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Mitochondrial proliferation in the permanent vs. temporary cold: enzyme activities and mRNA levels in Antarctic and temperate zoarcid fish.

Adjustments in mitochondrial properties and capacities are crucial in acclimatization to seasonal cold and in evolutionary cold adaptation of marine ectotherms. Although long-term compensatory increments in aerobic capacity of fish tissues have frequently been described in response to cold, much less is known about transitional phases and gene expression patterns involved. We investigated the time course of adjustment to acute cold in liver of eurythermal eelpout Zoarces viviparus. Whereas citrate synthase (CS) activity rose progressively in liver, cytochrome c oxidase (COX) activity was not altered during cold acclimation. Species-specific RNA probes were used to determine mRNA levels. CS mRNA (nuclear encoded) displayed a delayed, transient increase in response to cold, such that transcript levels did not parallel the change in enzyme activity. The enzyme activities and mRNA levels in the confamilial Antarctic Pachycara brachycephalum indicate cold compensation of CS activity in this cold-adapted species. The ratio of CS and COX activities was elevated in acclimation and adaptation to cold, indicating enhanced citrate synthesis over respiratory chain capacities in cold-adapted liver mitochondria. This may support enhanced lipid synthesis typically found in cold. The ratio of enzyme activity and transcript levels differed largely between Z. viviparus populations from the Baltic and North Seas, indicating the influence of unidentified parameters other than temperature. Transcript levels may not be tightly correlated with enzyme activities during thermal adaptation and thereafter. The time course of the acclimation process indicates that regulation at the translational and posttranslational levels predominates in adjustment to moderate thermal challenges.

Acclimatization↗

Convergence of complex cognitive abilities in cetaceans and primates.

What examples of convergence in higher-level complex cognitive characteristics exist in the animal kingdom? In this paper I will provide evidence that convergent intelligence has occurred in two distantly related mammalian taxa. One of these is the order Cetacea (dolphins, whales and porpoises) and the other is our own order Primates, and in particular the suborder anthropoid primates (monkeys, apes, and humans). Despite a deep evolutionary divergence, adaptation to physically dissimilar environments, and very different neuroanatomical organization, some primates and cetaceans show striking convergence in social behavior, artificial 'language' comprehension, and self-recognition ability. Taken together, these findings have important implications for understanding the generality and specificity of those processes that underlie cognition in different species and the nature of the evolution of intelligence.

Animal Communication↗

Development of behavior in Lemur macaco in the first nineteen weeks.

Eight young Lemur macaco were observed in a zoo during the first 19 weeks of life. Data were obtained on general motor development, development of independence from the mother, contributions of mothers and young to thhe maintenance of proximity, nursing, grooming, relations between twins, play, feeding, sexual dichromatism, and communication. The results are compared with similar data from other prosimians and from anthropoid primates, and some suggestions made about the evolutionary and adaptive significance of certain aspects of L. macaco development.

Agonistic Behavior↗

Temperature-dependent protein synthesis capacities in Antarctic and temperate (North Sea) fish (Zoarcidae).

For an evaluation of effects of seasonal cold acclimation and evolutionary cold adaptation on protein synthesis capacity, the protein synthesis apparatus was isolated from the gills and white muscle of Antarctic eelpout Pachycara brachycephalum and North Sea eelpout Zoarces viviparus. Both species had been acclimated to 0 degrees C (control) and 5 degrees C (Antarctic) and 5 degrees C and 10 degrees C (North Sea control). The translational capacities of the protein synthesis machineries were determined in an optimised cell-free in vitro system. The results demonstrate that tissues from the polar zoarcid possess cold-adapted protein synthesis machineries, indicated by low activation energies and, especially, high RNA translational capacities at similar RNA:protein ratios when compared to temperate zoarcids at 10 degrees C. When both species were brought to 5 degrees C, the temperate species displayed cold compensated protein synthesis capacities caused by elevated RNA:protein ratios. Warm exposure (from 0 to 5 degrees C) of the Antarctic zoarcid revealed a capacity for thermal acclimation indicated by a reduction in protein synthesis capacities associated with lower RNA:protein ratios.

Acclimatization↗

Ethanol tolerance in bacteria.

The adverse effects of ethanol on bacterial growth, viability, and metabolism are caused primarily by ethanol-induced leakage of the plasma membrane. This increase in membrane leakage is consistent with known biophysical properties of membranes and ethanolic solutions. The primary actions of ethanol result from colligative effects of the high molar concentrations rather than from specific interactions with receptors. The ethanol tolerance of growth in different microorganisms appears to result in large part from adaptive and evolutionary changes in cell membrane composition. Different cellular activities vary in their tolerance to ethanol. Therefore, it is essential that the aspect of cellular function under study be specifically defined and that comparisons of ethanol tolerance among systems share this common definition. Growth is typically one of the most sensitive cellular activities to inhibition by ethanol, followed by survival, or loss of reproductive ability. Glycolysis is the most resistant of these three activities. Since glycolysis is an exergonic process, a cell need not be able to grow or remain viable for glycolysis to occur.

