[7]

Batabyal A, Thaker M (2019). Social coping styles of lizards are reactive and not proactive in urban areas. General and Comparative Endocrinology 270, 67-74.

[8]

Battles AC, Moniz M, Kolbe JJ (2018). Living in the big city: Preference for broad substrates results in niche expansion for urban Anolis lizards. Urban Ecosystems 21, 1087-1095.

[9]

Beeching SC, Gross SH, Bretz HS, Hariatis E (1998). Sexual dichromatism in convict cichlids: The ethological significance of female ventral coloration. Animal Behavior 56, 1021-1026.

[10]

Biard C, Brischoux F, Meillère A et al. (2017). Growing in cities: An urban penalty for wild birds? A study of phenotypic differences between urban and rural great tit chicks (Parus major). Frontiers in Ecology and Evolution 5, 79.

[11]

Bradley CA, Altizer S (2007). Urbanization and the ecology of wildlife diseases. Trends in Ecology and Evolution 22, 95-102.

[12]

Brum PHR, Gonçalves SRA, Strüssmann C, Teixido AL (2023). A global assessment of research on urban ecology of reptiles: Patterns, gaps and future directions. Animal Conservation 26, 1-13.

[13]

Buchinger TJ, Li W (2023). Chemical communication and its role in sexual selection across Animalia. Communications Biology 6, 1178.

[14]

Burtt EH (1979). The Behavioral Significance of Color. Garland Press, New York

[15]

Calegaro-Marques C, Amato SB (2014). Urbanization breaks up host-parasite interactions: A case study on parasite community ecology of rufous-bellied thrushes (Turdus rufiventris) along a rural-urban gradient. PLoS ONE 9, e103144.

[16]

Candolin U, Heuschele J (2008). Is sexual selection beneficial during adaptation to environmental change? Trends in Ecology and Evolution 23, 446-452.

[17]

Civitello DJ, Cohen J, Fatima H et al. (2015). Biodiversity inhibits parasites: Broad evidence for the dilution effect. PNAS 112, 8667-8671.

[18]

Collins MK, Magle SB, Gallo T (2021). Global trends in urban wildlife ecology and conservation. Biological Conservation 261, 109236.

[19]

Cooper WE (1997). Escape by a refuging prey, the Broad-Headed Skink (Eumeces laticeps). Canadian Journal of Zoology 75, 943-947.

[20]

Cooper WE, Burns N (1987). Social significance of ventrolateral coloration in the fence lizard, Sceloporus undulatus. Animal Behavior 35, 526-532.

[21]

Dauwe T, Eens M (2008). Melanin-and carotenoid-dependent signals of great tits (Parus major) relate differently to metal pollution. Naturwissenschaften 95, 969-973.

[22]

Delgado VCA, French K (2012). Parasite-bird interactions in urban areas: Current evidence and emerging questions. Landscape and Urban Planning 105, 5-14.

[23]

Dirzo R, Young HS, Galetti M, Ceballos G, Isaac NJB, Collen B (2014). Defaunation in the anthropocene. Science 345, 401-406.

[24]

Dobson AP, Pacala SV, Roughgarden JD, Carper ER, Harris EA (1992). The parasites of Anolis lizards in the northern Lesser Antilles: I. Patterns of distribution and abundance. Oecologia 91, 110-117.

[25]

Eötvös CB, Magura T, Lövei GL (2018). A meta-analysis indicates reduced predation pressure with increasing urbanization. Landscape and Urban Planning 180, 54-59.

[26]

Feria-Ortiz M, Nieto-Montes de Oca A, Salgado-Ugarte IH (2001). Diet and reproductive biology of the viviparous lizard Sceloporus torquatus torquatus (Squamata: Phrynosomatidae). Journal of Herpetology 35, 104-112.

[27]

Francis CD, Ortega CP, Cruz A (2011). Noise pollution filters bird communities based on vocal frequency. PLoS ONE 6, e27052.

[28]

French SS, Fokidis HB, Moore MC (2008). Variation in stress and innate immunity in the tree lizard (Urosaurus ornatus) across an urban-rural gradient. Journal of Comparative Physiology B 178, 997-1005.

[29]

French SS, Webb AC, Hudson SB, Virgin EE (2014). Town and country reptiles: A review of reptilian responses to urbanization. Integrative and Comparative Biology 58, 948-966.

