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	<front>
		<journal-meta>
			<journal-id journal-id-type="publisher-id">au</journal-id>
			<journal-title-group>
				<journal-title>Acta universitaria</journal-title>
				<abbrev-journal-title abbrev-type="publisher">Acta univ</abbrev-journal-title>
			</journal-title-group>
			<issn pub-type="ppub">0188-6266</issn>
			<issn pub-type="epub">2007-9621</issn>
			<publisher>
				<publisher-name>Universidad de Guanajuato, Dirección de Investigación y Posgrado</publisher-name>
			</publisher>
		</journal-meta>
		<article-meta>
			<article-id pub-id-type="doi">10.15174/au.2018.1667</article-id>
			<article-categories>
				<subj-group subj-group-type="heading">
					<subject>Articles</subject>
				</subj-group>
			</article-categories>
			<title-group>
				<article-title>Thermal ecology of the Rattlesnake <italic>Crotalus catalinensis</italic> from Santa Catalina Island, Gulf of California</article-title>
				<trans-title-group xml:lang="es">
					<trans-title>Ecología térmica en la serpiente de cascabel <italic>Crotalus catalinensis</italic> en Isla Santa Catalina, Golfo de California</trans-title>
				</trans-title-group>
			</title-group>
			<contrib-group>
				<contrib contrib-type="author">
					<name>
						<surname>Arnaud</surname>
						<given-names>Gustavo</given-names>
					</name>
					<xref ref-type="aff" rid="aff1">*</xref>
				</contrib>
				<contrib contrib-type="author">
					<name>
						<surname>Sandoval</surname>
						<given-names>Sarahi</given-names>
					</name>
					<xref ref-type="aff" rid="aff2">**</xref>
					<xref ref-type="corresp" rid="c1">º</xref>
				</contrib>
				<contrib contrib-type="author">
					<name>
						<surname>Escobar-Flores</surname>
						<given-names>Jonathan G.</given-names>
					</name>
					<xref ref-type="aff" rid="aff3">***</xref>
				</contrib>
				<contrib contrib-type="author">
					<name>
						<surname>Gomez-Muñoz</surname>
						<given-names>Victor M.</given-names>
					</name>
					<xref ref-type="aff" rid="aff4">****</xref>
				</contrib>
				<contrib contrib-type="author">
					<name>
						<surname>Burguete</surname>
						<given-names>Jose L.</given-names>
					</name>
					<xref ref-type="aff" rid="aff5">*****</xref>
				</contrib>
			</contrib-group>
			<aff id="aff1">
				<label>*</label>
				<institution content-type="original">Centro de Investigaciones Biológicas del Noroeste S.C.,México</institution>
				<institution content-type="normalized">Centro de Investigaciones Biológicas del Noroeste</institution>
				<institution content-type="orgname">Centro de Investigaciones Biológicas del Noroeste S.C.</institution>
				<country country="MX">Mexico</country>
			</aff>
			<aff id="aff2">
				<label>**</label>
				<institution content-type="original">CONACYT- Instituto Politécnico Nacional, CIIDIR Unidad Durango, Sigma 119, Fraccionamiento 20 de Noviembre II, Durango, Durango 34220, México.</institution>
				<institution content-type="orgname">CONACYT</institution>
				<addr-line>
					<state>Durango</state>
				</addr-line>
				<country country="MX">México</country>
			</aff>
			<aff id="aff3">
				<institution content-type="original">***Instituto Politécnico Nacional, CIIDIR Unidad Durango, México.</institution>
				<institution content-type="normalized">Instituto Politécnico Nacional</institution>
				<institution content-type="orgname">Instituto Politécnico Nacional</institution>
				<institution content-type="orgdiv1">CIIDIR Unidad Durango</institution>
				<country country="MX">Mexico</country>
			</aff>
			<aff id="aff4">
				<label>****</label>
				<institution content-type="original">CICIMAR- Instituto Politécnico Nacional, México.</institution>
				<institution content-type="orgname">CICIMAR</institution>
				<country country="MX">México</country>
			</aff>
			<aff id="aff5">
				<label>*****</label>
				<institution content-type="original">Facultad de Biología, Universidad Michoacana de San Nicolás de Hidalgo, México.</institution>
				<institution content-type="normalized">Universidad Michoacana de San Nicolás Hidalgo</institution>
				<institution content-type="orgname">Universidad Michoacana de San Nicolás de Hidalgo</institution>
				<country country="MX">Mexico</country>
			</aff>
			<author-notes>
				<corresp id="c1">°Autor de correspondencia <email>ssandoval@conacyt.mx</email>.</corresp>
			</author-notes>
			<pub-date pub-type="epub-ppub">
				<season>Nov-Dec</season>
				<year>2018</year>
			</pub-date>
			<volume>28</volume>
			<issue>6</issue>
			<fpage>39</fpage>
			<lpage>46</lpage>
