Physical characteristics and age structure of Mongolian racerunner (Eremias argus; Larcertidae; Reptilia)

Similar documents
Habitat Use, Home Range, and Hibernaculum of the Mongolian Racerunner, Eremias argus (Lacertidae, Reptilia) in a Coastal Sand Dune in South Korea

Seasonal Shifts in Reproductive Investment of Female Northern Grass Lizards ( Takydromus septentrionalis

Phenotypic Effects of Thermal Mean and Fluctuations on Embryonic Development and Hatchling Traits in a Lacertid Lizard, Takydromus septentrionalis

Maternal Thermal Effects on Female Reproduction and Hatchling Phenotype in the Chinese Skink (Plestiodon chinensis)

A Population Analysis of the Common Wall Lizard Podarcis muralis in Southwestern France

Reproductive Strategy and Cycle of the Toad-headed Agama Phrynocephalus grumgrzimailoi (Agamidae) in Xinjiang, China

Phenotypic Plasticity in Embryonic Development of Reptiles: Recent Research and Research Opportunities in China

University of Canberra. This thesis is available in print format from the University of Canberra Library.

A description of an Indo-Chinese rat snake (Ptyas korros [Schlegel, 1837]) clutch, with notes on an instance of twinning

Maturity and Other Reproductive Traits of the Kanahebi Lizard Takydromus tachydromoides (Sauria, Lacertidae) in Mito

Wen SHEN 1, Jianchi PEI 2, Longhui LIN 3* and Xiang JI Introduction

VERTEBRATA PALASIATICA

Sheikh Muhammad Abdur Rashid Population ecology and management of Water Monitors, Varanus salvator (Laurenti 1768) at Sungei Buloh Wetland Reserve,

Consequences of Extended Egg Retention in the Eastern Fence Lizard (Sceloporus undulatus)

Lacerta vivipara Jacquin

Sexual Dimorphism, Female Reproductive Characteristics and Egg Incubation in an Oviparous Forest Skink (Sphenomorphus incognitus) from South China

Sex identification of juvenile sand lizards, Lacerta agilis using digital images

Reproductive ecology of Sichuan digging frogs (Microhylidae: Kaloula rugifera)

A comparison of placental tissue in the skinks Eulamprus tympanum and E. quoyii. Yates, Lauren A.

Weaver Dunes, Minnesota

Evolution of viviparity in warm-climate lizards: an experimental test of the maternal manipulation hypothesis

Five-year monitoring of herpetofauna in Woraksan National Park

Phenotypic Responses of Hatchlings to Constant Versus Fluctuating Incubation Temperatures in the Multi-banded Krait, Bungarus multicintus (Elapidae)

Tail Autotomy Does Not Increase Locomotor Costs in the Oriental Leaf-toed Gecko Hemidactylus bowringii

EFFECTS OF CROWDING ON REPRODUCTIVE TRAITS OF WESTERN FENCE LIZARDS, SCELOPORUS OCCIDENTALIS

Effects of Thermal and Hydric Conditions on Egg Incubation and Hatchling Phenotypes in Two Phrynocephalus Lizards

reproductive life History and the effects of sex and season on morphology in CRoTALus oreganus (northern PaCifiC RATTLESNAKES)

SEXUAL DIMORPHISM IN HEAD SIZE IN THE LITTLE BROWN SKINK (SCINCELLA LATERALIS)

Viviparity in high altitude Phrynocephalus lizards is adaptive because embryos cannot fully develop without maternal thermoregulation

COMPARING BODY CONDITION ESTIMATES OF ZOO BROTHER S ISLAND TUATARA (SPHENODON GUNTHERI) TO THAT OF THE WILD, A CLINICAL CASE

phenotypes of hatchling lizards, regardless of overall mean incubation temperature

Report of a Dicephalic Steppes Ratsnake (Elaphe dione) Collected in South Korea

Sexual size dimorphism in Ophisops elegans (Squamata: Lacertidae) in Iran

Writing: Lesson 31. Today the students will be learning how to write more advanced middle paragraphs using a variety of elaborative techniques.

AOKJI- ~a &Jn?apc~a~a we- Ha H a m Comptes rendus de l'acad6mie bulgare des Sciences

Gulf and Caribbean Research

4 Many species of mammals, birds, reptiles, amphibians and fish 940L. Source 1 Habitats

Station 1 1. (3 points) Identification: Station 2 6. (3 points) Identification:

Lizard malaria: cost to vertebrate host's reproductive success

Geographic variation in lizard phenotypes: importance of the incubation environment

Dipsas trinitatis (Trinidad Snail-eating Snake)

Incubation temperature and phenotypic traits of Sceloporus undulatus: implications for the northern limits of distribution

Spatial Ecology of Translocated and Resident Amur Ratsnakes (Elaphe schrenckii) in Two Mountain Valleys of South Korea

SEXUAL DIMORPHISM IN BODY SHAPE WITHOUT SEXUAL DIMORPHISM IN BODY SIZE IN WATER SKINKS (EULAMPRUS QUOYII)

ARTICLE IN PRESS. Zoology 113 (2010) 33 38

Survivorship. Demography and Populations. Avian life history patterns. Extremes of avian life history patterns

Density, growth, and home range of the lizard Uta stansburiana stejnegeri in southern Dona Ana County, New Mexico

Supporting Online Material for

Parthenogenesis in Varanus ornatus, the Ornate Nile Monitor.

