Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “morphological evolution”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 1,531 records · Page 85Linked to original sources

[Roentgenomorphologic aspects of osseous lesions in thalassemia].

In bones two functionally different organs are closely mingled: osseous tissue and osseous hematopoietic system. In the work their interrelation and laws governing it are discussed. In cases of aggression toward osseous hematopoietic system osseous lesions, with their evolutive stages, are formed. Certain evolutive stages are so characteristic in their morphology that radiologic diagnosis of the illness can be made without any hesitation. The work also includes the authors' opinion on appearance of pseudotumorous structures on the paravertebral sections of the ribs.

Bone and Bones↗

MRI and CT features of cerebellar degeneration.

The many conventional classifications of cerebellar degeneration are usually based on information obtained in post-mortem examinations. On the other hand, neuroimagings, particularly with follow-up imaging studies, can demonstrate morphologic changes at various stages of disease evolution in living patients, thus providing a better understanding and evaluation of the disease processes, leading towards an earlier and more accurate diagnosis. Obviously, some patients require determination of a biochemical marker or markers in the final diagnosis. In Friedreich's ataxia, major changes are severe atrophy of the spinal cord with flattening of its posterior aspect. The medulla oblongata becomes smaller and the vermian and paravermian structures adjacent to the primary fissures become mildly atrophic. In hexosaminidase deficiency, there is pancerebellar atrophy with marked dilatation of the fourth ventricle. Cerebellar atrophy is more marked in the hemispheres than in the vermis, while the brain stem shows little change. The frontal and parietal sulci are usually slightly prominent. In cerebello-olivary atrophy (also called cortical cerebellar degeneration), there is atrophy of the superior vermis, especially the declive, folium and tuber. There is also atrophy of the lateral part of the cerebellar hemispheres, giving an appearance of the "fish-mouth deformity" on parasagittal sections. The fourth ventricle may be greatly enlarged. In dominant olivopontocerebellar atrophy (OPCA), the Menzel type is characterized by cerebellar atrophy of the "fine comb" type with the greatest involvement in the anterior lobe and in the upper part of the middle lobe. The hemispheres are more involved than the vermis. The brainstem, especially the pons, and the brachia pontis are also atrophic. In severe cases, the changes are very marked. Although the fourth ventricle is large, it lacks the ballooning characteristic of OPCA with slow saccades. In OPCA with slow saccades with or without retinal degeneration, the most pathognomonic features are "ballooning of the fourth ventricle" due to excavation of its floor and the "molar tooth deformity" secondary to severe atrophy of the pons, brachia pontis and conjunctiva. The cerebellum usually shows pancerebellar atrophy of the "fine comb" type. In recessive OPCA, cerebellar atrophy is most marked in the lateral part of the cerebellar hemispheres with "fish mouth deformity" secondary to drop-out of the tertiary and secondary folia from the primary folia. This feature is less marked in cases of atypical cerebello-olivary atrophy. In late-onset sporadic OPCA with autonomic failure, the cerebellum, especially its lateral portions and the brainstem, are variably involved in the atrophic processes, ranging from very mild to severe involvement.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

The origin of vertebrate limbs.

The earliest tetrapod limbs are polydactylous, morphologically varied and do not conform to an archetypal pattern. These discoveries, combined with the unravelling of limb developmental morphogenetic and regulatory mechanisms, have prompted a re-examination of vertebrate limb evolution. The rich fossil record of vertebrate fins/limbs, although restricted to skeletal tissues, exceeds the morphological diversity of the extant biota, and a systematic approach to limb evolution produces an informative picture of evolutionary change. A composite framework of several phylogenetic hypotheses is presented incorporating living and fossil taxa, including the first report of an acanthodian metapterygium and a new reconstruction of the axial skeleton and caudal fin of Acanthostega gunnari. Although significant nodes in vertebrate phylogeny remain poorly resolved, clear patterns of morphogenetic evolution emerge: median fin origination and elaboration initially precedes that of paired fins; pectoral fins initially precede pelvic fin development; evolving patterns of fin distribution, skeletal tissue diversity and structural complexity become decoupled with increased taxonomic divergence. Transformational sequences apparent from the fish-tetrapod transition are reiterated among extant lungfishes, indicating further directions for comparative experimental research. The evolutionary diversification of vertebrate fin and limb patterns challenges a simple linkage between Hox gene conservation, expression and morphology. A phylogenetic framework is necessary in order to distinguish shared from derived characters in experimental model regulatory systems. Hox and related genomic evolution may include convergent patterns underlying functional and morphological diversification. Brachydanio is suggested as an example where tail-drive patterning demands may have converged with the regulation of highly differentiated limbs in tetrapods.

