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1.
Sci Rep ; 11(1): 20026, 2021 10 08.
Artigo em Inglês | MEDLINE | ID: mdl-34625587

RESUMO

In snakes, divergence in head size between the sexes has been interpreted as an adaptation to intersexual niche divergence. By overcoming gape-limitation, a larger head enables snakes of one sex to ingest larger prey items. Under this hypothesis, we do not expect a species that consumes only tiny prey items to exhibit sex differences in relative head size, or to show empirical links between relative head size and fitness-relevant traits such as growth and fecundity. Our field studies on the sea snake Emydocephalus annulatus falsify these predictions. Although these snakes feed exclusively on fish eggs, the heads of female snakes are longer and wider than those of males at the same body length. Individuals with wider heads grew more rapidly, reproduced more often, and produced larger litters. Thus, head shape can affect fitness and can diverge between the sexes even without gape-limitation. Head size and shape may facilitate other aspects of feeding (such as the ability to scrape eggs off coral) and locomotion (hydrodynamics); and a smaller head may advantage the sex that is more mobile, and that obtains its prey in narrow crevices rather than in more exposed situations (i.e., males).


Assuntos
Cabeça/anatomia & histologia , Hydrophiidae/anatomia & histologia , Caracteres Sexuais , Adaptação Fisiológica , Animais , Tamanho Corporal , Ecossistema , Elapidae , Feminino , Hydrophiidae/fisiologia , Masculino , Comportamento Predatório , Reprodução , Seleção Sexual
2.
Sci Rep ; 11(1): 20701, 2021 10 19.
Artigo em Inglês | MEDLINE | ID: mdl-34667211

RESUMO

For sea snakes as for many types of animals, long-term studies on population biology are rare and hence, we do not understand the degree to which annual variation in population sizes is driven by density-dependent regulation versus by stochastic abiotic factors. We monitored three populations of turtle-headed sea snakes (Emydocephalus annulatus) in New Caledonia over an 18-year period. Annual recruitment (% change in numbers) showed negative density-dependence: that is, recruitment increased when population densities were low, and decreased when densities were high. Windy weather during winter increased survival of neonates, perhaps by shielding them from predation; but those same weather conditions reduced body condition and the reproductive output of adult snakes. The role for density-dependence in annual dynamics of these populations is consistent with the slow, K-selected life-history attributes of the species; and the influence of weather conditions on reproductive output suggests that females adjust their allocation to reproduction based on food availability during vitellogenesis.


Assuntos
Elapidae/crescimento & desenvolvimento , Elapidae/fisiologia , Hydrophiidae/crescimento & desenvolvimento , Hydrophiidae/fisiologia , Animais , Feminino , Nova Caledônia , Densidade Demográfica , Dinâmica Populacional , Reprodução/fisiologia , Estações do Ano
3.
Curr Biol ; 30(13): 2608-2615.e4, 2020 07 06.
Artigo em Inglês | MEDLINE | ID: mdl-32470360

RESUMO

Snakes are descended from highly visual lizards [1] but have limited (probably dichromatic) color vision attributed to a dim-light lifestyle of early snakes [2-4]. The living species of front-fanged elapids, however, are ecologically very diverse, with ∼300 terrestrial species (cobras, taipans, etc.) and ∼60 fully marine sea snakes, plus eight independently marine, amphibious sea kraits [1]. Here, we investigate the evolution of spectral sensitivity in elapids by analyzing their opsin genes (which are responsible for sensitivity to UV and visible light), retinal photoreceptors, and ocular lenses. We found that sea snakes underwent rapid adaptive diversification of their visual pigments when compared with their terrestrial and amphibious relatives. The three opsins present in snakes (SWS1, LWS, and RH1) have evolved under positive selection in elapids, and in sea snakes they have undergone multiple shifts in spectral sensitivity toward the longer wavelengths that dominate below the sea surface. Several relatively distantly related Hydrophis sea snakes are polymorphic for shortwave sensitive visual pigment encoded by alleles of SWS1. This spectral site polymorphism is expected to confer expanded "UV-blue" spectral sensitivity and is estimated to have persisted twice as long as the predicted survival time for selectively neutral nuclear alleles. We suggest that this polymorphism is adaptively maintained across Hydrophis species via balancing selection, similarly to the LWS polymorphism that confers allelic trichromacy in some primates. Diving sea snakes thus appear to share parallel mechanisms of color vision diversification with fruit-eating primates.