Evidence of high longevity in an Island lacertid, Teira dugesii (Milne-Edwards, 1829). First data on wild specimens

Effects of nest temperature and moisture on phenotypic traits of hatchling snakes (Tropidonophis mairii, Colubridae) from tropical Australia

DOES VIVIPARITY EVOLVE IN COLD CLIMATE REPTILES BECAUSE PREGNANT FEMALES MAINTAIN STABLE (NOT HIGH) BODY TEMPERATURES?

FEMALE PHENOTYPE, LIFE HISTORY, AND REPRODUCTIVE SUCCESS IN FREE-RANGING SNAKES (TROPIDONOPHIS MAIRII)

A Comparison of morphological differences between Gymnophthalmus spp. in Dominica, West Indies

Outline. Identifying Idaho Amphibians and Reptiles

Male Reproductive Success and Intrasexual Selection in the Common Lizard Determined by DNA-microsatellites

Effects of Incubation Temperature on Growth and Performance of the Veiled Chameleon (Chamaeleo calyptratus)

ECOLOGICAL ASPECTS ON LIZARD POPULATIONS FROM OBCINELE BUCOVINEI (SUCEAVA)

Managing Uplands with Keystone Species. The Case of the Gopher tortoise (Gopherus polyphemus)

Fact Sheet: Oustalet s Chameleon Furcifer oustaleti

Reptile Identification Guide

Objectives: Outline: Idaho Amphibians and Reptiles. Characteristics of Amphibians. Types and Numbers of Amphibians

Chameleons: Biology, Husbandry and Disease Prevention. Paul Stewart, DVM. Origin: Africa (40% of species) and Madagascar (40% of species)

Nest Site Preference and Fidelity of Chinese Alligator (Alligator sinensis)

Field Herpetology Final Guide

Status of the Nile Monitor in South Florida. Todd Campbell, Ph.D., Assistant Professor Department of Biology, University of Tampa

JoJoKeKe s Herpetology Exam

Egyptian vulture (Neophron percnopterus) research & monitoring Breeding Season Report- Beypazarı, Turkey

7 CONGRESSO NAZIONALE

Transfer of the Family Platysternidae from Appendix II to Appendix I. Proponent: United States of America and Viet Nam. Ref. CoP16 Prop.

British Reptiles. By Sue Searle

Short-term Water Potential Fluctuations and Eggs of the Red-eared Slider Turtle (Trachemys scripta elegans)

Reproductive traits of the gray ratsnake Ptyas korros from three geographically distinct populations

PHENOTYPES AND SURVIVAL OF HATCHLING LIZARDS. Daniel A. Warner. MASTER OF SCIENCE in Biology

*Using the 2018 List. Use the image below to answer question 6.

Relationship between hatchling length and weight on later productive performance in broilers

The second leading cause of biodiversity

Temperature acclimation affects thermal preference and tolerance in three Eremias lizards ( Lacertidae)

Wild Fur Identification. an identification aid for Lynx species fur

DECREASED SPRINT SPEED AS A COST OF REPRODUCTION IN THE LIZARD SCELOPORUS OCCIDENTALS: VARIATION AMONG POPULATIONS

The tailed frog has been found from sea level to near timberline ( m; Province of BC 1999).

The captive maintenance and breeding of. Diporiphora winneckei (Cane grass dragon) at the Alice Springs Desert Park.

THE JAPANESE CRANE. endangered species L ARCHE PHOTOGRAPHIQUE CHARACTERISTICS

ILLINOI PRODUCTION NOTE. University of Illinois at Urbana-Champaign Library Large-scale Digitization Project, 2007.

Unhatched and Hatched Eggshells of the Chinese Cobra Naja atra

WATER plays an important role in all stages

Session Fur & Wool. Qian Q.X., Ma J.X., Zhang G.Z., Xie C.S., Ren L., Qian B.Q. BREEDING AND APPLICATION OF ZHEXI ANGORA RABBITS.