			<history>
				<date date-type="received">
					<day>07</day>
					<month>11</month>
					<year>2016</year>
				</date>
				<date date-type="accepted">
					<day>09</day>
					<month>05</month>
					<year>2018</year>
				</date>
			</history>
			<permissions>
				<license license-type="open-access" xlink:href="https://creativecommons.org/licenses/by-nc/4.0/" xml:lang="en">
					<license-p>This is an open-access article distributed under the terms of the Creative Commons Attribution License</license-p>
				</license>
			</permissions>
			<abstract>
				<title>Abstract</title>
				<p>The body temperature of the Santa Catalina Island rattlesnake (<italic>Crotalus catalinensis</italic>) is reported for the first time. <italic>C. catalinensis</italic> presented a broad range of body temperature (13.6 °C - 38.2 °C ; <mml:math><mml:mover accent="true"><mml:mrow><mml:mi>X</mml:mi></mml:mrow><mml:mo>-</mml:mo></mml:mover></mml:math> = 25.9 °C; N = 65). The interval substrate temperature associated with the snakes is between 14.8 °C and 37.9 °C, while the ambient temperature ranges from 16.4 °C to 36.2 °C. A higher correlation was found between body temperature and substrate. No significant differences between sexes were observed. The lower active temperature recorded was during March (14.0 °C - 23.7 °C), while the highest temperature occurred in November (19.4 °C - 39.6 °C). The relative humidity recorded was between 53.15% and 77.32%. The open ground habitat without vegetation was the most frequented by snakes. It had been reported that <italic>C. catalinensis</italic> presented diurnal and nocturnal habits; however, we found that it exhibited only nocturnal habits, even during winter periods. <italic>C. catalinensis</italic> exhibited, like other rattlesnakes, thermo-conformist behavior, its body temperature correlating with soil temperature; however, the question about whether other rattlesnakes’ pattern of activity is also influenced by relative humidity as it did with <italic>C. catalinensis</italic> (which is an island species) arises.</p>
			</abstract>
			<trans-abstract xml:lang="es">
				<title>Resumen</title>
				<p>La temperatura corporal de la serpiente de cascabel (<italic>Crotalus catalinensis</italic>) en Isla Santa Catalina es reportada por primera vez. <italic>C. catalinensis</italic>, tienen un amplio rango de temperaturas corporales oscilando entre los 13.6 °C - 38.2 °C; <mml:math><mml:mover accent="true"><mml:mrow><mml:mi>X</mml:mi></mml:mrow><mml:mo>-</mml:mo></mml:mover></mml:math> = 25.9 °C; N = 65, el rango de las temperaturas del sustrato asociadas con las serpientes es entre 14.8 °C - 37.9 °C, mientras que las temperaturas ambientales oscilaron entre 16.4 °C a 36.2 °C. Se encontró una mayor correlación entre las temperaturas corporales y el sustrato. No se observaron diferencias significativas entre los sexos. Las temperaturas más bajas registradas fueron durante marzo (14.0 °C - 23.7 °C), mientras que las temperaturas más altas se produjeron en noviembre (19.4 °C - 39.6 °C). La humedad relativa registrada fue de 53.15% a 77.32 %. El hábitat de suelo abierto sin vegetación fue el más frecuentado por las serpientes. Había sido reportado que <italic>C. catalinensis</italic> presentaba hábitos diurnos y nocturnos; sin embargo, nosotros encontramos que solo exhibía hábitos nocturnos, incluso durante los períodos de invierno. <italic>Crotalus catalinensis</italic> exhibió, como otras serpientes de cascabel, comportamiento termoconformista, correlacionando su temperatura corporal con la temperatura del suelo, sin embargo, surge la pregunta si en otras serpientes de cascabel también su patrón de actividad está influenciado por la humedad relativa como ocurrió con <italic>C. catalinensis</italic>, que es una especie isleña.</p>
			</trans-abstract>
			<kwd-group xml:lang="en">
				<title>Keywords:</title>
				<kwd><italic>Crotalus catalinensis</italic></kwd>
				<kwd>reptile</kwd>
				<kwd>thermoregulation</kwd>
				<kwd>Santa Catalina Island</kwd>
			</kwd-group>
			<kwd-group xml:lang="es">
				<title>Palabras Clave:</title>
				<kwd><italic>Crotalus catalinensis</italic></kwd>
				<kwd>reptiles</kwd>
				<kwd>termorregulación</kwd>
				<kwd>Isla Santa Catalina</kwd>
			</kwd-group>
			<counts>
				<fig-count count="5"/>
				<table-count count="0"/>
				<equation-count count="0"/>
				<ref-count count="49"/>
				<page-count count="8"/>
			</counts>
		</article-meta>
	</front>
	<body>
		<sec sec-type="intro">
			<title>Introduction</title>
