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1.
Zoology (Jena) ; 118(3): 147-60, 2015 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-25958104

RESUMO

The viscoelastic properties of vertebrate connective tissues rarely undergo significant changes within physiological timescales, the only major exception being the reversible destiffening of the mammalian uterine cervix at the end of pregnancy. In contrast to this, the connective tissues of echinoderms (sea urchins, starfish, sea cucumbers, etc.) can switch reversibly between stiff and compliant conditions in timescales of around a second to minutes. Elucidation of the molecular mechanism underlying such mutability has implications for the zoological, ecological and evolutionary field. Important information could also arise for veterinary and biomedical sciences, particularly regarding the pathological plasticization or stiffening of connective tissue structures. In the present investigation we analyzed aspects of the ultrastructure and biochemistry in two representative models, the compass depressor ligament and the peristomial membrane of the edible sea urchin Paracentrotus lividus, compared in three different mechanical states. The results provide further evidence that the mechanical adaptability of echinoderm connective tissues does not necessarily imply changes in the collagen fibrils themselves. The higher glycosaminoglycan (GAG) content registered in the peristomial membrane with respect to the compass depressor ligament suggests a diverse role of these molecules in the two mutable collagenous tissues. The possible involvement of GAG in the mutability phenomenon will need further clarification. During the shift from a compliant to a standard condition, significant changes in GAG content were detected only in the compass depressor ligament. Similarities in terms of ultrastructure (collagen fibrillar assembling) and biochemistry (two alpha chains) were found between the two models and mammalian collagen. Nevertheless, differences in collagen immunoreactivity, alpha chain migration on SDS-PAGE and BLAST alignment highlighted the uniqueness of sea urchin collagen with respect to mammalian collagen.


Assuntos
Paracentrotus/anatomia & histologia , Animais , Colágeno/química , Colágeno/ultraestrutura , Tecido Conjuntivo/anatomia & histologia , Tecido Conjuntivo/química , Tecido Conjuntivo/ultraestrutura , Imuno-Histoquímica , Paracentrotus/química , Paracentrotus/ultraestrutura
2.
Aquat Toxicol ; 156: 21-9, 2014 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-25127357

RESUMO

Usage of bisphenol A (BPA) in production of polycarbonate plastics has resulted in global distribution of BPA in the environment. These high concentrations cause numerous negative effects to the aquatic biota, among which the most known is the induction of endocrine disruption. The focus of this research was to determine the effects of two experimentally determined concentrations of BPA (100nM and 4µM) on cellular detoxification mechanisms during the embryonic development (2-cell, pluteus) of the rocky sea urchin (Paracentrotus lividus), primarily the potential involvement of multidrug efflux transport in the BPA intercellular efflux. The results of transport assay, measurements of the intracellular BPA and gene expression surveys, for the first time indicate the importance of P-glycoprotein (P-gp/ABCB1) in defense against BPA. Cytotoxic effects of BPA, validated by the immunohistochemistry (IHC) and the transmission electron microscopy (TEM), induced the aberrant karyokinesis, and consequently, the impairment of embryo development through the first cell division and retardation.


Assuntos
Membro 1 da Subfamília B de Cassetes de Ligação de ATP/metabolismo , Compostos Benzidrílicos/toxicidade , Paracentrotus/efeitos dos fármacos , Fenóis/toxicidade , Poluentes Químicos da Água/toxicidade , Animais , Transporte Biológico/efeitos dos fármacos , Embrião não Mamífero/efeitos dos fármacos , Embrião não Mamífero/ultraestrutura , Desenvolvimento Embrionário/efeitos dos fármacos , Paracentrotus/ultraestrutura
3.
Mar Environ Res ; 93: 78-84, 2014 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-24050836