Animals↗

An evolutionary framework for the study of developmental evolution in a set of nematodes related to Caenorhabditis elegans.

Nematodes are known to be a useful system for studies of comparative development. Here we perform a molecular phylogenetic analysis to allow for the independent interpretation of the developmental and morphological changes observed among a selected set of nematode species. Our molecular phylogenetic analysis is based on coding regions of the genes for RNA polymerase II, the small subunit rRNA and an expansion segment of the large subunit rRNA. Sequences were compared from five species in the family (Rhabditidae) that includes the developmental model organism Caenorhabditis elegans and from an outgroup taxon Aduncospiculum halicti (Diplogasterina). The phylogenetic analysis does not support the monophyly of the subfamily Mesorhabditinae and identifies the unnamed strain PS1010 as a sister taxon of C. elegans despite its morphologically divergent buccal capsule. On the basis of the inferred framework, we can begin to interpret the evolution of vulval development and of morphological differences among these nematode species.

Animals↗

Discovery of an ornithurine bird and its implication for Early Cretaceous avian radiation.

An ornithurine bird, Hongshanornis longicresta gen. et sp. nov., represented by a nearly complete and articulated skeleton in full plumage, has been recovered from the lacustrine deposits of the Lower Cretaceous Jehol Group in Inner Mongolia, northeast China. The bird had completely reduced teeth and possessed a beak in both the upper and lower jaws, representing the earliest known beaked ornithurine. The preservation of a predentary bone confirms that this structure is not unique to ornithischian dinosaurs but was common in early ornithurine birds. This small bird had a strong flying capability with a low aspect ratio wing. It was probably a wader, feeding in shallow water or marshes. This find confirms that the aquatic environment had played a key role in the origin and early radiation of ornithurines, one branch of which eventually gave rise to extant birds near the Cretaceous/Tertiary boundary. This discovery provides important information not only for studying the origin and early evolution of ornithurines but also for understanding the differentiation in morphology, body size, and diet of the Early Cretaceous birds.

Animals↗

Libbie Henrietta Hyman (1888-1969): from developmental mechanics to the evolution of animal body plans.

Libbie Hyman is the most influential comparative invertebrate zoologist of the 20th century in the English-speaking world. During the first part of her career Hyman conducted experimental research on the metabolic and developmental physiology of a host of invertebrates and vertebrate embryos. One important aim of these studies was to elucidate the hidden processes of morphogenesis. Some of the papers from this early phase of Hyman's career already contain the seeds for her subsequent occupation with comparative embryology and morphology to address questions about animal body plan evolution and metazoan phylogeny. Hyman's views on invertebrate evolution and phylogeny have become widely incorporated into textbooks, and until very recently Hyman's ideas have been equated with 'traditional' or 'classical' views on animal evolution. Hyman's enduring fame and significance for modern evo-devo is primarily based upon her magisterial six-volume series The Invertebrates, which is the most encompassing single-author synthesis of invertebrate structure and development of the 20th century. In The Invertebrates Hyman addressed numerous questions about the evolution of animal body plans and metazoan phylogeny that are nowadays core items on the research agenda of evo-devo. In addition, Hyman had a lasting influence on teaching with the publication of her widely used laboratory manuals for elementary zoology, and especially comparative vertebrate anatomy.

Animals↗

Epigenetics and plant evolution.

A fundamental precept of evolutionary biology is that natural selection acts on phenotypes determined by DNA sequence variation within natural populations. Recent advances in our understanding of gene regulation, however, have elucidated a spectrum of epigenetic molecular phenomena capable of altering the temporal, spatial, and abundance patterns of gene expression. These modifications may have morphological, physiological, and ecological consequences, and are heritable across generations, suggesting they are important in evolution. A corollary is that genetic variation per se is not always a prerequisite to evolutionary change. Here, we provide an introduction to epigenetic mechanisms in plants, and highlight some of the empirical studies illustrative of the possible connections between evolution and epigenetically mediated alterations in gene expression and morphology.

Biological Evolution↗

Alligators provide evidence for the evolution of an archosaurian mode of oviparity.