Study on Acoustic Features of Laying Hens Vocalization

Ecological Archives E A2

MATERNAL NEST-SITE CHOICE AND OFFSPRING FITNESS IN A TROPICAL SNAKE (TROPIDONOPHIS MAIRII, COLUBRIDAE)

Exterior egg quality as affected by enrichment resources layout in furnished laying-hen cages

THE concept that reptiles have preferred

An assesstnent of the itnportance of heathlands as habitats for reptiles

Effects of prey availability and climate across a decade for a desert-dwelling, ectothermic mesopredator. R. Anderson Western Washington University

Habitat use and Movement Patterns of the Viviparous Aquatic Snake, Oocatochus rufodorsatus, from Northeast Asia

Natural history of Xenosaurus phalaroanthereon (Squamata, Xenosauridae), a Knob-scaled Lizard from Oaxaca, Mexico

Title of Project: Distribution of the Collared Lizard, Crotophytus collaris, in the Arkansas River Valley and Ouachita Mountains

Influence of Incubation Temperature on Morphology, Locomotor Performance, and Early Growth of Hatchling Wall Lizards (Podarcis muralis)

Freshwater turtle trade in Hainan and suggestions for effective management

Embryonic oxygen enhances learning ability in hatchling lizards

Transcription:

Research Paper DOI: 10.5141/JEFB.2010.33.4.325 Journal of Ecology and Field Biology Physical characteristics and age structure of Mongolian racerunner (Eremias argus; Larcertidae; Reptilia) Ja-Kyoung Kim 1, Jae-Young Song 2, Jung-Hyun Lee 1 and Daesik Park 3,* 1 Department of Biological Science, Kangwon National University, Chuncheon 200-701, Korea 2 Korea National Park Research Institute, Korea National Park Service, Seoul 121-717, Korea 3 Division of Science Education, Kangwon National University, Chuncheon 200-701, Korea In this study, we have evaluated the physical characteristics of neonate, female, and male Mongolian racerunners (Eremias argus) and determined the age structure of a population of the species in a field located in Taean-gun, Chungnam, South Korea. The physical parameters of females and males, including snout-vent length (SVL), head length, head width, and body mass were found to be significantly interrelated. Male Mongolian racerunners exhibited significantly longer heads than the females, but other physical parameters, such as SVL, head width, and body mass did not differ between the female and male specimens. In the study population, the females ranged in age from two to eleven years old and the males ranged between two to eight years of age. The number of females and males, when separated into different age classes, did not differ within each age class. Male Mongolian racerunners evidenced greater SVL growth coefficients than the females, but asymptotic SVL did not differ between the females and males. Key words: age structure, endangered species, Eremias argus, lizard, morphology INTRODUCTION Like many other species, reptile species are declining throughout the world, and some of them are endangered (Gibbons et al. 2000). Based on the 2009 annual Red List report compiled by the International Union for Conservation of Nature and Natural Resources (IUCN), more than 470 reptile species are currently classified as endangered (IUCN 2009). In Korea, many reptile species are also in decline, although few results have been published in this regard (Song 2007). In order to successfully conserve or restore a particular species, knowledge of its life history and basic ecology, including physical characteristics of individuals and age structures of natural populations, is a matter of critical importance (Germano 1992, Andreone et al. 2005). Nevertheless, very few studies concerning reptile species have been conducted (Anderson and Vitt 1990, Shine and Charnov 1992); this is particularly true of reptile species in Korea. The Mongolian racerunner (Eremias argus) is a small lizard species belonging to family Lacertidae, Reptilia, and has been designated as an endangered species (category II) by the Korean Ministry of Environment since 2005. The range of the Mongolian racerunner encompasses the Korean peninsula, Mongolia, and certain areas of Russia and China (Zhao et al. 1999). Mongolian racerunners primarily inhabit grasslands near mountains, sand dunes formed along coastlines, or riparian areas along major Korean rivers, including the Nakdong and Han rivers (Kang and Yoon 1975). The total body length of adult Mongolian racerunners is approximately 150-200 mm (Kang and Yoon 1975). The dorsal surface of This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited. Received 30 June 2010, Accepted 30 September 2010 * Corresponding Author E-mail: parkda@kangwon.ac.kr Tel: +82-33-250-6739 Copyright The Ecological Society of Korea 325 http://jefb.org pissn: 1975-020X eissn: 2093-4521