RESUMO

Continuous anthropogenic CO2 emissions to the atmosphere and uptake by the oceans will cause a reduction of seawater pH and saturation state (Ω) of CaCO3 minerals from which marine calcifiers build their shells and skeletons. Sea urchins use the most soluble form of calcium carbonate, high-magnesium calcite, to build their skeleton, spines and grazing apparatus. In order to highlight the effects of increased pCO2 on the test thickness and carbonate elemental composition of juvenile sea urchins and potential differences in their responses linked to the diet, we performed a laboratory experiment on juvenile Paracentrotus lividus, grazing on calcifying (Corallina elongata) and non-calcifying (Cystoseira amentacea, Dictyota dichotoma) macroalgae, under different pH (corresponding to pCO2 values of 390, 550, 750 and 1000 µatm). Results highlighted the importance of the diet in determining sea urchin size irrespectively of the pCO2 level, and the relevance of macroalgal diet in modulating urchin Mg/Ca ratio. The present study provides relevant clues both in terms of the mechanism of mineral incorporation and in terms of bottom-up processes (algal diet) affecting top-down ones (fish predation) in rocky subtidal communities.


Assuntos
Carbonatos/metabolismo , Dieta , Paracentrotus/metabolismo , Água do Mar/química , Animais , Cálcio/metabolismo , Concentração de Íons de Hidrogênio , Magnésio/metabolismo , Microscopia Eletrônica de Varredura , Paracentrotus/crescimento & desenvolvimento , Paracentrotus/ultraestrutura , Phaeophyceae , Rodófitas
4.
J Struct Biol ; 176(1): 119-26, 2011 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-21803159

RESUMO

This paper reports the results of the first dynamic labeling experiment with regenerating spines of sea urchins Paracentrotus lividus using the stable isotope ²6Mg and NanoSIMS high-resolution isotopic imaging, which provide a direct information about the growth process. Growing spines were labeled twice (for 72 and 24 h, respectively) by increasing the abundance of ²6Mg in seawater. The incorporation of ²6Mg into the growing spines was subsequently imaged with the NanoSIMS ion microprobe. Stereom trabeculae initially grow as conical micro-spines, which form within less than 1 day. These micro-spines fuse together by lateral outgrowths and form a thin, open meshwork (inner stereom), which is subsequently reinforced by addition of layered thickening deposits (outer stereom). The (longitudinal) growth rate of the inner stereom is ca. 125 µm/day. A single (ca. 1 µm) thickening layer in the stereom trabeculae is deposited during 24h. The thickening process is contemporaneous with the formation micro-spines and involves both longitudinal trabeculae and transverse bridges to a similar degree. Furthermore, the skeleton-forming cells remain active in the previously formed open stereom for at least 10 days, and do not migrate upwards until the end of the thickening process. The experimental capability presented here provides a new way to obtain detailed information about the skeleton formation of a multitude of marine, calcite producing organisms.


Assuntos
Calcificação Fisiológica , Magnésio/química , Paracentrotus/crescimento & desenvolvimento , Animais , Marcação por Isótopo , Isótopos , Microscopia Eletrônica de Varredura , Morfogênese , Paracentrotus/fisiologia , Paracentrotus/ultraestrutura , Regeneração
5.
J Microsc ; 228(Pt 2): 165-73, 2007 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-17970916

RESUMO

In the present paper we applied confocal microscopy and fluorescence technologies for studying the distribution and the oxidative activity of sea urchin (Paracentrotus lividus) mitochondria during development, by in vivo incubating eggs and embryos with cell-permeant MitoTracker probes. We calculated, by a mathematical model, the intensity values, the variations of intensity, and the variation index of incorporated fluorochromes. Data demonstrate that mitochondrial mass does not change during development, whereas mitochondrial respiration increases. In addition, starting from 16 blastomeres stage, some regions of the embryo contain organelles more active in oxygen consumption.


Assuntos
Microscopia Confocal , Mitocôndrias/metabolismo , Paracentrotus/metabolismo , Animais , Embrião não Mamífero/metabolismo , Oxirredução , Oxigênio/análise , Oxigênio/metabolismo , Paracentrotus/crescimento & desenvolvimento , Paracentrotus/ultraestrutura
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