The female reproductive tract of birds is different from that of other oviparous amniotes in that the eggshell membranes and calcareous layer are formed in separate regions of the uterus; the isthmus and shell gland, respectively. Phylogenetically, birds are included among the archosaurs, along with crocodilians and dinosaurs. Many dinosaurs were oviparous, producing hard-shelled eggs, yet the reproductive system of dinosaurs has proven difficult to investigate, due to poor preservation of soft anatomy. In this study, we examined functional morphology and eggshell formation in a reptilian archosaur, the American alligator, and demonstrated that the crocodilian reproductive tract has separate uterine regions for formation of the eggshell membranes and calcareous layer. These uterine regions are ultrastructurally comparable to the isthmus and shell gland of birds, and may be homologous. This similarity of reproductive functional morphology between crocodilians and birds may implicate the evolution of an archosaurian mode of oviparity that may shed light on dinosaur reproduction.

Alligators and Crocodiles↗

Evolution of inner-ear auditory apparatus in the frog.

The morphology of typical anuran amphibian papillae is thoroughly distinct from that of urodeles. However, the morphological discontinuity lies not between the frogs and the salamanders, but between the most primitive living frog, Ascaphus truei, and the more derived anurans. Three features distinguishing the papillae of more derived anurans from that of Ascaphus apparently provide peripheral tonotopy in the former. The adaptive significance of a fourth feature, kinociliary bulbs, is not clear.

Animals↗

[Sequelae of post-reduction osteochondritis of the hip and their treatment in adults].

In 71 adult patients who had suffered from osteochondritis after reduction of congenital dislocation of the hip, the authors made a comparative study of the natural evolution (22 cases) and of post-operative evolution after conservative surgery (49 cases), after a minimal period of ten years of observation with a follow-up until fifty or sixty years of age. This led the authors to establish a morphological classification in three types. For each, the natural evolution differed, and the authors were thus able to propose indications for conservative surgery according to the age of the patient and the degree of degenerative changes.

Adolescent↗

Karyotype evolution in B-cell lymphoid malignancy with an 8;14 translocation.

To evaluate the significance of karyotypic evolution of tumor cells with an 8;14 translocation [t(8;14)(q24;q32)], we examined the clinicopathologic features and immunologic phenotypes of nine Japanese patients with various types of B-cell malignancy with the translocation. All these patients had structural rearrangements of the long arm of chromosome No. I (Iq) in a stem line or the subline of tumor cells with a t(8;14). The rearrangements were composed of a translocation involving Iq with other chromosomes and a tandem duplication of Iq, and they were exclusively associated with a partial trisomy for Iq. Two patients with diffuse large-cell lymphoma, whose tumor cells did not express surface immunoglobulins (s-Ig), had the Iq translocation in their highly complex karyotypes. Tumor cells from the other seven patients expressed s-Ig and the karyotypes were relatively simple. Among these patients, the Iq translocation was found in two patients with Burkitt's lymphoma, and the Iq duplication were observed in a stem line or the sublines from four patients with Burkitt's lymphoma-leukemia and one each with small non-cleaved-cell or diffuse large-cell lymphoma. Except for one patient in the stage of IE, these patients had a poor prognosis because of the clinical conversion of extranodal metastases in the earlier disease phase. These findings are compatible with those of Western patients with a t(8;14). Therefore, tumor cells marked primarily with a t(8;14) could have "major routes" in the karyotypic evolution, for which potentials should be recognized as clinical risk factors, and the morphologic presentation and the expression of surface immunoglobulins may be associated with the process of karyotypic evolution.

Adult↗

The functional genomic distribution of protein divergence in two animal phyla: coevolution, genomic conflict, and constraint.

We compare the functional spectrum of protein evolution in two separate animal lineages with respect to two hypotheses: (1) rates of divergence are distributed similarly among functional classes within both lineages, indicating that selective pressure on the proteome is largely independent of organismic-level biological requirements; and (2) rates of divergence are distributed differently among functional classes within each lineage, indicating species-specific selective regimes impact genome-wide substitutional patterns. Integrating comparative genome sequence with data from tissue-specific expressed-sequence-tag (EST) libraries and detailed database annotations, we find a functional genomic signature of rapid evolution and selective constraint shared between mammalian and nematode lineages despite their extensive morphological and ecological differences and distant common ancestry. In both phyla, we find evidence of accelerated evolution among components of molecular systems involved in coevolutionary change. In mammals, lineage-specific fast evolving genes include those involved in reproduction, immunity, and possibly, maternal-fetal conflict. Likelihood ratio tests provide evidence for positive selection in these rapidly evolving functional categories in mammals. In contrast, slowly evolving genes, in terms of amino acid or insertion/deletion (indel) change, in both phyla are involved in core molecular processes such as transcription, translation, and protein transport. Thus, strong purifying selection appears to act on the same core cellular processes in both mammalian and nematode lineages, whereas positive and/or relaxed selection acts on different biological processes in each lineage.