			<p>Vertebrates have two strategies of thermoregulation: thermoconformity (lack of behavioral regulation) and accurate thermoregulation (<xref ref-type="bibr" rid="B22">Huey &amp; Slatkin, 1976</xref>). In reptiles, the thermoregulation process is essential to understand the ecology and distribution of reptiles (<xref ref-type="bibr" rid="B21">Huey, 1982</xref>; <xref ref-type="bibr" rid="B41">Seebacher &amp; Shine, 2004</xref>). Environmental temperature is well known to have profound effects on physiological processes, predominantly in ectotherms because they directly influence their body temperature (<xref ref-type="bibr" rid="B19">Hill, 1980</xref>), resulting in considerable energy savings as compared with homeotherms. Ectotherms do not have thermal imbalances between their body temperature and that of the environment, but their cells, tissues, and organs create changes in their internal temperature and produce metabolic heat in low proportions; therefore, to determine heat exchange with the environment, it is most important to differentiate body heat from metabolic heat production. Furthermore, reptiles can nevertheless regulate somewhat their body temperature by changing activity, location and/or posture (<xref ref-type="bibr" rid="B15">Eckert, 1990</xref>).</p>
			<p>To promote their optimal physiological performance, ectotherms employ thermoregulatory behaviors such as basking and microhabitat selection for locomotion, energy acquisition or reproduction (<xref ref-type="bibr" rid="B9">Bulte &amp; Blouin-Demers, 2010</xref>; <xref ref-type="bibr" rid="B45">Stevenson, 1985</xref>).</p>
			<p>Snakes obtain heat from their physical environments to maintain their body temperature, but thermal environments are constantly changing, therefore, it has been proposed that they modify their behavior to control their body temperature. Thus, in places where thermal temperatures are high and lower temperatures variations during daylight are limited, snakes are nocturnal or spend time in their hidden retreat-sites (<xref ref-type="bibr" rid="B26">Kearney, 2002</xref>; <xref ref-type="bibr" rid="B27">Kearney &amp; Predavec, 2000</xref>; <xref ref-type="bibr" rid="B48">Webb &amp; Shine, 1998</xref>).</p>
			<p>The rattlesnake <italic>Crotalus catalinensis</italic> is an endemic snake from Santa Catalina Island in the Gulf of California, Mexico. They are a part of the Viperidae family; their average size is 689 mm (snout-vent length). The coloration considered in those snakes is a light gray tone (clear) and there are also some brown ones (dark), as described by (<xref ref-type="bibr" rid="B6">Beaman &amp; Wong, 2001</xref>). They have arboreal habits but use vegetation only occasionally, and males are slightly larger than females (<xref ref-type="bibr" rid="B6">Beaman &amp; Wong, 2001</xref>; <xref ref-type="bibr" rid="B10">Campbell &amp; Lamar, 1989</xref>; <xref ref-type="bibr" rid="B18">Grismer, 2002</xref>; <xref ref-type="bibr" rid="B29">Martins, Arnaud &amp; Murillo, 2008</xref>). This is a critically endangered species and is included in the Official Mexican Norm 059-SEMARNAT-2010 (<xref ref-type="bibr" rid="B14">Diario Oficial de la Federación [DOF], 2010</xref>) under the category of threatened species; it is also included in the Red List of the International Union for Conservation of Nature (IUCN), under the Critically Endangered species category (<xref ref-type="bibr" rid="B29">Ávila-Villegas, Martins &amp; Arnaud, 2007</xref>).</p>
			<p>The behavior of <italic>Crotalus catalinensis</italic> is interesting since, apparently, they do not hibernate, and there is no information about their thermal ecology. The aim of this study was to identify the body temperature of the rattlesnake <italic>C. catalinensis</italic> and its relationship between environmental and surface temperature throughout different periods of the year.</p>
		</sec>
		<sec sec-type="materials|methods">
			<title>Materials and methods</title>
			<sec>
				<title>Study site</title>
				<p>Santa Catalina Island is a granitic landmass of 40.99 km2 (25°42'40.33'' N, 110°46'32.11'' W; 25°35'43.05'' N, 110°44'42'' W), in the Gulf of Baja California, Mexico (<xref ref-type="fig" rid="f1">Figure 1</xref>) (<xref ref-type="bibr" rid="B12">Carreño &amp; Helenes, 2002</xref>; <xref ref-type="bibr" rid="B13">Comisión Nacional de Áreas Naturales Protegidas [CONANP], 2000</xref>). In this region there are three distinct climate periods depending on precipitation differences: 1) Dry season (March through June); 2) Rainy season summer-autumn (July through October), presenting a slight predominance of cyclonic activity in the tropical Pacific; and 3) Rainy season in winter (November through February). The maximum temperature between July and August is 36 °C, and the minimum temperature during the month of January is 11 °C (<xref ref-type="bibr" rid="B39">Salinas-Zavala, Leyva-Contreras, Lluch-Belda &amp; Díaz-Rivera, 1990</xref>).</p>