[30]

Fricke JM, Vardo-Zalik AM, Schall JJ (2010). Geographic genetic differentiation of a malaria parasite, Plasmodium mexicanum, and its lizard host, Sceloporus occidentalis. Journal of Parasitology 96, 308-313.

[31]

Garland T, Losos JB (1994). Ecological morphology of locomotor performance in squamate reptiles. In: Wainwright PC, Reilly SM, eds. Ecological Morphology: Integrative Organismal Biology. University of Chicago Press, Chicago, IL, pp. 240-302.

[32]

Giraudeau M, Mousel M, Earl S, McGraw K (2014). Parasites in the city: Degree of urbanization predicts poxvirus and coccidian infections in house finches (Haemorhous mexicanus). PLoS ONE 9, e86747.

[33]

Gómez-Benitez A, Walker JM, López-Moreno AE, Hernández-Gallegos O (2021). The influence of urbanization on morphological traits in the Balsas Basin Whiptail lizard (Aspidoscelis costatus costatus). Urban Ecosystems 24, 327-333.

[34]

Gómez-Llano M, Narasimhan A, Svensson EI (2020). Male-male competition causes parasite-mediated sexual selection for local adaptation. The American Naturalist 196, 344-354.

[35]

González-Morales JC, Quintana E, Díaz-Albiter H, Guevara-Fiore P, Fajardo V (2015). Is erythrocyte size a strategy to avoid hypoxia in Wiegmann's Torquate Lizards (Sceloporus torquatus)? Field evidence. Canadian Journal of Zoology 93, 377-382.

[36]

González-Morales JC, Rivera-Rea J, Moreno-Rueda G, Bastiaans E, Castro-López M, Fajardo V (2021). Fast and dark: The case of Mezquite lizards at extreme altitude. Journal of Thermal Biology 102, 103115.

[37]

González-Morales JC, Rivera-Rea J, Moreno-Rueda G, Plasman M, Quintana E, Bastiaans E (2024). Seasonal and altitudinal variation in dorsal skin reflectance and thermic rates in a high-altitude montane lizard. International Journal of Biometeorology 68, 1421-1435.

[38]

Grunst ML, Grunst AS, Pinxten R, Bervoets L, Eens M (2020). Carotenoid-but not melanin-based plumage coloration is negatively related to metal exposure and proximity to the road in an urban songbird. Environmental Pollution 256, 113473.

[39]

Guzmán-Cornejo C, García-Prieto L, Zúñiga-Vega J (2018). First quantitative data on the ectoparasites mites of Sceloporus torquatus from the Ecological Reserve of Pedregal de San Angel in Central Mexico. Acarologia 55, 868-874.

[40]

Hamilton WD, Zuk M (1982). Heritable true fitness and bright birds: A role for parasites? Science 218, 384-387.

[41]

Hartig F (2021). DHARMa: residual diagnostics for hierarchical (multi-level/mixed) regression models, R Package Version 0.4.4. Available from URL: https://cran.r-project.org/web/packages/DHARMa/index.html

[42]

Iglesias S, Tracy C, Bedford G, Christian K (2012). Habitat differences in body size and shape of the Australian agamid lizard, Lophognathus temporalis. Journal of Herpetology 46, 297-303.

[43]

Iglesias-Carrasco M, Duchêne DA, Head ML, Møller AP, Cain K (2019). Sex in the city: Sexual selection and urban colonization in passerines. Biology Letters 15, 20190257.

[44]

Jackman S (2012). pscl: classes and methods for R developed in the political science computational laboratory, R Package Version 1.04.1. Stanford University, Stanford, CA. Available from URL: http://pscl.stanford.edu/.

[45]

Jeon DJ, Paik S, Ji S, Yeo JS (2021). Melanin-based structural coloration of birds and its biomimetic applications. Applied Microscopy 51, 14.

[46]

Kang F, Goulet CT, Chapple DC (2018). The impact of urbanization on learning ability in an invasive lizard. Biological Journal of the Linnean Society 123, 55-62.

[47]

Kraaijeveld K, Kraaijeveld-Smit FJL, Komdeur J (2007). The evolution of mutual ornamentation. Animal Behavior 74, 657-677.

[48]

Labocha MK, Schutz H, Hayes JP (2014). Which body condition index is best? Oikos 123, 111-9.

[49]

Langkilde T, Boronow KE (2012). Hot boys are blue: Temperature-dependent color change in male eastern fence lizards. Journal of Herpetology 46, 461-465.

[50]

Laskey JW, Phelps PV (1991). Effect of cadmium and other metal cations on in vitro Leydig cell testosterone production. Toxicology and applied pharmacology 108, 296-306.