Bacteria↗

[Comparative volumetric analysis of the main subdivisions of the brain in saurian reptiles].

The volumetric measure of the main subdivisions of the brain has been carried out on 32 species of Lizards and 3 species of Snakes. The analysis of the allometrical relations between the volume (the weight) of these subdivisions and the body weight shows firstly that the evolutionary or/and adaptative processes are only located at the mesencephalic and metencephalic levels. A more elaborate study leads meanwhile to the conclusion that anothers brain structures - pallium, basal areas, dorsal thalamus - are also implicated, according to the possibility to group the various species into taxomic units (such as family) or in another way; thus it has been possible to corroborate with quantitative datas the NORTHCUTT'S definition (1972) of the Type I (Lacertomorpha) and Type II (Dracomorpha) lizards; the Dracomorpha show "dynamical" structures - pallium and dorsal thalamus - and remind, in some degree the mammal organization. Each structure in each species can be expressed by the way of a relation index; like the encephalization index, the referrence is given by the 6 Lacertidae of the sample. The analysis of these indices is carried according to the legless condition, tree-dwelling life, vision performance and the various possibilities to group the species (taxonomic units such as family or another else); the comparison of the various indices corroborates the pecularities of the Lacertomorpha on the one hand and of the Dracomorpha on the other hand. The isoponderal percentages are calculated taking into account the allometrical relations and thus are better than the relative volumes commonly used. They lead to results previously expressed by the various relation indices. The comparison between Lizards and Snakes leads to the following conclusions: Snakes are less different among themselves than the Lizards, but the species of modern type (Caenophidia) are more telencephalized; they show a proper brain organization; meanwhile the legless condition is expressed, like in the so-called lizards, by a reduced cerebellar volume.

Animals↗

Clinical development of P glycoprotein modulators in oncology.

The last two decades have witnessed dramatic advances into the mechanisms of drug resistance in cancer. The identification of P glycoprotein (Pgp) as a specific mechanism led to the initial hope and expectation that it would be possible to modulate this and increase sensitivity to drug therapy. Clinical trials using first- and second-generation Pgp modulators did establish proof of principle that in some settings, clinical drug resistance could be overcome with the addition of a Pgp modulator-for example, clinical resistance to paclitaxel, a Pgp substrate, in women with ovarian cancer was shown to be overcome in approximately 20% with the addition of PSC 833, a highly effective Pgp modulator. However, evolutionary and adaptive redundancy in resistance mechanisms have tempered clinical results, even with very effective second- and third-generation modulators. The lessons from oncology establish sound methodology for the evaluation of Pgp modulators for safety, tolerability and efficacy in Phase I, II and III clinical trials. This review will focus on some of the early-phase clinical trials with earlier and newer Pgp modulators, either as single agents or in combination with chemotherapy.

ATP Binding Cassette Transporter, Subfamily B, Mem↗

[Molecular-ecological technology of microorganisms and its application to research on environmental pollution].

Nucleicacid probe detection, PCR technique using primer, DNA sequential analysis, and electrophoresis separation and display were summarized and the application of these techniques to research on environmental pollution and future developing directions were discussed. It was pointed out that molecular-ecological technology of microorganisms are playing an important role in studying on relationships between microorganisms and contaminated environment. There are some important advances such as genetic adaptation and evolutionary mechanisms of microorganisms in contaminated environment, the positioning of pollutant-degrading genes of microorganisms and the construction of microbiological engineering bacteria, thus promoting the development of molecular ecology for bioremediation of contaminated environment.

Bacteria↗

Molecular mimicry in translational regulation: the case of ribosomal protein S15.

Ribosomal protein S15 is highly conserved among prokaryotes. It plays a pivotal role in the assembly of the central domain of the small ribosomal subunit and regulates its own expression by a feedback mechanism at the translational level. The protein recognizes two RNA targets (rRNA and mRNA) that share only partial similarity. Its interaction with 16S rRNA has been fully characterized, while mRNA interactions and regulatory mechanisms have been extensively studied in E. coli and in T. thermophilus. Recently, we have characterized which aminoacids are involved in E. coli mRNA recognition, using an in vivo assay allowing to identify S15 mutations affecting the S15-mRNA interactions without altering 30S subunit assembly. Here, we address the following questions: Are common determinants used by S15 to recognize its rRNA and mRNA targets? What is the extent of molecular mimicry? Is the regulatory mechanism conserved? Our results indicate that specific recognition of mRNA and rRNA relies on both mimicry and site differentiation. They also highlight the high plasticity of RNA to adapt to evolutionary constraints.

Base Sequence↗

[Radiographic measurement of the antebrachiocarpal joint in dogs].