				<p>
					<fig id="f1">
						<label>Figura 1</label>
						<caption>
							<title>Santa Catalina Island in the Gulf of California, Mexico.</title>
						</caption>
						<graphic xlink:href="https://www.actauniversitaria.ugto.mx/index.php/acta/es/article/download/1667/version/1435/3254/39208/2007-9621-au-28-06-39-gf1.png"/>
						<attrib>Source: Author's own elaboration.</attrib>
					</fig>
				</p>
				<p>The island has xeric sarcocaule scrub vegetation, with a predominance of shrubs such as Copal (<italic>Bursera hindsiana</italic>), Red Torote (<italic>Bursera microphylla</italic>), the Matacora (<italic>Jatropha cuneata</italic>), Ironwood (<italic>Olneya tesota</italic>), Sweet Pitahaya (<italic>Stenocereus gummosus</italic>) and Sour (<italic>Stenocereus thurberi</italic>) Cardon (<italic>Pachycereus pringlei</italic>), and an endemic species of Giant Barrel Cactus (<italic>Ferocactus diguetii</italic>) (<xref ref-type="bibr" rid="B49">Wiggins, 1980</xref>).</p>
			</sec>
			<sec>
				<title>Fieldwork</title>
				<p>Four samplings were done in Santa Catalina Island during 2007, corresponding to the four seasons of the year, March, May, September, November, but the samplings were divided by dry season (March-May) and rainy season (September-November).</p>
				<p>The search for rattlesnakes was performed one hour before nightfall and until one hour before midnight (1800 h - 2300 h). They were caught and held with herpetological tweezers for their manipulation. The rattlesnakes that were present in the different seasons (dry and rainy) were documented, and their sex was determined by a &quot;cloacal test&quot; (<xref ref-type="bibr" rid="B40">Schaefer, 1934</xref>). The snake's body temperature (Tc) data were taken by averaging five measurements and five of the substrate temperatures (Ts). Also, measures were the air temperature (Ta), the relative humidity (HR), measured with a hygro-thermometer (Skymate-<italic>Weather Meter</italic>) 1 m above the ground, soil temperature (To) in the shade (T<sub>shade</sub>) and in the sun (T<sub>sun</sub>) measured with a digital infrared thermometer (Raytek-<italic>Fluke 62-MAX</italic>).</p>
				<p>To collect the data of operative temperature, defined as temperature of an inanimate object of zero heat capacity with the same size, shape and radiative properties as an animal exposed to the same microclimate (<xref ref-type="bibr" rid="B5">Bakken &amp; Gates, 1975</xref>), two cylindrical cooper models were used, whose dimensions were similar to those used with adult snakes. These models were placed on the ground with the same orientation with respect to sunrise; on the ground under vegetation cover (in the shade) and without plant cover (sunny all the time), the readings were recorded each hour for a period of 24 h, during each sampling period.</p>
				<p>The season analysis (dry and rainy seasons) of the rattlesnake distribution observed during sampling periods was carried out by microhabitat, assigning categories to specific sites where each rattlesnake was first observed under mulch, in bushes, under stones or in dead cactuses, during dry and rainy seasons.</p>
			</sec>
			<sec>
				<title>Data analysis</title>
				<p>Pearson's correlation was used to determine the relationship between body temperature and surface temperature and, also, between body temperature and the surrounding environment. Analysis of variance (Anova) was used to assess differences between means. Student’s tests were used to determine whether the slopes of regression lines had any significant differences.</p>
				<p>A contingency table was used to record the seasonal variation of the rattlesnake’s temperature. The substrate and environmental temperature were compared with each other, and frequency graphs were generated to analyze trends between these temperatures.</p>
				<p>An analysis of covariance (Anova) was used to identify whether there were significant
					differences between body temperature of males as compared to females as well as
					the differences between dark and light color rattlesnakes. A controlled variance
					of the most correlated changeable body temperature was applied and the value of
					significance for all statistical tests was <italic>p</italic> &lt; 0.05 (<xref