[51]

Lazić MM, Carretero MA, Živković U, Crnobrnja-Isailović J (2017). City life has fitness costs: Reduced body condition and increased parasite load in urban common wall lizards, Podarcis muralis. Salamandra 53, 10-17.

[52]

Le Gros A, Stracey CM, Robinson SK (2011). Associations between Northern Mockingbirds and the parasite Philornis porteri in relation to urbanization. The Wilson Journal of Ornithology 123, 788-796.

[53]

Le Roux DS, Ikin K, Lindenmayer DB, Blanchard W, Manning AD, Gibbons P (2014). Reduced availability of habitat structures in urban landscapes: implications for policy and practice. Landscape and Urban Planning 125, 57-64.

[54]

Lenth R (2018). emmeans: estimated marginal means, aka least-squares means. v 1.2.2. Available from URL: https://rvlenth.github.io/emmeans/

[55]

Leveau L (2021). United colours of the city: A review about urbanisation impact on animal colours. Austral Ecology 46, 670-679.

[56]

López P, Gabirot M, Martín J (2009). Immune challenge affects sexual coloration of male Iberian wall lizards. Journal of Experimental Zoology A 311, 96-104

[57]

Lüdtke DU, Foerster K (2019). A female color ornament honestly signals fecundity. Frontiers in Ecology and Evolution 7, 432.

[58]

Macotela L, Naya DE, González-Morales JC, Anaya M, Fajardo V, Manjarrez J (2023). Altitudinal variation in organ mass from three mountain systems: The case of mesquite lizard Sceloporus grammicus. Comparative Biochemistry and Physiology Part A 281, 111426.

[59]

Maia R, Eliason CM, Bitton PP, Doucet SM, Shawkey MD (2013). pavo: An R package for the analysis, visualization and organization of spectral data. Methods in Ecology and Evolution 4, 906-913.

[60]

Marín-Gómez OH, MacGregor-Fors I (2021). A global synthesis of the impacts of urbanization on bird dawn choruses. Ibis 163, 1133-1154.

[61]

Martín J, Amo L, López P (2008). Parasites and health affect multiple sexual signals in male common wall lizards, Podarcis muralis. The Science of Nature 95, 293-300.

[62]

Martin LB, Hopkins WA, Mydlarz LD, Rohr JR (2010). The effects of anthropogenic global changes on immune functions and disease resistance. Annals of the New York Academy Sciences 1195, 129-48.

[63]

Marzluff JM, Bowman R, Donnelly R, eds (2001). Avian Ecology and Conservation in an Urbanized World. Springer, New York.

[64]

McGraw KJ (2006a). Mechanics of carotenoid-based coloration. In: Hill GE, McGraw KJ, eds. Bird Coloration, vol. 1 Mechanisms and Measurements. Harvard University Press, Cambridge, MA, pp. 177-242.

[65]

McGraw KJ (2006b). Mechanisms of melanin-based coloration. In: Hill GE, McGraw KJ, eds. Bird Coloration: Mechanisms and Measurements. Harvard University Press, Cambridge, MA, pp. 243-294.

[66]

McKinney ML (2008). Effects of urbanization on species richness: A review of plants and animals. Urban Ecosystems 11, 161-76.

[67]

McLean CA, Stuart-Fox D, Moussalli A (2015). Environment, but not genetic divergence, influences geographic variation in colour morph frequencies in a lizard. BMC Evolutionary Biology 15, 156.

[68]

Megía-Palma R, Barrientos R, Gallardo M, Martínez J, Merino S (2021). Brighter is darker: The Hamilton-Zuk hypothesis revisited in lizards. Biological Journal of the Linnean Society 134, 461-473.

[69]

Megía-Palma R, Martínez J, Merino (2016). Structural- and carotenoid-based throat colour patches in males of Lacerta schreiberi reflect different parasitic diseases. Behavioral Ecology and Sociobiology 70, 2017-2025.

[70]

Megía-Palma R, Paranjpe D, Reguera S et al. (2018). Multiple color patches and parasites in Sceloporus occidentalis: differential relationships by sex and infection. Current Zoology 64, 703-711.

[71]

Mendoza-Roldan JA, Mendoza-Roldan MA, Otranto D (2021). Reptile vector-borne diseases of zoonotic concern. International Journal for Parasitology: Parasites and Wildlife 15, 132-142.