the body is grayish or brown-gray, and that of the ventral surface is whitish or light brown (Kang and Yoon 1975). In China, this species has been studied to a certain extent, including studies of temperature effects on hatching rates and foraging behavior and differences in the activity levels of lizards reared under various temperature regimes (Hao et al. 2006, Luo et al. 2006, Wu et al. 2006, Zhao et al. 2008). However, no studies of this species have been conducted in Korea, despite the lizard s status as an endangered species. Skeletochronology has been used to determine the ages of many different amphibian and reptile species (Castanet and Baez 1988, 1991, Cheong et al. 2007, Lee and Park 2009, Lee et al. 2009) based on the number of lines of arrested growth appearing in cross-sectioned phalanges. Lines of arrested growth are formed as the result of different growth rates of phalange bones in active growing seasons relative to those in resting winter seasons (Patnaik 1994, Esteban et al. 2004). In lizards, it has been previously reported that ages estimated by skeletochronology deviate by one or two years from ages calculated via the mark-recapture method (Smirina and Tsellarius 1996). Nevertheless, skeletochronology has been frequently employed in reptile studies to determine age at sexual maturity, individual growth coefficients, and age structures of natural populations (Castanet and Baez 1988, Halliday and Verrell 1988, Roitberg and Smirina 2006). This method is rather attractive because several years are required to obtain adequate data via the markrecapture method. In this study, we evaluated the physical characteristics of neonate, female, and male Mongolia racerunners collected from a population located in Taean-gun, Chungcheongnam-do, South Korea, and determined the age structure of the population. MATERIALS AND METHODS On July 10, 2008 and June 11, 2009, we collected 67 female and 50 male Mongolian racerunners by hand or with an insect net in a natural population located in Baramare Beach (N 36 24 34.9, E 126 23 01.4 ), Taean-gun, Chungcheongnam-do, South Korea. The Baramare population is located on a small sand dune island (23 m long 17 m wide) approximately 50 m from the coastline. Magellan wheatgrass (Elymus mollis) and Smooth crabgrass (Ischaemum anthephoroides) are the predominant plants on the island. During ebb tides, the island is frequently connected by land to another pine-dominated island. Fig. 1. Phalangeal cross-section of a six-year-old male Eremias argus from the Baramare population. Each black arrow indicates a line of arrested growth (scale bar = 15 µm). Whenever we captured a lizard, we first determined the sex of the lizard based on the presence of a hemipenis (male) or bite marks on the abdomen (female). After sex determination, we measured the snout-vent length (SVL), head length, head width, and body mass of each lizard with a digital vernier caliper (M500-181; Mitutoyo, Tokyo, Japan) and a digital field balance (TMB 120-1; Kern, Wildeck, Germany) to the nearest 0.1 mm and 0.1 g, respectively. In order to determine the ages of individuals by skeletochronology, we clipped the outermost two segments of the central toe from the right hindlimb and individually preserved each in 10% neutral-buffered formalin. Skeletochronology was conducted according to the methods developed by Cheong et al. (2007) and Lee and Park (2009). First, we washed the clipped toes for 24 h in running tap water to clean them. We then softened the toe bone by submerging it for 4 h in 5% nitric acid. Subsequently, the dehydrated toes were paraffin-embedded and sectioned at a thickness of 15 μm using a rotary microtome (Erma, Tokyo, Japan). The collected sections were then stained with Harris hematoxylin & eosin and observed under a microscope. Growth zones and lines of arrested growth (LAGs) were clearly visible in the crosssections of the phalanges (Fig. 1). The number of LAGs was determined independently by two authors based on the methods developed by Cheong et al. (2007) and Lee and Park (2009). The two age estimates were compared to derive a consensus value for the age of each individual. To obtain SVL data for neonates, which was necessary to estimate the growth curves of the female and male Mongolian racerunners, we collected 10 pregnant DOI: 10.5141/JEFB.2010.33.4.325 326