						ref-type="bibr" rid="B44">Sokal &amp; Rohlf, 1995</xref>).</p>
				<p>Based on the frequency of sightings of the rattlesnake among microhabitats (whether under
					mulch, in bushes, under stones or in dead cactuses during dry and rainy
					seasons), during dry and rainy seasons, the rattlesnakes’ temperatures were
					compared with Chi-square (<italic>X<sup>2</sup></italic>). The differences
					between body temperature of snakes using different microhabitats, between dry
					and rainy periods, were evaluated with variance analysis (Anova).</p>
			</sec>
		</sec>
		<sec sec-type="results">
			<title>Results</title>
			<sec>
				<title>Thermoregulatory behavior of snakes</title>
				<p>The body temperature (Tc) in <italic>C. catalinensis</italic> were 13.6 °C - 38.2 °C; <mml:math>
						<mml:mover accent="true">
							<mml:mrow>
								<mml:mi>X</mml:mi>
							</mml:mrow>
							<mml:mo>-</mml:mo>
						</mml:mover>
					</mml:math> = 25.9 °C; <italic>N</italic> = 65: March (<italic>N</italic> = 18),
					May (<italic>N</italic> = 14), September (<italic>N</italic> = 22) and November
						(<italic>N</italic> = 11). Substrate temperature (Ts) associated with the
					rattlesnakes was 14.8 °C - 37.9 °C; <mml:math>
						<mml:mover accent="true">
							<mml:mrow>
								<mml:mi>X</mml:mi>
							</mml:mrow>
							<mml:mo>-</mml:mo>
						</mml:mover>
					</mml:math> = 25.9, while air temperature (Ta) was 16.4 °C - 36.2 °C; <mml:math>
						<mml:mover accent="true">
							<mml:mrow>
								<mml:mi>X</mml:mi>
							</mml:mrow>
							<mml:mo>-</mml:mo>
						</mml:mover>
					</mml:math> = 25.5 °C. When analyzing body temperature in males (15.7 °C to 38.2
					°C; <mml:math>
						<mml:mover accent="true">
							<mml:mrow>
								<mml:mi>X</mml:mi>
							</mml:mrow>
							<mml:mo>-</mml:mo>
						</mml:mover>
					</mml:math> = 24.97; <italic>N</italic> = 33) and females (13.6 °C to 37 °C; <mml:math>
						<mml:mover accent="true">
							<mml:mrow>
								<mml:mi>X</mml:mi>
							</mml:mrow>
							<mml:mo>-</mml:mo>
						</mml:mover>
					</mml:math> = 25.70; <italic>N</italic> = 26), no significant differences were
					observed (F = 0.22, <italic>p</italic> &gt; 0.64) between sexes.</p>
				<p>The scatter diagram showed a higher correlation between body temperature and substrate (R<sup>2</sup> = 0.97, <italic>p</italic> &lt;0.001) between the Tc and Ta (R<sup>2</sup> = 0.88, <italic>p</italic> &lt; 0.001) (<xref ref-type="fig" rid="f2">Figure 2</xref>).</p>
				<p>
					<fig id="f2">
						<label>Figura 2</label>
						<caption>
							<title>a) Correlation between substrate temperature (Ts) and b) air temperature (Ta) versus body temperature (Tc).</title>
						</caption>
						<graphic xlink:href="https://www.actauniversitaria.ugto.mx/index.php/acta/es/article/download/1667/version/1435/3254/39209/2007-9621-au-28-06-39-gf2.png"/>
						<attrib>Source: Author's own elaboration.</attrib>
					</fig>
				</p>
				<p>Four trends were observed between environmental temperature and relative substrate around 17 °C, 22 °C, 25 °C and 30 °C was reflected in each of the sampled seasons (<xref ref-type="fig" rid="f3">Figure 3</xref>).</p>
				<p>
					<fig id="f3">
						<label>Figura 3</label>
						<caption>
							<title>Frequencies in rattlesnake body, air and substrate temperature during the seasons of the year.</title>
						</caption>
						<graphic xlink:href="https://www.actauniversitaria.ugto.mx/index.php/acta/es/article/download/1667/version/1435/3254/39210/2007-9621-au-28-06-39-gf3.jpg"/>
						<attrib>Source: Author's own elaboration.</attrib>
					</fig>
				</p>
				<p>The lowest air temperature recorded was present during March (14 °C-23.7 °C; <mml:math><mml:mover accent="true"><mml:mrow><mml:mi>X</mml:mi></mml:mrow><mml:mo>-</mml:mo></mml:mover></mml:math> = 18.04), while the highest temperature occurred in November (19.4 °C-39.6 °C; <mml:math><mml:mover accent="true"><mml:mrow><mml:mi>X</mml:mi></mml:mrow><mml:mo>-</mml:mo></mml:mover></mml:math> = 24.6). The temperatures in May (20.3 °C-38 °C; <mml:math><mml:mover accent="true"><mml:mrow><mml:mi>X</mml:mi></mml:mrow><mml:mo>-</mml:mo></mml:mover></mml:math> = 28.02 °C), September (25.2 °C-35.2 °C; <mml:math><mml:mover accent="true"><mml:mrow><mml:mi>X</mml:mi></mml:mrow><mml:mo>-</mml:mo></mml:mover></mml:math> = 30.1) and February (14.3 °C - 22.8 °C; <mml:math><mml:mover accent="true"><mml:mrow><mml:mi>X</mml:mi></mml:mrow><mml:mo>-</mml:mo></mml:mover></mml:math> = 18.03 °C) are shown in <xref ref-type="fig" rid="f4">Figure 4</xref>.</p>