[72]

Merino S, Potti J (1995). High prevalence of hematozoa in nestlings of a passerine species, the pied flycatcher, Ficedula hypoleuca. Auk 112, 1041-1043.

[73]

Meylan S, Richard M, Bauer S, Haussy C, Miles D (2013). Costs of mounting an immune response during pregnancy in a lizard. Physiological and Biochemical Zoology 86, 127-136.

[74]

Miranda AC, Schielzeth H, Sonntag T, Partecke J (2013). Urbanization and its effects on personality traits: A result of microevolution or phenotypic plasticity? Global Change Biology 19, 2634-2644.

[75]

Nemeth E, Brumm H (2010). Birds and anthropogenic noise: Are urban songs adaptive? The American Naturalist 176, 465-475.

[76]

Nordberg EJ, Schwarzkopf L (2019). Heat seekers: A tropical nocturnal lizard uses behavioral thermoregulation to exploit rare microclimates at night. Journal of Thermal Biology 82, 107-114.

[77]

Pacyna AD, Ruman M, Mazerski J, Polkowska Ż (2018). Biological responses to environmental contamination. How can metal pollution impact signal honesty in avian species? Ecology and Evolution 8, 7733-7739.

[78]

Pellitteri-Rosa D, Bellati A, Cocca W, Gazzola A, Martín J, Fasola M (2017). Urbanization affects refuge use and habituation to predators in a polymorphic lizard. Animal Behaviour 123, 359-367.

[79]

Pérez i de Lanuza G, Font E, Carazo P (2013). Color-assortative mating in a color-polymorphic lacertid lizard. Behavioral Ecology 24, 273-279.

[80]

Plasman M, Reynoso VH, Nicolás L, Torres R (2015). Multiple colour traits signal performance and immune response in the Dickerson's collared lizard Crotaphytus dickersonae. Behavioral Ecology and Sociobiology 69, 765-775.

[81]

Prosser C, Hudson S, Thompson MB (2006). Effects of urbanization on behavior, performance, and morphology of the garden skink, Lampropholis guichenoti. Journal of Herpetology 40, 151-159.

[82]

Putman BJ, Gasca M, Blumstein DT, Pauly GB (2019). Downsizing for downtown: Limb lengths, toe lengths, and scale counts decrease with urbanization in western fence lizards (Sceloporus occidentalis). Urban Ecosystems 22, 1071-1081.

[83]

Putman BJ, Tippie ZA (2020). Big city living: A global meta-analysis reveals positive impact of urbanization on body size in lizards. Frontiers in Ecology and Evolution 8, 580745.

[84]

Quinn GP, Keough MJ (2002). Experimental Design and Data Analysis for Biologists. Cambridge University Press, Cambridge.

[85]

R Develpment Core Team (2017). A Language and Environment for Statistical Computing. R Foundation for Statistical Computing, Vienna, Austria. Available from URL: http://www.R-project.org.

[86]

Radovanović TB, Petrović TG, Gavrilović BR et al. (2023). What coloration brings: Implications of background adaptation to oxidative stress in anurans. Frontiers in Zoology 20, 6.

[87]

Riley SPD, Serieys LEK, Moriarty JG (2014). Infectious disease and contaminants in urban wildlife: Unseen and often overlooked threats. In: McCleery RA, Moorman CE, Peterson MN, eds. Urban Wildlife Conservation: Theory and Practice. Springer, Boston, MA, pp. 175-215.

[88]

Rivera-Rea J, González-Morales JC, Bastiaans E, Fajardo V (2018). Sceloporus torquatus (Torquate Lizard). Selected body temperature. Herpetological Review 49, 490.

[89]

Rivera-Rea J, González-Morales JC, Fajardo V, Megía-Palma R, Bastiaans E, Manjarrez J (2022). Phenological variation in parasite load and inflammatory response in a lizard with an asynchronous reproductive cycle. The Science of Nature 109, 34

[90]

Rivera-Rea J, González-Morales JC, Megia-Palma R, Bastiaans E, Quintana E, Manjarrez J (2024). Seasonal changes in color patches and parasite load of male Torquate lizard (Sceloporus torquatus). Behavioral Ecology and Sociobiology 78, 27.

[91]

Rogier É, Landau I (1975). Description de Schellackia golvani n. sp. (Lankesterellidae), parasite de Lézards de Guadeloupe. Bulletin de Muséum National d´Histoire Naturale 284, 91-97.

[92]

Roulin A (2016). Condition-dependence, pleiotropy and the handicap principle of sexual selection in melanin-based colouration. Biological Reviews 91, 328-348.

