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Chromosome phylogenies of man, great apes, and Old World monkeys.

The karyotypes of man and of the closely related Pongidae--chimpanzee, gorilla, and orangutan--differ by a small number of well known rearrangements, mainly pericentric inversions and one fusion which reduced the chromosome number from 48 in the Pongidae to 46 in man. Dutrillaux et al. (1973, 1975, 1979) reconstructed the chromosomal phylogeny of the entire primate order. More and more distantly related species were compared thus moving backward in evolution to the common ancestors of the Pongidae, of the Cercopithecoidae, the Catarrhini, the Platyrrhini, the Prosimians, and finally the common ancestor of all primates. Descending the pyramid it becomes possible to assign the rearrangements that occurred in each phylum, and the one that led to man in particular. The main conclusions are that this phylogeny is compatible with the occurrence during evolution of simple chromosome rearrangements--inversions, fusions, reciprocal translocation, acquisition or loss of heterochromatin--and that it is entirely consistent with the known primate phylogeny based on physical morphology and molecular evolution. If heterochromatin is not taken into account, man has in common with the other primates practically all of his chromosomal material as determined by chromosome banding. However, it is arranged differently, according to species, on account of chromosome rearrangements. This interpretation has been confirmed by comparative gene mapping, which established that the same chromosome segments, identified by banding, carry the same genes (Finaz et al., 1973; Human Gene Mapping 8, 1985). A remarkable observation made by Dutrillaux is that different primate phyla seem to have adopted different chromosome rearrangements in the course of evolution: inversions for the Pongidae, Robertsonian fusions for the lemurs, etc. This observation may raise many questions, among which is that of an organized evolution. Also, the breakpoints of chromosomal rearrangements observed during evolution, in human chromosomal diseases, and after ionizing irradiation do not seem to be distributed at random. Chromosomal rearrangements observed in evolution are known to be harmful in humans, leading to complete or partial sterility through abnormal offspring in the heterozygous state but not in the homozygous state. They then become a robust reproductive barrier capable of creating new species, far more powerful than gene mutations advocated by neo-Darwinism. The homozygous state may be achieved especially through inbreeding, which must have played a major role during primate evolution.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

Primate evolution at the DNA level and a classification of hominoids.

The genetic distances among primate lineages estimated from orthologous noncoding nucleotide sequences of beta-type globin loci and their flanking and intergenic DNA agree closely with the distances (delta T50H values) estimated by cross hybridization of total genomic single-copy DNAs. These DNA distances and the maximum parsimony tree constructed for the nucleotide sequence orthologues depict a branching pattern of primate lineages that is essentially congruent with the picture from phylogenetic analyses of morphological characters. The molecular evidence, however, resolves ambiguities in the morphological picture and provides an objective view of the cladistic position of humans among the primates. The molecular data group humans with chimpanzees in subtribe Hominina, with gorillas in tribe Hominini, orangutans in subfamily Homininae, gibbons in family Hominidae, Old World monkeys in infraorder Catarrhini, New World monkeys in semisuborder Anthropoidea, tarsiers in suborder Haplorhini, and strepsirhines (lemuriforms and lorisiforms) in order Primates. A seeming incongruency between organismal and molecular levels of evolution, namely that morphological evolution appears to have speeded up in higher primates, especially in the lineage to humans, while molecular evolution has slowed down, may have the trivial explanation that relatively small genetic changes may sometimes result in marked phenotypic changes.

Animals

Auditory primary afferents in the starling: correlation of function and morphology.

Despite the independent evolution of birds and mammals, a number of structural similarities of their hearing organs have developed in parallel. By tracing the peripheral origin of functionally-characterized primary neurons, the present study demonstrates functional similarities between the respective hair cell populations of the hearing organs of birds and mammals. The space devoted to one octave on the starling's basilar papilla is not constant over the whole length; rather it increases from the apical low- to the basal high-frequency end. The finding that (with the exception of a specialized area near the apical end) only tall hair cells situated on the neural limbus receive active afferent innervation is a functional parallel to the mammalian inner hair cells. The thresholds of afferents increase with distance of the related hair cells from the neural side of the papilla and cover a range of more than 50 dB within the area of tall hair cells.

Acoustic Stimulation

Trophic molecules and evolution of the nervous system.