				<p>
					<fig id="f4">
						<label>Figura 4</label>
						<caption>
							<title>Air temperature cycle during five months of monitoring in Santa Catalina Island.</title>
						</caption>
						<graphic xlink:href="https://www.actauniversitaria.ugto.mx/index.php/acta/es/article/download/1667/version/1435/3254/39211/2007-9621-au-28-06-39-gf4.jpg"/>
						<attrib>Source: Author's own elaboration.</attrib>
					</fig>
				</p>
				<p>During dry season periods, body temperature had no relation to temperature in the shade (To)
						(R<sup>2</sup> = 0.45; <italic>p</italic> &gt; 0.05; Tc = 45.49
						To<sub>shade</sub>). However, a positive and significant relationship with
					soil temperature in the sun (R<sup>2</sup> = 0.65; <italic>p</italic> &lt; 0.05;
					Tc = 45.42 Tosun) was found. This pattern was different during the rains where
					body temperature showed a significant relationship with temperature in the shade
						(R<sup>2</sup> = 0.72; <italic>p</italic> &lt; 0.05; Tc = 47.36 Toshade) and
					temperature under sunlight (R<sup>2</sup> = 0.82; <italic>p</italic> &lt;0.05;
					Tc = 47.36 To<sub>sun</sub>) (<xref ref-type="fig" rid="f5">Figure
					5</xref>).</p>
				<p>
					<fig id="f5">
						<label>Figura 5</label>
						<caption>
							<title>Operative temperature registered in: a) sun exposure substrate microhabitat, and b) shaded microhabitat.</title>
						</caption>
						<graphic xlink:href="https://www.actauniversitaria.ugto.mx/index.php/acta/es/article/download/1667/version/1435/3254/39212/2007-9621-au-28-06-39-gf5.png"/>
						<attrib>Source: Author's own elaboration</attrib>
					</fig>
				</p>
				<p><italic>Crotalus catalinensis</italic> is widely distributed on the island with a relative
					humidity (RH) of no more than 78%. It obtained a RHs of 53.15% (March), 46.62%
					(May), 74.64% (September), 72.79% (November) and 77.32% (February). However,
					there were significant differences in microhabitats used at different intervals
					of humidity. At a range of 48%-73%, rattlesnakes preferred the open ground, and
					between 36.3%-62.1%, they were frequently found under bushes
							(<italic>X<sup>2</sup></italic> = 36.21, g = 11, <italic>p</italic> &lt;
					0.05).</p>
				<p>The habitat used by sex showed significant differences. Females had a higher preference for
					open soil and dead cardon (<italic>X<sup>2</sup></italic> = 15.22, gl. 2,
						<italic>p</italic> &lt;0.05), whereas males preferred soils without
					vegetation and low shrubs (<italic>X<sup>2</sup></italic> = 13.28, gl. 2,
						<italic>p</italic> &lt; 0.05).</p>
				<p>Regarding the color pattern of snakes (light and dark), no significant differences (Anova) were observed in relation to the substrate temperature as a covariate (F = 113.8, <italic>p</italic> &lt; 0.001) for clear coloration (17.2 °C-37.0 °C; <mml:math><mml:mover accent="true"><mml:mrow><mml:mi>X</mml:mi></mml:mrow><mml:mo>-</mml:mo></mml:mover></mml:math> =27.31 °C; <italic>N</italic> = 17) and (13.6 °C - 38.2 °C; <mml:math><mml:mover accent="true"><mml:mrow><mml:mi>X</mml:mi></mml:mrow><mml:mo>-</mml:mo></mml:mover></mml:math> = 25.26 °C; <italic>N</italic> = 48) for dark coloration.</p>
				<p>Bare soil was the most frequented by rattlesnakes to use as microhabitat, <italic>N</italic>
					= 31 (48.3%), the floor mulched 28.8% (<italic>N</italic> = 19), habitat on dead
					cardon 7.6% (<italic>N</italic> = 11) and, finally, rocky ground was found to be
					the least used by snakes, with only 13.8% (<italic>N</italic> = 3). These
					differences in the frequency of use between different microhabitats were
					statistically significant (<italic>X<sup>2</sup></italic> = 116.21, gl = 3,
						<italic>p</italic> &lt; 0.05), but in the dry and rainy seasons, there were
					differences between the hours of sampling and the use of microhabitats, with
							<italic>X<sup>2</sup></italic> = 21.51, gl 8, <italic>p</italic> &lt;
					0.05 during dry season and <italic>X<sup>2</sup></italic> = 35.17, gl 8,
						<italic>p</italic> &lt; 0.05 in the rainy season.</p>
			</sec>
		</sec>
		<sec sec-type="discussion">
			<title>Discussion</title>