Physical and age characteristics of Mongolian racerunner females from the Baramare field population on May 12, 2009 and brought them into the laboratory. We housed them in two plastic boxes (48 cm long 27 cm wide 30 cm deep) containing sand with a depth of 5-7 cm, wet paper towels that provided hiding places for the lizards, and a ceramic water container (5 cm diameter, 5 cm deep). Approximately 10 days after housing, the females began to oviposit eggs inside the sand. We successfully collected a total of 38 eggs. We placed the eggs in an incubator (35 cm long 20 cm wide 7 cm deep, PX-20R; Auto Elex Co., Ltd, Seoul, Korea) containing wet vermiculite at a depth of approximately 5 cm. The air temperature and relative humidity within the incubator were maintained at 27.5-29 o C and 80-90%, respectively, throughout the incubation period. After approximately 50 days of incubation, most of the eggs had successfully hatched. We measured the SVL, head length, head width, and body mass of 25 neonates using a digital vernier caliper and a digital balance five days after hatching. Growth curves of the female and male Mongolian racerunners were estimated by applying the growth curve model of von Bertalanffy (1938) to the SVL data for females and males recorded in the field and for neonates hatched in the laboratory. The von Bertalanffy model equation is S t = S m - (S m - S o ) e k (t - to), where S t = average SVL of females or males at age t, S m = asymptotic SVL of females or males, S 0 = average SVL of neonates, t = age of each individual, t 0 = age at which offspring hatch, and K = growth coefficient of female or male SVL (average growth rate of SVL per year). For the S o value, we used 26.6 mm (calculated from 25 neonates); for t o, we used 0.15 because the egg incubation period was approximately 50 days in this species. The von Bertalanffy growth model was fitted to the average growth curves using dynamic fitting in SigmaPlot ver. 10.0 (Systat Software Inc., Hounslow, UK). Among the physical parameter data, only the SVL data passed the normality test after square root data transformation (Kolmogorov-Smirnov, P > 0.05). As the majority of physical parameter data did not pass the normality test (Kolmogorov-Smirnov, P < 0.05), we analyzed the relationships among parameters via Spearman s correlation test. In order to determine whether the physical parameters differed between females and males, we employed an independent sample t-test for the SVL data and the analysis of covariance (ANCOVA) for other physical parameters. In the ANCOVA of each physical parameter, the rest parameters were employed as covariates. In analyzing the age data, differences in the number of females and males based on different age classes were tested via chi-square tests. Differences between males and females in growth coefficients and asymptotic size were determined via independent sample t-tests using means and standard deviations estimated from the growth curves. All statistical analyses were conducted using SPSS ver. 16.0 (SPSS Inc., Chicago, IL, USA). RESULTS The SVLs of neonates, females, and males were approximately 26.6 mm, 49.2 mm, and 48.8 mm, respectively. Interestingly, the head lengths of the males were significantly greater than those of females (ANCOVA, F = 20.28, df = 1, P < 0.01), but SVL (t = 0.16, df = 115, P = 0.87), head width (ANCOVA, F = 1.69, df = 1, P = 0.20), and body mass (ANCOVA, F = 0.94, df = 1, P = 0.33) did not differ between the females and males (Table 1). In both females and males, relationships among the physical parameters SVL, head length, head width, and body mass were sig- Table 1. Comparison of physical parameters of neonate, female, and male Eremias argus Physical parameters Neonate (N = 25) (N = 67) Male (N = 50) SVL (mm) 26.6 ± 1.3 (24.4-29.8) 49.2 ± 1.2 (30.9-65.8) 48.8 ± 1.2 (32.3-63.7) Head width (mm) 5.0 ± 0.7 (4.5-7.9) 7.0 ± 0.1 (5.0-9.9) 7.4 ± 0.2 (5.4-14.2) Head length (mm) 7.7 ± 0.6 (5.3-8.4) 10.8 ± 0.2 (6.0-14.6) 12.0 ± 0.3 (8.8-19.0) Body mass (g) 0.7 ± 0.1 (0.4-1.1) 2.9 ± 0.2 (0.7-6.8) 3.1 ± 0.2 (0.9-7.0) Data are expressed as means ± standard error (range). SVL, snout-vent length. 327 http://jefb.org

No. of individual 12 Male 10 8 6 4 2 0 1 2 3 4 5 6 7 8 9 10 11 Age (years) Fig. 2. Age distribution of female and male Eremias argus in the Baramare population. Snout-vent length (mm) 80 70 60 50 40 30 20 0 1 2 3 4 5 6 7 8 9 10 11 Age (years) Male Fig. 3. Growth patterns of female and male Eremias argus in the Baramare population fitted to von Bertalanffy s equation (1938). The dashed line indicates males; the dotted line indicates females. S t = S m - (S m - 26.6) e k (t - 0.15). nificant in all comparisons made (Spearman correlation test, P < 0.01 for all cases) (Table 2). In the neonates, relationships between SVL and head width and between SVL and body mass were significant (Spearman correlation test, P < 0.01), whereas other comparisons were not significant (Spearman correlation test, P > 0.05). We successfully determined the ages of 38 females and 33 males among a total of 117 lizards, but were unable to determine the ages of 46 lizards due to a loss of sections during the skeletochronology process or incomplete staining of sections. The ages of the females ranged from two to eleven years (mean ± SE = 4.5 ± 0.4, N = 38), whereas those of males ranged from two to eight years (mean ± SE = 3.7 ± 0.3, N = 33) (Fig. 2). In both females and males, three-year-old lizards were the most abundant (Fig. 2). Although females over seven years of age were slightly more frequent than males of the same age, the number of females and males did not differ significantly within any age class (chi-square test, P > 0.05). In the growth curve analysis, the growth coefficient of males (0.26 ± 0.08) was higher than that of females (0.22 ± 0.04, t = 13.19, df = 69, P < 0.01), but asymptotic SVL did not differ significantly between females (70.1 ± 3.9 mm) and males (67.8 ± 7.4 mm) (t = 0.97, df = 69, P > 0.05) (Fig. 3). DISCUSSION In this study, we evaluated the physical characteristics of female and male Mongolian racerunners and determined the age structure of a natural population. The heads of the male lizards were significantly longer than those of the females, but no other physical parameters differed between the females and males. The ages of Table 2. Relationships among physical parameters of neonate, female, and male Eremias argus Physical parameters compared Neonate (N = 25) Spearman correlation coefficient (r) (N = 67) Male (N = 50) SVL Head width 0.491 * 0.872 ** 0.916 ** SVL Head length 0.312 0.843 ** 0.921 ** SVL Body mass 0.568 ** 0.975 ** 0.962 ** Head width Head length 0.262 0.706 ** 0.937 ** Head width Body mass 0.338 0.857 ** 0.952 ** Head length Body mass 0.235 0.856 ** 0.934 ** * P < 0.05, ** P < 0.01. SVL, snout-vent length. DOI: 10.5141/JEFB.2010.33.4.325 328