Amino Acid Substitution↗

Particulate versus integrated evolution of the upper body in late pleistocene humans: a test of two models.

Evolutionary biologists are largely polarized in their approaches to integrating microevolutionary and macroevolutionary processes. Neo-Darwinians typically seek to identify population-level selective and genetic processes that culminate in macroevolutionary events. Epigeneticists and structuralists, on the other hand, emphasize developmental constraints on the action of natural selection, and highlight the role of epigenetic shifts in producing evolutionary change in morphology. Accordingly, the ways in which these paradigms view and address morphological contrasts between classes of related organisms differ. These paradigms, although seldomly explicitly stated, emerge in paleoanthropology as well. Considerations of postcranial morphological contrasts between archaic and modern humans typically fall into one of two broad interpretive models. The first derives from the neo-Darwinian perspective and holds that evolution in the postcranial skeleton was largely mosaic (operating in a particulate manner), and that temporal change in specific traits informs us about behavioral shifts or genetic evolution affecting isolated anatomical regions (i.e., adaptive behavioral inferences can be made from comparative studies of individual trait complexes). The alternative model follows from the epigeneticist paradigm and sees change in specific postcranial traits as correlated responses to change in overall body form (involving shifts in regulation of skeletal growth, or selective and developmental responses to broad adaptive shifts). By this view, integration of functional systems both constrains and directs evolution of various traits, and morphological contrasts inform us about overall change in body form related to change in such things as overall growth patterns, climatic adaptation, and technological dependency. These models were tested by confirmatory factor analysis using measures of upper body form and upper limb morphological traits in Eurasian Neandertal and early modern fossils and recent human samples. Results indicate (1) a model of morphological integration fits the data better than a model of no integration, but (2) this integration accounts for less than half of the variance in upper limb traits, suggesting a high degree of tolerance for particulate evolution in the context of an integrated upper body plan. Significant relationships were detected between joint shapes and body size, between humeral shaft shape and body size and chest shape, and between measures of biomechanical efficiency and robusticity. The observed morphological differences between late archaic and early modern humans reflect particulate evolution in the context of constraints imposed by genetic and morphological integration. While particulate approaches to interpreting the fossil record appear to be justified, attention must also be paid to delineating the nature and extent of morphological integration and its role in both constraining and producing observed patterns of variation between groups. Confirmatory factor analysis provides a means of examining trait covariance matrices, and serves as a useful method of identifying patterns of integration in morphology.

Biological Evolution↗

Dysplasia classification: pathology in disgrace?

Grading of dysplasia is demanded almost daily from most diagnostically active pathologists. It is also notoriously subjective and lacks intra- and inter-observer reproducibility. This is partly due to the lack of validated morphological criteria, upon which pathologists have reached consensus. It is largely due to the biological nature of the evolution of dysplasia, not in discrete steps but as a continuum. Better morphological definition, but also fundamental research into the nature of the process, is necessary to resolve this issue.

Colonic Neoplasms↗

Trends in the functional morphology and sensorimotor control of feeding behavior in salamanders: an example of the role of internal dynamics in evolution.

Organisms are self-producing and self-maintaining, or "autopoietic" systems. Therefore, the course of evolution and adaptation of an organism is strongly determined by its own internal properties, whatever role "external" selection may play. The internal properties may either act as constraints that preclude certain changes or they open new pathways: the organism canalizes its own evolution. As an example the evolution of feeding mechanisms in salamanders, especially in the lungless salamanders of the family Plethodontidae, is discussed. In this family a large variety of different feeding mechanisms is found. The authors reconstruct this evolutionary process as a series of "bifurcation points" of either constraints or opportunities forming a sequence of preconditions for the formation of a high-speed projectile tongue characteristic of tropical salamanders. Furthermore, it is shown how parallel evolution of seemingly unrelated domains within an organism such as respiratory physiology, life history biology and pattern of ontogeny has rather direct relevance to the feeding biology, thus demonstrating that organisms always evolve as wholes.

Animals↗