Latitudinal Variation in Life History Reveals a Reproductive Advantage in the Texas Horned Lizard (Phrynosoma cornutum)

Copeia ◽  
2019 ◽  
Vol 107 (4) ◽  
pp. 736 ◽  
Author(s):  
Daniel F. Hughes ◽  
Walter E. Meshaka ◽  
Carl S. Lieb ◽  
Joseph H. K. Pechmann
2018 ◽  
Author(s):  
Daniel F. Hughes ◽  
Walter E. Meshaka ◽  
Carl S. Lieb ◽  
Joseph H. K. Pechmann

Geographically widespread species that occupy many thermal environments provide testable models for understanding the evolution of life-history responses to latitude, yet studies that draw range-wide conclusions using descriptive data from populations in the core of a species’ distribution can overlook meaningful inter-population variation. The phrynosomatid lizard Phrynosoma cornutum spans an extensive latitudinal distribution in North America and has been well-studied in connection with life-history evolution, yet populations occupying the most northern and coldest areas within its range were absent from previous examinations. We tested genus-wide models and challenged species-specific findings on the evolution of the life-history strategy for P. cornutum using populations at the northern edge of its geographic range and comparative material from farther south. Multivariate analyses revealed that egg dimensions decreased with clutch size, suggestive of a previously unrecognized tradeoff between egg size and egg number in this species. Interestingly, reproductive traits of females with shelled eggs did not covary with latitude, yet we found that populations at the highest latitudes typified several traits of the genus and for the species, including a model for Phrynosoma of large clutches and delayed reproduction. A significant deviation from earlier findings is that we detected latitudinal variation in clutch size. This finding, although novel, is unsurprising given the smaller body sizes from northern populations and the positive relationship between clutch size and body size. Intriguing, however, was that the significant reduction in clutch size persisted when female body size was held constant, indicating a reproductive disadvantage to living at higher latitudes. We discuss the possible selective pressures that may have resulted in the diminishing returns on reproductive output at higher latitudes. Our findings highlight the type of insights in the study of life-history evolution that can be gained across Phrynosomatidae from the inclusion of populations representing latitudinal endpoints.


2004 ◽  
Vol 25 (1) ◽  
pp. 29-39 ◽  
Author(s):  
Wade Sherbrooke

AbstractCapture of rainfall on skin surfaces and its transport via capillary channels between scales to the mouth for drinking has been documented in a few agamid (Moloch and Phrynocephalus) and iguanid (Phrynosoma spp.) lizards. Associated behaviors include a postural stance and jaw motions. This experimental study documents that rate of jaw opening and closing cycles is positively correlated with rate of water delivery to lizards' backs and to gain in mass of lizards attributable to drinking. The mean mass of water that can be held by the interscalar, capillary-flow system is correlated with body size, smaller lizards holding a larger percentage of their body mass in the rain-harvesting system. Ingestion mechanisms for water flow from the integumental channels to the mouth surfaces for drinking are discussed, with note being made of the possible roles of a fold of skin at the jaw angle (at the postlabial scales) and tongue actions. Recent hatchlings exhibit rain-harvesting behavior, suggesting its innate nature.


2015 ◽  
Vol 60 (2-3) ◽  
pp. 231-239 ◽  
Author(s):  
Gary W. Ferguson ◽  
William H. Gehrmann ◽  
Andrew M. Brinker ◽  
Glenn C. Kroh ◽  
Donald C. Ruthven

2011 ◽  
Vol 2 ◽  
pp. 204-214 ◽  
Author(s):  
Philipp Comanns ◽  
Christian Effertz ◽  
Florian Hischen ◽  
Konrad Staudt ◽  
Wolfgang Böhme ◽  
...  

Several lizard species that live in arid areas have developed special abilities to collect water with their bodies' surfaces and to ingest the so collected moisture. This is called rain- or moisture-harvesting. The water can originate from air humidity, fog, dew, rain or even from humid soil. The integument (i.e., the skin plus skin derivatives such as scales) has developed features so that the water spreads and is soaked into a capillary system in between the reptiles' scales. Within this capillary system the water is transported to the mouth where it is ingested. We have investigated three different lizard species which have developed the ability for moisture harvesting independently, viz. the Australian thorny devil (Moloch horridus), the Arabian toadhead agama (Phrynocephalus arabicus) and the Texas horned lizard (Phrynosoma cornutum). All three lizards have a honeycomb like micro ornamentation on the outer surface of the scales and a complex capillary system in between the scales. By investigation of individual scales and by producing and characterising polymer replicas of the reptiles' integuments, we found that the honeycomb like structures render the surface superhydrophilic, most likely by holding a water film physically stable. Furthermore, the condensation of air humidity is improved on this surface by about 100% in comparison to unstructured surfaces. This allows the animals to collect moisture with their entire body surface. The collected water is transported into the capillary system. For Phrynosoma cornutum we found the interesting effect that, in contrast to the other two investigated species, the water flow in the capillary system is not uniform but directed to the mouth. Taken together we found that the micro ornamentation yields a superhydrophilic surface, and the semi-tubular capillaries allow for an efficient passive – and for Phrynosoma directed – transport of water.


2017 ◽  
Vol 81 ◽  
pp. 40-47 ◽  
Author(s):  
Kamal Prasad Acharya ◽  
Pieter De Frenne ◽  
Jörg Brunet ◽  
Olivier Chabrerie ◽  
Sara A.O. Cousins ◽  
...  

2009 ◽  
Vol 54 (2) ◽  
pp. 211-213 ◽  
Author(s):  
Pamela S. Allison ◽  
Joseph C. Cepeda

2019 ◽  
Vol 9 (1) ◽  
Author(s):  
Courtney Heuring ◽  
Diane Barber ◽  
Nathan Rains ◽  
Devin Erxleben ◽  
Cameron Martin ◽  
...  

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