Although recent work has reemphasized the general importance of ontogeny in evolution, underlying developmental molecular mechanisms are largely undefined. What heritable ontogenetic mechanisms result in the evolution of new morphologies and functions? Such questions are particularly difficult in the nervous system, in which each of 10(11) neurons forms approximately equal to 10(4) specific interconnections. I propose that specific heritable, trophic interactions during development, which determine cell survival and pathway size, form a substrate for neural evolution. This model is based on the observation that neurons are vastly overproduced during ontogeny; neurons, their pathways and connections are dependent on target-derived trophic factors for developmental survival; and co-innervating, functionally and anatomically distinct neural populations compete for common trophic factors for survival. Focusing on sympathetic and sensory neurons, which require the target-derived, trophic protein nerve growth factor at different times for developmental survival, and which innervate common targets, different classes of ontogenetic evolutionary mechanisms may be characterized. Evolution may occur from heritable changes in the structure of trophic gene products or altered timing of expression. Molecular mechanisms underlying heterochrony are thereby described. The model is directly applicable to evolution of the brain and is testable in a variety of situations.

Biological Evolution

Ultrastructural study of methionine sulfoximine-induced Alzheimer type II astrocytosis.

An ultrastructural study of cerebral cortex was performed in rats during the preictal period following the administration of the convulsant methionine sulfoximine (MSO). The morphologic changes were restricted to astrocytes and consisted of cytoplasmic enlargement, mitochondrial and rough endoplasmic reticulum proliferation, accumulation of glycogen, development of cisternal and saccular smooth endoplasmic reticulum, nuclear chromatin clumping, and hydropic degenerative changes. These findings resemble those seen in experimental ammonia encephalopathy, suggesting an important role of ammonia in the evolution of these morphologic changes. The findings, moreover, suggest that the primary effect of MSO is on astrocytes and that abnormalities in astrocytes may play a role in the development of MSO-induced seizures.

Alzheimer Disease

Frequency-dependent selection, metrical characters and molecular evolution.

Computer models of selection acting on a quantitative character show that a combination of frequency-dependent and stabilizing selection can maintain many polymorphisms among the genes that determine the character. The models also show that the random order of mutations can give rise to selectively driven stochastic effects that are sometimes more important than random genetic drift. They suggest simple explanations for patterns of divergence between populations and species, and for apparent discrepancies between the rates of morphological and molecular evolution. They point towards a selective theory of 'molecular clocks'.

Animals

[Early cirrhosis, an early modality of the evolution of acute hepatitis. The clinico-biological, immunological and morphological aspects].

A group of 12 patients with recent acute hepatitis (8/86 with HVB and 4/22 with alcoholic hepatitis) had a rapid evolution (under 2 years) towards hepatic cirrhosis (early H.C.). The clinical-biological, immunological and morphological study made evident several characteristics, which became predictive markers of the early cirrhotic evolution of acute hepatitis. Clinically, a persistence of dyspeptic disorders and appearance of several systemic manifestations is noticed. Biologically, the maintenance of some increased transmainases, variable bilirubinemia and decrease of serinemia. Immunologically, the transfer of IgM towards increased IgM, the decrease of the total T lymphocyte and of T1 substrate, the increase of the active B and T lymphocyte. The morphologic exploration is decisive for specification of the diagnosis in the early hepatic cirrhosis.

Acute Disease

[Radiographic course of inverted osteochondral graft using the Regnauld technic in the surgical treatment of hallux valgus].

The osteocartilaginous bone graft, conceived by Regnauld for surgical treatment of hallux valgus, is to-day widely known and practised. We have preferably employed the so called "inverted graft", while Regnauld, in his recent monography, defines it less satisfactory than the "cork" or "hat" shaped grafts. Therefore, we have observed the radiological evolution of our inverted grafts, to evaluate the possible differences of their "rootage" in comparison to the cork grafts, studied by Valenti in 1976. Some possible causes of the infrequent failures of this grafting are also examined and discussed. We conclude that the osteocartilaginous graft evolution do not show radiological differences referable to the graft morphology and that unfavourable evolution, when is present, concern at first the articular (cartilaginous) side of the graft, being independent of failed rootage or aseptic necrosis of the bony side.

Bone Transplantation

Age-related changes in the density and morphology of plaques and neurofibrillary tangles in Down syndrome brain.

