PubMed Health⌕ Search

PubMed · 8237300

Current studies on tooth enamel development in lower vertebrates.

Abstract

The tooth enamel is a unique tissue in the human body on many characteristic features, in both morphological and developmental aspects. This tissue is widely distributed in the vertebrate world. This hard tissue is divided into two groups, mainly from the developmental feature. One is the enamel in the upper classes of the adult amphibian, called true or ectodermal enamel. The other mainly distributes in fish (both of osteichytyes and chondroichtyes), called enameloid or mesodermal enamel. Enameloid seen in fish has many characteristics compared with enamel, although enameloid after eruption is analog tissue to enamel. Many studies on the enameloid with a long history show its character. (1) The enameloid matrix is mainly composed of collagen fibrils to make thick bundles, most of which are interwoven in a complicated manner. (2) Mineralization of enameloid is initiated by the matrix vesicles similar to bone and dentine. (3) Growth of crystals does not stop the retention of their thin needle shape as with bone and dentine during mineralization, but finally begins to show a large hexagonal shape, as seen in the mature enamel of mammals. (4) Enameloid contains much fluoride and the fluoride exists as a fluoroapatite in enameloid. Many of the recent studies on this subject applied various histochemical methods, especially immunohistochemical studies, which show some evidence that enameloid and enamel might not be continuous in enamel evolution. It is now necessary to reconsider the enameloid from the phylogenetic aspect.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

M Wakita. 1993. Current studies on tooth enamel development in lower vertebrates.. https://pubmed.ncbi.nlm.nih.gov/8237300/

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Climate change and outbreaks of amphibian chytridiomycosis in a montane area of Central Spain; is there a link?

Amphibian species are declining at an alarming rate on a global scale in large part owing to an infectious disease caused by the chytridiomycete fungus, Batrachochytrium dendrobatidis. This disease of amphibians has recently emerged within Europe, but knowledge of its effects on amphibian assemblages remains poor. Importantly, little is known about the environmental envelope that is associated with chytridiomycosis in Europe and the potential for climate change to drive future disease dynamics. Here, we use long-term observations on amphibian population dynamics in the Peñalara Natural Park, Spain, to investigate the link between climate change and chytridiomycosis. Our analysis shows a significant association between change in local climatic variables and the occurrence of chytridiomycosis within this region. Specifically, we show that rising temperature is linked to the occurrence of chytrid-related disease, consistent with the chytrid-thermal-optimum hypothesis. We show that these local variables are driven by general circulation patterns, principally the North Atlantic Oscillation. Given that B. dendrobatidis is known to be broadly distributed across Europe, there is now an urgent need to assess the generality of our finding and determine whether climate-driven epidemics may be expected to impact on amphibian species across the wider region.

Amphibians↗

Global patterns of diversification in the history of modern amphibians.

The fossil record of modern amphibians (frogs, salamanders, and caecilians) provides no evidence for major extinction or radiation episodes throughout most of the Mesozoic and early Tertiary. However, long-term gradual diversification is difficult to reconcile with the sensitivity of present-day amphibian faunas to rapid ecological changes and the incidence of similar environmental perturbations in the past that have been associated with high turnover rates in other land vertebrates. To provide a comprehensive overview of the history of amphibian diversification, we constructed a phylogenetic timetree based on a multigene data set of 3.75 kb for 171 species. Our analyses reveal several episodes of accelerated amphibian diversification, which do not fit models of gradual lineage accumulation. Global turning points in the phylogenetic and ecological diversification occurred after the end-Permian mass extinction and in the late Cretaceous. Fluctuations in amphibian diversification show strong temporal correlation with turnover rates in amniotes and the rise of angiosperm-dominated forests. Approximately 86% of modern frog species and >81% of salamander species descended from only five ancestral lineages that produced major radiations in the late Cretaceous and early Tertiary. This proportionally late accumulation of extant lineage diversity contrasts with the long evolutionary history of amphibians but is in line with the Tertiary increase in fossil abundance toward the present.

Amphibians↗

Cytologic diagnosis of disease in amphibians.

Cytology is an inexpensive yet powerful diagnostic tool that allows for rapid diagnosis of many common disease conditions in amphibian patients. Although the emphasis of this article is on infectious diseases, there is great potential for application of cytologic diagnosis to variety of medical conditions as the knowledge base in amphibian medicine and pathology continues to grow. Routine methods used that may fall under the umbrella of cytology range from wet mount examination of skin scrapings (or gill biopsies of larvae) to examination of stained impression smears. Routine Romanowsky's-type stains work well for amphibian samples. Preparation of multiple smears is always recommended to allow for use of special staining procedures.

Amphibians↗