Assuntos
Evolução Biológica , Elapidae/fisiologia , Hydrophiidae/fisiologia , Polimorfismo Genético , Percepção Visual , Alelos , Animais , Elapidae/genética , Evolução Molecular , Hydrophiidae/genética
4.
Proc Biol Sci ; 286(1910): 20191828, 2019 09 11.
Artigo em Inglês | MEDLINE | ID: mdl-31506057

RESUMO

Marine amniotes, a polyphyletic group, provide an excellent opportunity for studying convergent evolution. Their sense of smell tends to degenerate, but this process has not been explored by comparing fully aquatic species with their amphibious relatives in an evolutionary context. Here, we sequenced the genomes of fully aquatic and amphibious sea snakes and identified repertoires of chemosensory receptor genes involved in olfaction. Snakes possess large numbers of the olfactory receptor (OR) genes and the type-2 vomeronasal receptor (V2R) genes, and expression profiling in the olfactory tissues suggests that snakes use the ORs in the main olfactory system (MOS) and the V2Rs in the vomeronasal system (VNS). The number of OR genes has decreased in sea snakes, and fully aquatic species lost MOS which is responsible for detecting airborne odours. By contrast, sea snakes including fully aquatic species retain a number of V2R genes and a well-developed VNS for smelling underwater. This study suggests that the sense of smell also degenerated in sea snakes, particularly in fully aquatic species, but their residual olfactory capability is distinct from that of other fully aquatic amniotes. Amphibious species show an intermediate status between terrestrial and fully aquatic snakes, implying their importance in understanding the process of aquatic adaptation.


Assuntos
Adaptação Fisiológica , Hydrophiidae/fisiologia , Animais , Evolução Biológica , Olfato , Órgão Vomeronasal
5.
J Exp Biol ; 222(Pt 14)2019 07 25.
Artigo em Inglês | MEDLINE | ID: mdl-31345949

RESUMO

The viviparous sea snakes (Hydrophiinae) are a secondarily aquatic radiation of more than 60 species that possess many phenotypic adaptations to marine life. However, virtually nothing is known of the role and sensitivity of hearing in sea snakes. This study investigated the hearing sensitivity of the fully marine sea snake Hydrophis stokesii by measuring auditory evoked potential (AEP) audiograms for two individuals. AEPs were recorded from 40 Hz (the lowest frequency tested) up to 600 Hz, with a peak in sensitivity identified at 60 Hz (163.5 dB re. 1 µPa or 123 dB re. 1 µm s-2). Our data suggest that sea snakes are sensitive to low-frequency sounds but have relatively low sensitivity compared with bony fishes and marine turtles. Additional studies are required to understand the role of sound in sea snake life history and further assess these species' vulnerability to anthropogenic noise.


Assuntos
Potenciais Evocados Auditivos , Audição/fisiologia , Hydrophiidae/fisiologia , Animais
6.
Integr Comp Biol ; 59(3): 616-624, 2019 09 01.
Artigo em Inglês | MEDLINE | ID: mdl-31065670

RESUMO

Morphological variation among the viviparous sea snakes (Hydrophiinae), a clade of fully aquatic elapid snakes, includes an extreme "microcephalic" ecomorph that has a very small head atop a narrow forebody, while the hind body is much thicker (up to three times the forebody girth). Previous research has demonstrated that this morphology has evolved at least nine times as a consequence of dietary specialization on burrowing eels, and has also examined morphological changes to the vertebral column underlying this body shape. The question addressed in this study is what happens to the skull during this extreme evolutionary change? Here we use X-ray micro-computed tomography and geometric morphometric methods to characterize cranial shape variation in 30 species of sea snakes. We investigate ontogenetic and evolutionary patterns of cranial shape diversity to understand whether cranial shape is predicted by dietary specialization, and examine whether cranial shape of microcephalic species may be a result of heterochronic processes. We show that the diminutive cranial size of microcephalic species has a convergent shape that is correlated with trophic specialization to burrowing prey. Furthermore, their cranial shape is predictable for their size and very similar to that of juvenile individuals of closely related but non-microcephalic sea snakes. Our findings suggest that heterochronic changes (resulting in pedomorphosis) have driven cranial shape convergence in response to dietary specializations in sea snakes.