Physical and age characteristics of Mongolian racerunner the natural population of Mongolian racerunners tested herein ranged between two to eleven years, and the numbers of females and males did not differ within the different age classes. Although asymptotic SVL did not differ between females and males, the males evidenced a higher growth coefficient than the females. In lizards, sexual dimorphism is generally promoted by sexual selection and scarcely by natural selection such as food competition (Shine 1989, Vincent and Herrel 2007). Because the larger heads (usually both longer and wider) of male lizards may be a mechanism of relative advantage in male-male mating competitions and in subduing potential mates during mating (Olsson et al. 2002), the males of several species, including the Multiocellated racerunner (Eremias multiocellata), the Grass lizard (Takydromus septentrionalis), and the Common lizard (Zootoca vivipara) (Ji et al. 1998, Gvoždík and van Damme 2003, Li et al. 2006,) all generally have larger heads than the females of their respective species (Vitt 1983). For example, during mating, male E. multiocellata and T. septentrionalis often control the female by biting the female s tail or abdomen with their large mouth, which is seated in a relatively large head (Li et al. 2006, Du and Yao 2007). Although the mating behavior of the Mongolian racerunners has not been previously studied, male lizards may bite females abdomens during mating. We frequently observed bite marks on the abdomens of female lizards. However, a recent study of the dietary habits of this species demonstrated that the volume of food consumption did not differ between females and males, and also that the food consumption volume was unrelated to SVL and head width (Jeong and Song 2010). These results indicate that the large head size of male Mongolian racerunners might be a crucial factor in successful mating, and was probably promoted by sexual selection. On the other hand, unlike the results seen in other lizards (Gvoždík and van Damme 2003, Li et al. 2006, Du and Yao 2007), the head widths of male Mongolian racerunners did not differ from those of the females. It is possible that the sand-burrowing behavior of this species might constrain the growth of head widths in both females and males, although we are currently unaware of any studies having been conducted in this regard. Thus, further study is clearly warranted to elucidate in detail which factors are responsible for these results. In contrast to other lizard species in which females evidence longer SVL than males (Haenel and John-Alder 2002, Liu et al. 2008), our finding that SVL did not differ between female and male Mongolian racerunners implies that female body size may not constitute a reliable indicator of female fecundity. Similar results have been recently reported in studies of E. multiocellata (Li et al. 2006). In that species, females SVLs were not correlated with litter size, and explained only 19% of the variability in litter mass, thereby suggesting that selective pressure on large female SVL for high fecundity through sexual selection is quite low. Such low selective pressure on female SVL should not be sufficient to induce differences in SVL between females and males (Li et al. 2006). By way of contrast, in lizards such as the eastern fence lizard (Sceloporus undulatus) and the Viviparous lizard (Lacerta vivipara), female SVL is correlated strongly with clutch mass and clutch size, and females have longer SVLs than males (Haenel and John-Alder 2002, Liu et al. 2008). These results indicate that the fecundity of female Mongolian racerunners may be dependent on other factors, rather than on female SVL. Additional studies will be necessary to elucidate which factors are important determinants of female fecundity in this species. Based on our skeletochronological findings, the lifespan of Mongolian racerunners is approximately 10 years. This lifespan is greater than that of L. vivipara and S. undulatus (five years) but slightly shorter than that of L. agilis (12 years) (Tinkle and Ballinger 1972, Pilorge and Castanet 1981, Arnold 2002). Unfortunately, the longevity of other species in the genus Eremias, to the best of our knowledge, has yet to be determined. The age at sexual maturity of L. vivipara, L. agilis, and S. undulatus has been reported as three years, two years, and one year, respectively (Tinkle et al. 1970, Tinkle and Ballinger 1972). Considering that the age structure of our Mongolian racerunner population was quite similar to that of previously studied populations of L. agilis, it appears that some Mongolian racerunners might reach sexual maturity at two years of age. Additionally, our observations of many two- to four-year-old lizards in the tested population reveal that this population is demographically stable, and also show that the recruitment of new individuals is ongoing. The higher SVL growth coefficient of male Mongolian racerunners as determined in our study may explain, at least in part, the finding of greater head length in males relative to females. The results of previous studies have shown that male Eremias brenchleyi and T. septentrionalis have longer heads than females of the respective species. In these species, the heads of males grew in length more rapidly than the heads of females (Zhang and Ji 2000, Xu and Ji 2003). Considering that SVL is generally positively correlated with head length in lizards (Ekner et al. 2008), the greater SVL growth coefficient of males 329 http://jefb.org