			<p><italic>Crotalus catalinensis</italic> body temperature averaged 25.9 °C, similar to that of other rattlesnakes. For <italic>C. lepidus</italic> in Arizona, a body temperature of 25.2 °C was reported by <xref ref-type="bibr" rid="B30">McCrystal, Schwalbe &amp; Retes (1996)</xref>. Also, according to <xref ref-type="bibr" rid="B8">Bryson, Nieto-Montes de Oca &amp; Reyes-Velasco (2008)</xref>, a temperature of 24.7 °C for <italic>C. l. morulus</italic> and 26 °C for <italic>C. l. maculosus</italic> was reported in Mexico; and in <italic>C. triseraitus</italic>, a body temperature of 26.2 °C was found (<xref ref-type="bibr" rid="B28">Lemos-Espinal et al., 1997</xref>) and <italic>C. p. pricei</italic> of 26.1 °C in Arizona (<xref ref-type="bibr" rid="B37">Prival, Goode, Swann, Schwalbe &amp; Schroff, 2002</xref>).</p>
			<p>A positive correlation between body temperature and substrate was found in <italic>C. catalinensis</italic>, and a similar correlation was found by <italic>C. lepidus maculosus, C. l. murolus, C. p. pricei, C.p. miquihuanus</italic>, and <italic>C. t. triseriatusin</italic> Northern Mexico (<xref ref-type="bibr" rid="B8">Bryson et al., 2008</xref>).</p>
			<p>The use of a habitat by a species can vary depending on its body size, color, and sex (<xref ref-type="bibr" rid="B43">Shine, Shine &amp; Shine, 2003</xref>). There were no significant differences in body temperature between sexes (<xref ref-type="bibr" rid="B36">Plummer &amp; Mills, 2010</xref>; <xref ref-type="bibr" rid="B20">Himes, Hardy, Rudolph &amp; Burddorf, 2006</xref>); this is attributed to both male and female snakes which select very similar microhabitats that can provide them with the necessary heat to increase their body temperature (<xref ref-type="bibr" rid="B42">Schwarzkopf &amp; Shine, 1991</xref>).</p>
			<p>A species can have active thermoregulation, and/or they can thermoconform depending on the circumstances in which they find themselves (<xref ref-type="bibr" rid="B35">Peterson, Gibson &amp; Dorcas, 1993</xref>); however, <italic>C. catalinensis</italic> showed thermo-conformation, because the body temperature was related to the habitat and season of the year, which was evident in the value close to 1.0 in the regression analysis. Using different microhabitats or performing thermoregulatory behaviors avoids the risk of being preyed upon; in this sense, these rattlesnakes’ behavior increase their chance of survival (<xref ref-type="bibr" rid="B46">Stewart, 1984</xref>), since the main predators on Santa Catalina Island are raptors like barn owls (<italic>Tyto alba</italic>), peregrine falcons (<italic>Falco peregrino</italic>), ravens (<italic>Corvus corax</italic>) and red-tailed hawks (<italic>Buteo jamaicensis</italic>) (<xref ref-type="bibr" rid="B2">Arnaud et al., 2008</xref>; <xref ref-type="bibr" rid="B18">Grismer, 2002</xref>).</p>
			<p>Differences in habitat use by <italic>C. horridus</italic> with different colors may be due to the advantages that each habitat provides them in order to go unnoticed by predators and prey alike (<xref ref-type="bibr" rid="B38">Reinert &amp; Zappalorti, 1988</xref>). This does not happen in <italic>C. catalinensis</italic>, because there were no differences in habitat use by either dark or light color snakes (<xref ref-type="bibr" rid="B2">Arnaud et al., 2008</xref>). The dark snakes are more easily adaptable than the light-color ones, this allows them to absorb more heat, which, in turn, accelerates their metabolism, provides them faster digestion of prey, greater strength, better physical conditions and, therefore, greater reproductive success (<xref ref-type="bibr" rid="B33">Morozenko, 2003</xref>). However, dark colorings can also be a disadvantage with respect to predatory risks, since they are more easily visible to predators as well as to their preys (<xref ref-type="bibr" rid="B1">Andrén &amp; Nilson, 1981</xref>; <xref ref-type="bibr" rid="B11">Capula &amp; Luiselli, 1994</xref>).</p>
			<p>There was no difference in body temperature with respect to coloration, and this may be due to 1) their crepuscular or nocturnal habit; for that reason, they do not absorb more or less radiation; and 2) the color variation is related to the color of the ground surface for both snakes, whether dark or light, apparently, they both select thermally similar microhabitats, just as <italic>C. lepidus</italic> (<xref ref-type="bibr" rid="B16">Forstner, Hilsenbeck &amp; Scudday, 1997</xref>).</p>