Assuntos
Evolução Biológica , Dieta , Hydrophiidae/anatomia & histologia , Comportamento Predatório , Animais , Hydrophiidae/fisiologia , Traços de História de Vida , Crânio/anatomia & histologia
7.
Mol Ecol ; 28(8): 2013-2028, 2019 04.
Artigo em Inglês | MEDLINE | ID: mdl-30767303

RESUMO

Dermal phototaxis has been reported in a few aquatic vertebrate lineages spanning fish, amphibians and reptiles. These taxa respond to light on the skin of their elongate hind-bodies and tails by withdrawing under cover to avoid detection by predators. Here, we investigated tail phototaxis in sea snakes (Hydrophiinae), the only reptiles reported to exhibit this sensory behaviour. We conducted behavioural tests in 17 wild-caught sea snakes of eight species by illuminating the dorsal surface of the tail and midbody skin using cold white, violet, blue, green and red light. Our results confirmed phototactic tail withdrawal in the previously studied Aipysurus laevis, revealed this trait for the first time in A. duboisii and A. tenuis, and suggested that tail photoreceptors have peak spectral sensitivities between blue and green light (457-514 nm). Based on these results, and an absence of photoresponses in five Aipysurus and Hydrophis species, we tentatively infer that tail phototaxis evolved in the ancestor of a clade of six Aipysurus species (comprising 10% of all sea snakes). Quantifying tail damage, we found that the probability of sustaining tail injuries was not influenced by tail phototactic ability in snakes. Gene profiling showed that transcriptomes of both tail skin and body skin lacked visual opsins but contained melanopsin (opn4x) in addition to key genes of the retinal regeneration and phototransduction cascades. This work suggests that a nonvisual photoreceptor (e.g., Gq rhabdomeric) signalling pathway underlies tail phototaxis, and provides candidate gene targets for future studies of this unusual sensory innovation in reptiles.


Assuntos
Evolução Biológica , Hydrophiidae/fisiologia , Fototaxia/fisiologia , Opsinas de Bastonetes/genética , Animais , Hydrophiidae/genética , Opsinas/genética , Células Fotorreceptoras/metabolismo , Células Fotorreceptoras/fisiologia , Retina/metabolismo , Retina/fisiologia , Pele/metabolismo , Cauda/metabolismo , Transcriptoma/genética
8.
Zoolog Sci ; 35(6): 483-486, 2018 12 04.
Artigo em Inglês | MEDLINE | ID: mdl-30520357

RESUMO

Fully aquatic adaptation generally leads amniotes to change sensory modalities drastically. Terrestrial snakes rely heavily on chemical cues to locate and recognize prey, but little is known about how sea snakes find prey fishes underwater. Sea snakes of the genus Hydrophis are fish-eating marine elapids which adapted from land to water approximately 5-10 million years ago. Here, using two species of captive Hydrophis snakes, we show that they can recognize and discriminate their preferred fish species solely by using olfactory cues. However, they locate places where their preferred fishes may hide without relying on chemical cues. These findings indicate that Hydrophis snakes find prey in water as follows: they use visual cues to locate a place where their prey fishes are likely to hide, and then use chemical cues to find and attack prey. As is the case for other aquatic amniotes, snakes also modified their sensory modalities upon becoming aquatic.


Assuntos
Peixes/classificação , Hydrophiidae/fisiologia , Comportamento Predatório/fisiologia , Olfato , Visão Ocular/fisiologia , Animais , Especificidade da Espécie
9.
Wilderness Environ Med ; 29(3): 343-356, 2018 09.
Artigo em Inglês | MEDLINE | ID: mdl-29954662

RESUMO

INTRODUCTION: Recent analyses of data show a warming trend in global average air and sea surface ocean temperatures. The atmosphere and ocean have warmed, the amounts of snow and ice have diminished, the sea level has risen, and the concentrations of greenhouse gases have increased. This article will focus on climate change and projected effects on venomous marine and amphibious creatures with the potential impact on human health. METHODS: Retrospective analysis of environmental, ecological, and medical literature with a focus on climate change, toxinology, and future modeling specific to venomous aquatic and amphibious creatures. Species included venomous jellyfish, poisonous fish, crown-of-thorns starfish, sea snakes, and toxic frogs. RESULTS: In several projected scenarios, rising temperatures, weather extremes, and shifts in seasons will increase poisonous population numbers, particularly with certain marine creatures like jellyfish and crown-of-thorns starfish. Habitat expansions by lionfish and sea snakes are projected to occur. These phenomena, along with increases in human populations and coastal development will likely increase human-animal encounters. Other species, particularly amphibious toxic frogs, are declining rapidly due to their sensitivity to any temperature change or subtle alterations in the stability of their environment. If temperatures continue to rise to record levels over the next decades, it is predicted that the populations of these once plentiful and critically important animals to the aquatic ecosystem will decline and their geographic distributions will shrink. CONCLUSION: Review of the literature investigating the effect and forecasts of climate change on venomous marine and amphibious creatures has demonstrated that temperature extremes and changes to climatic norms will likely have a dramatic effect on these toxicological organisms. The effects of climate change on these species through temperature alteration and rising coastal waters will influence each species differently and in turn potentially affect commercial industries, travel, tourism, and human health.