[93]

Salathé M, Kouyos RD, Regoes RR, Bonohoeffer S (2008). Rapid parasite adaptation drive selection for high recombination rates. Evolution 62, 295-300

[94]

Salvador A, Veiga JP, Civantos E (1999). Do skin pockets of lizards reduce the deleterious effects of ectoparasites? An experimental study with Psammodromus algirus. Herpetologica 1999, 1-7.

[95]

Schall JJ (1986). Prevalence and virulence of a haemogregarine parasite of the Aruban whiptail lizard, Cnemidophorus arubensis. Journal of Herpetology 20, 318-324.

[96]

Schall JJ (1992). Parasite-mediated competition in Anolis lizards. Oecologia 92, 58-64.

[97]

Schulte-Hostedde AI, Zinner B, Millar JS, Hickling GJ (2005). Restitution of mass-size residuals: validating body condition indices. Ecology 86, 155-163.

[98]

Shuster SM (2009). Sexual selection and mating systems. PNAS 106, 10009-10016.

[99]

Sears MW (2005). Resting metabolic expenditure as a potential source of variation in growth rates of the sagebrush lizard. Comparative Biochemistry and Physiology A 140, 171-177.

[100]

Slabbekoorn H, den Boer-Visser A (2006). Cities change the songs of birds. Current Biology 16, 2326-2331.

[101]

Slabbekoorn H, Peet M (2003). Birds sing at a higher pitch in urban noise. Nature 424, 267-267.

[102]

Smit JA, Cronin AD, van der Wiel I, Oteman B, Ellers J, Halfwerk W (2022). Interactive and independent effects of light and noise pollution on sexual signaling in frogs. Frontiers in Ecology and Evolution 10, 934661.

[103]

Smits JE, Bortolotti GR, Tella JL (1999). Simplifying the phytohaemagglutinin skin-testing technique in studies of avian immunocompetence. Functional Ecology 13, 567-572.

[104]

Smyth AK, Smee E, Godfrey SS, Crowther M, Phalen D (2014). The use of body condition and haematology to detect widespread threatening processes in sleepy lizards (Tiliqua rugosa) in two agricultural environments. Royal Society Open Science 1, 140257.

[105]

Sol D, González-Lagos C, Lapiedra O, Díaz M (2017). Why are exotic birds so successful in urbanized environments? In: Murgui E, Hedblom M, eds. Ecology and Conservation of Birds in Urban Environments. Springer, Cham, pp. 75-89.

[106]

Sol D, Griffin AS, Bartomeus I, Boyce H (2011). Exploring or avoiding novel food resources? The novelty conflict in an invasive bird. PLoS ONE 6, e19535.

[107]

Sol D, Lapiedra O, González-Lagos C (2013). Behavioural adjustments for a life in the city. Animal Behavior 85, 1101-1112.

[108]

Steiger S, Schmitt T, Schaefer HM (2011). The origin and dynamic evolution of chemical information transfer. Proceedings of the Royal Society of London B: Biological Sciences 278, 970-979.

[109]

Suárez-Rodríguez M, López-Rull I, Macías-García C (2013). Incorporation of cigarette butts into nests reduces nest ectoparasite load in urban birds: New ingredients for an old recipe? Biology Letters 9, 20120931.

[110]

Suárez-Rodríguez M, Montero-Montoya RD, Macías Garcia C (2017). Anthropogenic nest materials may increase breeding costs for urban birds. Frontiers in Ecology and Evolution 5, 2017.

[111]

Svensson E, Sinervo B, Comendant T (2001). Density-dependent competition and selection on immune function in genetic lizard morphs. PNAS 98, 12561-12565.

[112]

Thawley CJ, Moniz HA, Merritt AJ, Battles AC, Michaelides SN, Kolbe JJ (2019). Urbanization affects body size and parasitism but not thermal preferences in Anolis lizards. Journal of Urban Ecology 5, juy031.

[113]

Tucker DB, McBrayer LD, Harrison JS (2014). Population structure of Florida scrub lizard (Sceloporus woodi) in an anthropogenically fragment forest. Herpetologica 70, 266-278.

[114]

United Nations (2019). World Urbanization Prospects: The 2018 Revision. United Nations, New York.

[115]

Vanhooydonck B, Van Damme R (1999). Evolutionary relationship between body shape and habitat use in lacertid lizards. Evolutionary Ecology Research 1, 785-805.

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