Fifteen cases of Down syndrome between age 25-59 years were examined neuropathologically. A variety of histological methods were used to identify plaques and neurofibrillary tangles (NFT). All cases had some plaques or NFT, but their density was generally not high before the age of 40 years. Plaques and NFT tended to appear at about the same time although in somewhat different cortical areas. Changes appeared first in the dentate gyrus, subiculum, entorhinal and association neocortex. The stages in the evolution of plaque morphology were quantitated in the dentate gyrus. The earliest change was the extracellular accumulation of fibrillar material with the histological characteristics of amyloid. In the second stage there was an exuberant neuritic reaction with swollen processes that contained little or no paired helical filaments (PHF). Stage 1 and 2 plaques were seen predominantly between ages 25-38 years, and were not obviously associated with blood vessels or glial cells. In the third stage of plaque formation neurites appeared to degenerate, contained more PHF, and surrounded a compact core of amyloid. Stage 3 plaques were never very numerous, and were seen only between ages 48-55 years. Stage 4 plaques consisted of a cloud of silver-positive debris. They appeared to be the final stage and were the predominant morphological type in the dentate gyrus after age 48 years. Amyloid angiopathy was present only after age 48, and was a prominent finding in only three cases.

Adult

[Post-natal maturation of the retina in the albino rat. I. The pigment epithelium].

The Authors studied the postnatal development of the retinal pigment epithelium in the albino rat, in order to elucidate its morphological and functional evolution, correlated to the numerous functional roles played in Vertebrates (Scheme 1). At birth, epithelial cells show few cytoplasmic organules and the apical surface provided of small depressions. From the third to the fifth postnatal day the first apical microfolds surround the depressions. From the seventh to the ninth day inner segments develop, whilst the apical surface of the epithelial cells is covered by many finger-like microfolds. During the eleventh postnatal day the buds of the outer segments and many lamellar microfolds can be demonstrated. During the sixteenth day the retina reaches its adult morphology. It is therefore well-evident that birth, similarly to many other Vertebrates, is not the last step, but only a moment, in the development of the retina: this process is completed only during postnatal life, when environmental light is able to stimulate every ocular structure.

Albinism

Postnatal evolution of the human pineal gland. An immunohistochemical study.

Pineal glands from 16 infants ranging from 38 weeks gestation to 3 years of age were fixed in buffered formalin; Paraffin sections were stained for neuron-specific enolase, glial fibrillary acidic protein, and S-100 protein (S-100) using the peroxidase-antiperoxidase method and hematoxylin and eosin, Masson-Fontana, and Bodian stains. The pineal glands of neonates consisted of cords of closely packed, dark, nucleated cells (type I) with intervening loosely arranged, large, clear cells (type II). The type I cells were frequently pigmented and occasionally exhibited rosette formation. They were positive for S-100 and negative for neuron-specific enolase. The type II cells were strongly positive for neuron-specific enolase and negative for melanin and S-100. The type I cells were the predominant cell type at birth; however, the number of type II cells gradually increased with age, and by the age of 1 year, only scattered S-100 positive cells, consistent with sustentacular cells, were found. The findings indicated that the human pineal glands undergo a remarkable morphologic and functional evolution as an endocrine organ in the postnatal life.

Cell Differentiation

Variation in neuromuscular activity during prey capture by trophic specialists and generalists (Pisces: Labridae).

Members of the marine teleost family Labridae are among the most abundant and morphologically diverse fish on coral reefs. A quantitative analysis was conducted of the neuromuscular activity patterns controlling movement of the jaws during prey capture by 4 labrid species ranging from trophic specialists to trophic generalists. A total of more than 800 captures of 3 prey types was analyzed. All 4 species showed significant modulation of electromyographic parameters in response to different prey types. Significant variation was also found between replicate experiments on the same individuals. To obtain valid assessments of interspecific variability, statistical analyses must take into account this potentially high degree of intraspecific variability. By partitioning the variance in a nested analysis of variance, a lack of significant differences in electromyographic parameters between species became apparent. In contrast to the closely related Cichlidae, trophic diversification in the Labridae has not been accompanied by the acquisition of unique neuromuscular activity patterns for prey capture. The dramatic adaptive radiation that has occurred in these 2 families has involved different processes of evolutionary diversification. Neuromuscular stereotypy of labrids may be associated with the lack of structural flexibility in their 'coupled jaw'. Additional study is needed to establish the extent to which labrid radiation into various trophic niches is related to the evolution of specialized morphologies and foraging behaviors.

Animals

Chromatin reorganization during senescence of proliferating cells.