Assuntos
Anfíbios , Mudança Climática , Peixes Venenosos , Hydrophiidae , Venenos de Anfíbios , Anfíbios/fisiologia , Animais , Cnidários/fisiologia , Ecologia , Venenos Elapídicos , Meio Ambiente , Peixes Venenosos/fisiologia , Humanos , Hydrophiidae/fisiologia , Peçonhas , Meio Selvagem
10.
Artigo em Inglês | MEDLINE | ID: mdl-29353015

RESUMO

Pseudechis (black snakes) is an Australasian elapid snake genus that inhabits much of mainland Australia, with two representatives confined to Papua New Guinea. The present study is the first to analyse the venom of all 9 described Pseudechis species (plus one undescribed species) to investigate the evolution of venom composition and functional activity. Proteomic results demonstrated that the typical Pseudechis venom profile is dominated by phospholipase A2 toxins. Strong cytotoxicity was the dominant function for most species. P. porphyriacus, the most basal member of the genus, also exhibited the most divergent venom composition, being the only species with appreciable amounts of procoagulant toxins. The relatively high presence of factor Xa recovered in P. porphyriacus venom may be related to a predominantly amphibian diet. Results of this study provide important insights to guide future ecological and toxinological investigations.


Assuntos
Venenos Elapídicos/metabolismo , Hydrophiidae/fisiologia , Modelos Moleculares , Proteínas de Répteis/metabolismo , Animais , Austrália , Coagulantes/química , Coagulantes/metabolismo , Coagulantes/toxicidade , Bases de Dados de Proteínas , Venenos Elapídicos/química , Venenos Elapídicos/genética , Venenos Elapídicos/toxicidade , Eletroforese em Gel de Poliacrilamida , Evolução Molecular , Hydrophiidae/crescimento & desenvolvimento , Conformação Molecular , Nova Guiné , Fosfolipases A2/química , Fosfolipases A2/genética , Fosfolipases A2/metabolismo , Fosfolipases A2/toxicidade , Filogenia , Proteômica/métodos , Proteínas de Répteis/química , Proteínas de Répteis/genética , Proteínas de Répteis/toxicidade , Especificidade da Espécie , Eletroforese em Gel Diferencial Bidimensional
11.
Curr Biol ; 27(16): 2510-2513.e2, 2017 Aug 21.
Artigo em Inglês | MEDLINE | ID: mdl-28803870

RESUMO

Although classically associated with urban environments in invertebrates, melanism in terrestrial snakes is more often linked to occupancy of cool climates [1-3]. Thermal advantages to melanism do not apply in aquatic snakes [4], but although turtle-headed seasnakes (Emydocephalus annulatus) are banded or blotched across a wide geographic range [5], most individuals are melanic in polluted inshore bays of the Pacific island of New Caledonia [4]. Why has melanism evolved in these urban sites? Because trace elements bind to melanin, darker feathers enhance a bird's ability to shed pollutants [6]. Reptiles in polluted habitats also accumulate trace elements, which are expelled when the skin is sloughed [7-11]. Might melanism enable snakes to rid themselves of harmful pollutants? We measured trace elements in sloughed skins of seasnakes from urban-industrial versus other areas and in dark versus light skin. For the latter comparison, we used data from laticaudine seasnakes (sea kraits Laticauda spp.), in which each individual is dark and light banded, facilitating comparisons between dark and light skin. As predicted, concentrations of trace elements were higher in snakes from urban-industrial areas and higher in darker than paler skin (even within the same slough). The rate of excretion of trace elements is further enhanced by higher frequencies of sloughing in melanic than banded individuals, even within the same population, because of higher rates of algal settlement on darker skin. Thus, melanism of seasnakes in polluted sites may facilitate excretion of trace elements via sloughing. VIDEO ABSTRACT.


Assuntos
Hydrophiidae/fisiologia , Pigmentação , Poluentes Químicos da Água/metabolismo , Animais , Cor , Nova Caledônia , Poluentes Químicos da Água/efeitos adversos , Poluição Química da Água/efeitos adversos
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