should be responsible for their greater head length, particularly if asymptotic SVL does not differ between females and males. Since the SVL of Mongolian racerunner females and males was not found to be different in this study, the greater SVL growth coefficient of male Mongolian racerunners might influence physical characteristics other than SVL, such as head length, which might be the result of selection for successful mating. ACKNOWLEDGMENTS We would like to thank KS Koo, HJ Lee, NY Ra, and DI Kim for their help in the laboratory and field studies. All experimental procedures were conducted in accordance with the guidelines established by the Herpetological Animal Care and Use Committee (HACC) of the American Society of Ichthyologists and Herpetologists (2004) for the use of live amphibians and reptiles in field and laboratory research. This study was permitted and supported by the Korean Ministry of Environment, as part of "The Eco-Technopia 21 Project" (#052-091-080). LITERATURE CITED Anderson RA, Vitt LJ. 1990. Sexual selection versus alternative causes of sexual dimorphism in Teiid lizards. Oecologia 84: 145-157. Andreone F, Guarino FM, Randrianirina JE. 2005. Life history traits, age profile, and conservation of the panther chameleon, Furcifer pardalis (Cuvier 1829), at Nosy Be, NW Madagascar. Trop Zool 18: 209-225. Arnold N. 2002. Field Guide to Reptiles and Amphibians of Britain and Europe. Collins, London. Castanet J, Baez M. 1988. Data on age and longevity in Gallotia galloti (Sauria, Lacertidae) assessed by skeletochronology. Herpetol J 1: 218-222. Castanet J, Baez M. 1991. Adaptation and evolution in Gallotia lizards from the Canary Islands: age, growth, maturity and longevity. Amphibia-Reptilia 12: 81-102. Cheong S, Park D, Sung HC, Lee JH, Park SR. 2007. Skeletochronological age determination and comparative demographic analysis of two populations of the goldspotted pond frog (Rana chosenica). J Ecol Field Biol 30: 57-62. Du WG, Yao ZJ. 2007. Mating behavior of the Northern grass lizard, Takydromus septentrionalis. Chin J Zool 42: 7-12. Ekner A, Majláth I, Majláthová V, Hromada M, Bona M, Antczak M, Bogaczyk M, Tryjanowski P. 2008. Densities and morphology of two co-existing lizard species (Lacerta agilis and Zootoca vivipara) in extensively used farmland in Poland. Folia Biol (Krakow) 56: 165-171. Esteban M, Sánchez-Herráiz MJ, Barbadillo LJ, Castanet J. 2004. Age structure and growth in an isolated population of Pelodytes punctatus in northern Spain. J Nat Hist 38: 2789-2801. Germano DJ. 1992. Longevity and age-size relationships of populations of desert tortoises. Copeia 1992: 367-374. Gibbons JW, Scott DE, Ryan TJ, Buhlmann KA, Tuberville TD, Metts BS, Greene JL, Mills T, Leiden Y, Poppy S, Winne CT. 2000. The global decline of reptiles, déjà vu amphibians. BioScience 50: 653-666. Gvoždík L, van Damme R. 2003. Evolutionary maintenance of sexual dimorphism in head size in the lizard Zootoca vivipara: a test of two hypotheses. J Zool 259: 7-13. Haenel GJ, John-Alder HB. 2002. Experimental and demographic analyses of growth rate and sexual size dimorphism in a lizard, Sceloporus undulatus. Oikos 96: 70-81. Halliday TR, Verrell PA. 1988. Body size and age in amphibians and reptiles. J Herpetol 22: 253-265. Hao QL, Liu HX, Ji X. 2006. Phenotypic variation in hatchling Mongolian racerunners Eremias argus from eggs incubated at constant versus fluctuating temperatures. Acta Zool Sin 52: 1049-1057. IUCN. 2009. The IUCN Red List of threatened species 2009 update. http://www.iucn.org. Accessed 8 May 2010. Jeong JC, Song JY. 2010. Diet composition of the Korean leopard lizard, Eremias arugus (Reptilia: Lacertidae) in Taeanhaean National Park. J Nat Park Res 1: 9-12. Ji X, Zhou WH, Zhang XD, Gu HQ. 1998. Sexual dimorphism and reproduction in the grass lizard Takydromus septentrionalis. Russ J Herpetol 5: 44-48. Kang YS, Yoon IB. 1975. Illustrated Encyclopedia of Fauna and Flora of Korea, Vol. 17: Amphibia-Reptilia. Ministry of Education, Science and Technology, Seoul, pp 134-138. Lee HJ, Park D, Lee JH. 2009. Age structure and individual physical characteristics of a wrinkled frog, Rana rugosa (Anura: Ranidae), population located at Yangpyeonggun, Gyeonggi-do. Korean J Herpetol 1: 35-43. Lee JH, Park D. 2009. Effects of body size, operational sex ratio, and age on pairing by the Asian toad, Bufo stejnegeri. Zool Stud 48: 334-342. Li H, Ji X, Qu YF, Gao JF, Zhang L. 2006. Sexual dimorphism and female reproduction in the multi-ocellated racerunner Eremias multiocellata (Lacertidae). Acta Zool Sin 52: 250-255. Liu P, Zhao WG, Liu ZT, Dong BJ, Chen H. 2008. Sexual dimorphism and female reproduction in Lacerta vivipara DOI: 10.5141/JEFB.2010.33.4.325 330