			<p>The thermos-conformity presented in <italic>C. catalinensis</italic> indicates that body temperature follows fluctuation of substrate temperature; therefore, the number of active snakes can depend on thermal variables such as the surrounding temperature and the relative humidity. Positive correlations were observed in <italic>C. catalinensis</italic>. Reptiles inhabiting arid areas are more sensitive to high temperatures during dry seasons (<xref ref-type="bibr" rid="B24">Huey et al., 2009</xref>), which could have an influence. In dry season, fewer individuals were found. During rainy season more snakes were recorded, which coincides with reports by <xref ref-type="bibr" rid="B4">Avila-Villegas, Venegas-Barrera &amp; Arnaud (2004)</xref>. For other species such as <italic>C. atrox, C. molossus, and C. tigris</italic>, more activity was observed during (July-October) in Arizona (<xref ref-type="bibr" rid="B7">Beck, 1995</xref>); <italic>C. adamanteus</italic> showed a higher activity from September to November in Florida (<xref ref-type="bibr" rid="B47">Timmerman, 1995</xref>); <italic>C. michelliproved</italic> to be more active from June to September; and <italic>C. cerastes</italic> was more active from May to October in California (<xref ref-type="bibr" rid="B32">Moore, 1987</xref>).</p>
			<p><italic>Crotalus catalinensis</italic> indiscriminate the use of different types of microhabitats available, using soil without vegetation cover more frequently during the night or when solar radiation is absent, and the soil is losing heat; this is quite possible because it is more visible to predators. The presence of snakes in shrubbery cover corresponded to 1) maintaining a constant body temperature (<xref ref-type="bibr" rid="B23">Huey, Niewiarowski, Kaufmann &amp; Herron, 1989</xref>), it is different in soil without vegetation cover, where temperature variations are greater (<xref ref-type="bibr" rid="B31">Miller &amp; Mushinsky, 1990</xref>; <xref ref-type="bibr" rid="B38">Reinert &amp; Zappalorti, 1988</xref>), and 2) vegetation helps snakes to avoid predators (<xref ref-type="bibr" rid="B17">Gibson, Smucny &amp; Kollar, 1989</xref>).</p>
			<p>The choice of microhabitat favors the efficiency of their vital processes such as survival, to seek refuge during periods of high vulnerability (<xref ref-type="bibr" rid="B25">King &amp; Turmo, 1997</xref>) or to maintain optimal temperature during warm days (<xref ref-type="bibr" rid="B23">Huey et al., 1989</xref>), reducing body temperature while feeding (<xref ref-type="bibr" rid="B34">Nelson &amp; Gregory, 2000</xref>).</p>
			<p>There are other factors not studied yet, which are probably associated with the use of micro-habitats of snakes such as the presence of chemical traces of prey or its congeners. It is necessary to conduct experiments using thermal gradients, both laboratory and field, to test more clearly how environmental temperature influences the choice of a microhabitat rattlesnake and to explore the effect of the availability of shelters and their influence on the body temperature and microhabitat choice.</p>
		</sec>
		<sec sec-type="conclusions">
			<title>Conclusions</title>
			<p><italic>Crotalus catalinensis</italic> exhibited, like other rattlesnakes, thermoconformist
				behavior, its body temperature correlating with soil temperature; however, the
				question about whether other rattlesnakes’ pattern of activity is also influenced by
				relative humidity as it did with <italic>C. catalinensis</italic> (which is an
				island species) arises. The Santa Catalina rattlesnake showed a range of body
				temperature between 13.6 °C - 38.2 °C (<mml:math>
					<mml:mover accent="true">
						<mml:mrow>
							<mml:mi>X</mml:mi>
						</mml:mrow>
						<mml:mo>-</mml:mo>
					</mml:mover>
				</mml:math> = 25.9 °C, <italic>N</italic> = 65), the substrate temperature
				associated with snakes was 14.8 °C to 37.9 °C, while air temperature ranges from
				16.4 °C to 36.2 °C. The relationship between body temperature and substrate had the
				highest correlation (r = 0.97). In Santa Catalina Island the open ground habitat
				without vegetation was frequented mostly by rattlesnakes exhibiting nocturnal
				habits.</p>
		</sec>
	</body>
	<back>
		<ack>
			<title>Acknowledgments</title>
			<p>The authors appreciate the help of Israel Guerrero and Abelino Cota (Animal Ecology Laboratory at Centro de Investigaciones Biológicas del Noroeste) during fieldwork, and Joaquin Roberto de la Campa for translating this manuscript from Spanish to English. We also thank Michael V. Cordoba Matson, a native English-speaking editor for editing the manuscript.</p>
		</ack>
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				<p><bold>Cómo citar:</bold> Arnaud, G., Sandoval, S., Escobar-Flores, J. G., Gomez-Muñoz, V. M., &amp; Burguete, J. L. (2018). Thermal ecology of the Rattlesnake Crotalus catalinensisfrom Santa Catalina Island, Gulf of California. Acta Universitaria, 28(6), 39-46. doi: 10.15174/au.2018.1667</p>
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