It was previously proposed (Macieira-Coelho, 1979) that aging of proliferating cells is the result of genome reorganization taking place during the division cycle. This hypothesis was investigated and a reorganization could indeed be ascertained in the different hierarchical orders of DNA structure; a correlation was found between changes in chromatin organization and the impairment of cell cycle-related events. Indeed, like the latter, the reorganization of chromatin structure is characterized by a succession of subtle changes through the cell population life span, and a final short stage with abrupt events. The final events seem to concern mainly the organization of heterochromatin. The reorganization in the genome is accompanied by structural changes in the cellular scaffold and an evolution of cell morphology. The remodeling occurring in the cell through serial divisions seems to take place in such a way as to decrease the probability of further reorganizations, tending to a limit. The decline of the proliferative activity seems to be the result of the tendency to reach this limit.

Animals

Richter's syndrome presenting as primary central nervous system lymphoma. Transformation of an identical clone.

The development of a central nervous system (CNS) large cell lymphoma in a patient simultaneously diagnosed with chronic lymphocytic leukemia (CLL) is reported. Although differences in phenotypic expression were demonstrated in study of the peripheral blood and CNS disease, identical immunoglobulin gene rearrangements were identified, providing evidence for evolution of two morphologically distinct neoplasms from the same clone. Beyond histologic transformation, acquisition of an aneuploid cell population in the CNS tumor was demonstrated by analysis of DNA content. Isolated parenchymal involvement of the CNS by large cell transformation of CLL has not been previously described; its relationship to CNS lymphoma and Richter's syndrome are reviewed.

Aged

Biocontrol potential and molecular basis of predation in a marine raptorial ciliate.

Predator-prey interactions are widespread across organisms and are key drivers of morphological and behavioral evolution. Despite this, predation remains poorly understood among microbial eukaryotes, mostly due to the absence of a tractable experimental system that allows quantitative, reproducible investigation. This study establishes the marine raptorial ciliate Chaenea vorax as a highly efficient predator, with Rosenzweig-MacArthur model simulations based on predation data showing that only a few dozen individuals can eliminate the vast majority of the facultatively pathogenic ciliate Uronema marinum within 1-2 days, providing a quantitative basis for developing predator-based biocontrol strategies in aquaculture. Genomic analysis shows that C. vorax possesses a highly fragmented macronuclear genome enriched with predation-related pathways, including calcium-mediated contractility, cellular proteolysis, toxin expulsion systems, among others. Transcriptomic profiling during predation events further demonstrates significant upregulation of genes involved in cytoskeletal remodeling, proteolytic activity, and cellular detoxification. Evolutionary analyses suggest that C. vorax has an extremely long evolutionary history, exceptionally high nucleotide diversity even among ciliates, and gene family expansions linked to predatory adaptation. Although the prey possesses certain defensive mechanisms (e.g. trichocysts), these are largely ineffective against short-term predation in closed aquatic environments. These findings provide fundamental insights into the molecular basis of predation in ciliates and suggest the potential utility of C. vorax in biocontrol applications targeting pathogenic ciliates.

Ciliophora

Polysomnography in newborns and young infants: sleep architecture.

Sleep architecture derived from long-term polysomnographic recordings during the first year of life is characterized by clear developmental trends against a backdrop of variability. Variability is due to differences in state definitions and data collection and analysis strategies but probably also to an intrinsic characteristic of the maturing central nervous system (functional plasticity). Changes in sleep and wakefulness probably constitute nonspecific responses to a variety of stimuli. The variability has frustrated efforts to use specific features of sleep architecture for diagnostic or prognostic purposes. At present, polysomnographic studies of sleep architecture independent from EEG and cardiorespiratory studies are not indicated for diagnosing specific medical conditions or prognoses of good/adverse outcomes. For accurate interpretation for cardio-respiratory data, however, studies of sleep and wakefulness are indispensable. Furthermore, the study of neonatal seizures, in particular the coherence of state-defining variables or the evolution of sleep morphology, may benefit from attention to sleep architecture. Initial findings from some laboratories suggest that the very feature of excessive instability, which can be measured by repetitive long-term polysomnographic monitoring, signals a poor prognosis. In addition, fragmented sleep and the evolving interrelationship between ultradian and circadian rhythms may contain useful information that has yet to be mined. The advent of computer technologies can make the clinical laboratory into a setting where both research and clinical studies contribute to an elucidation of risk for sudden infant death syndrome and sequelae of neonatal seizures.

Circadian Rhythm

[Black grain mycetoma caused by Madurella grisea].

The authors reported one case of eumycotic mycetoma due to Madurella grisea (black grains) occurred on the right foot of the patient studied. The structure, microscopic morphology and therapeutic evolution are also studied and reported.

Adult