Physical and age characteristics of Mongolian racerunner in northeast China. Asiatic Herpetol Res 11: 98-104. Luo LG, Qu YF, Ji X. 2006. Thermal dependence of food assimilation and sprint speed in a lacertid lizard Eremias argus from northern China. Acta Zool Sin 52: 256-262. Olsson M, Shine R, Wapstra E, Ujvari B, Madsen T. 2002. Sexual dimorphism in lizard body shape: the roles of sexual selection and fecundity selection. Evolution 56: 1538-1542. Patnaik BK. 1994. Concluding remarks and future prospects. Gerontology 40: 221-226. Pilorge T, Castanet J. 1981. Determination de l age dans une population naturelle du lezard vivipara (Lacerta vivipara Jacquin 1787). Acta Oecol 2: 3-16. Roitberg ES, Smirina EM. 2006. Age, body size and growth of Lacerta agilis boemica and L. strigata: a comparative study of two closely related lizard species based on skeletochronology. Herpetol J 16: 133-148. Shine R. 1989. Ecological causes for the evolution of sexual dimorphism: a review of the evidence. Q Rev Biol 64: 419-461. Shine R, Charnov EL. 1992. Patterns of survival, growth, and maturation in snakes and lizards. Am Nat 139: 1257-1269. Smirina EM, Tsellarius AY. 1996. Aging, longevity and growth of the desert monitor lizard (Varanus griseus Daud.). Russ J Herpetol 3: 130-142. Song JY. 2007. Current status and distribution of reptiles in the Republic of Korea. Korean J Environ Biol 25: 124-138. Tinkle DW, Ballinger RE. 1972. Sceloporus undulatus: a study of the intraspecific comparative demography of a lizard. Ecology 53: 570-584. Tinkle DW, Wilbur HM, Tilley SG. 1970. Evolutionary strategies in lizard reproduction. Evolution 24: 55-74. Vincent SE, Herrel A. 2007. Functional and ecological correlates of ecologically-based dimorphisms in squamate reptiles. Integ Comp Biol 47: 172-188. Vitt LJ. 1983. Reproduction and sexual dimorphism in the tropical Teiid lizard Cnemidophorus ocellifer. Copeia 1983: 359-366. von Bertalanffy L. 1938. A quantitative theory of organic growth (inquiries on growth laws II). Hum Biol 10: 181-213. Wu YL, Xu XF, Wu LS, Zhang JL. 2006. Embryonic use of material and energy and hatchling traits in the lacertid lizard Eremias argus. Acta Zool Sin 52: 1169-1173. Xu XF, Ji X. 2003. Ontogenetic shifts in sexual dimorphism in head size and food habits in the lacertid lizard, Eremias brenchleyi. Chin J Appl Ecol 14: 557-561. Zhang YP, Ji X. 2000. Ontogenetic changes of sexual dimorphism in head size and food habit in grass lizard, Takydromus septentrionalis. Zool Res 21: 181-186. Zhao EM, Zhao KT, Zhou KY. 1999. Fauna Sinica, Reptilia: Vol. 2. Squamata: Lacertilia. Science Press, Beijing, pp 219-242. (in Chinese) Zhao Q, Wang Z, Liu LL, Zhao WG, Ji X. 2008. Selected body temperature, surface activity and food intake in tailed versus tailless Mongolian racerunners Eremias argus from three populations. Acta Zool Sin 54: 60-66. 331 http://jefb.org