Radiographic processing of the antebrachiocarpal joint was conducted in 30 sexually mature dogs of different race, sex and body weight. Anteroposterior and profile radiograms of joints were made in standardized conditions. The aim of this paper was to determine the qualitative radiographic characteristics of the antebrachiocarpal joint in dogs, and the possibilities of applying various radiographic parameters in quantitative radiographic investigations of this region. The observed differences in the morphology of this joint in dogs in relation to the one in humans, are the result of evolutionary racial adaptation. By knowing these differences it is possible to adjust the radiographic measurement parameters which are in clinical practise use, and in that way enable the full use of dogs as experimental models in radiographic and surgical research projects.

Animals↗

Structural origins of mammalian albumin.

The amino acid sequence and disulfide bridges of bovine serum albumin reveal nine double loops formed by the bridges. The pattern and size of loops and connecting segments between loops indicate that a basic repeating unit (domain) consists of "large double loop-short connecting segment-small double loop-long connecting segment-large double loop-connecting segment between "domains" and repeats exactly three times. Thus, albumin arose by duplication of the primordial single domain gene, followed some time later by a half-gene duplication to give the ancestor of the present triple domain structure. These duplications are estimated to have occurred about 700 million years ago, based on the differences between domain (75 to 82%), the difference between bovine and human albumins (20%),and reported time estimates for globin and immunoglobulin evolution. Still farther back in time, the single domain arose by triplication of a gene of a primordial subdomain of about 77 amino acid residues, consisting of one large double loop with a segment on each end. The structure resulting from this triplication consisted of three large loops and three long connecting segments. Later, a gene deletion for part of a connecting segment and part of the middle large loop occurred to produce the large-small-large loop pattern. A proposed three dimensional structure for the "subdomain" shows spatial and sequence similarity with the G-H helical regions of myoglobin or hemoglobin, suggesting that it arose by duplication and separation of a gene for a C-terminal segment of a primitive globin. The CYS residues were introduced as an adaptive, convergent evolutionary event after separation from globin, but before duplication of the subdomain gene.

Amino Acid Sequence↗

Analysis of color spectra in comparative evolutionary studies: molecular phylogeny and habitat adaptation in the St. Vincent Anole (Anolis trinitatis).

The use of color (as distinct from color pattern) in comparative evolutionary studies is important, and objective, independent characters are needed. A new method was employed to investigate geographic color variation in the small arboreal lizard Anolis trinitatis on the island of St. Vincent. The simple delta analysis (based on the difference between eigenvector coefficients for adjacent regions of the spectrum) is aimed at increasing the objectivity with which a spectrum is cut into independent segments and does not predetermine segment width or number. There are distinct habitat types within this small island and distinct phylogenetic lineages (based on a kilobase of cytochrome b sequence) within this species. A series of matrix correspondence (Mantel) tests indicate that aspects of color are associated with habitat type (e.g., green dorsum in rain forest lizards), molecular phylogeny, or both. Hence, both adaptation by selection and historical processes are implicated as causes of geographic variation in color. The dewlap variation (e.g., strong ultraviolet reflectance in some Atlantic coastal sites) is very pronounced and, contrary to some expectations, may result in reproductive isolation even within small Lesser Antillean islands.

Adaptation, Physiological↗

Recombination enhances protein adaptation in Drosophila melanogaster.

Evolutionary theory predicts that the rate and level of adaptation will be enhanced in sexual relative to asexual genomes because sexual recombination facilitates the elimination of deleterious mutations and the fixation of beneficial ones by natural selection. To date, the most compelling evidence for this prediction comes from experimental evolution studies and from loci completely lacking recombination, such as those on Y chromosomes, which often show reduced adaptation and even degeneration. Here, by analyzing replacement and silent DNA polymorphism and divergence at 98 loci, I show that recombination increases the efficacy of protein adaptation throughout the genome of the fruit fly Drosophila melanogaster. Genes residing in genomic regions with reduced recombination rates suffer a greater load of segregating, mildly deleterious mutations and fix fewer beneficial mutations than genes residing in regions with higher recombination rates. These findings suggest that the capacity to respond to natural selection varies with recombination rate across the genome, consistent with theory on the evolutionary advantages of sex and recombination.

Adaptation, Biological↗

Diverse adaptations of an ancestral gill: a common evolutionary origin for wings, breathing organs, and spinnerets.

Changing conditions of life impose new requirements on the morphology and physiology of an organism. One of these changes is the evolutionary transition from aquatic to terrestrial life, leading to adaptations in locomotion, breathing, reproduction, and mechanisms for food capture. We have shown previously that insects' wings most likely originated from one of the gills of ancestral aquatic arthropods during their transition to life on land. Here we investigate the fate of these ancestral gills during the evolution of another major arthropod group, the chelicerates. We examine the expression of two developmental genes, pdm/nubbin and apterous, that participate in the specification of insects' wings and are expressed in particular crustacean epipods/gills. In the horseshoe crab, a primitively aquatic chelicerate, pdm/nubbin is specifically expressed in opisthosomal appendages that give rise to respiratory organs called book gills. In spiders (terrestrial chelicerates), pdm/nubbin and apterous are expressed in successive segmental primordia that give rise to book lungs, lateral tubular tracheae, and spinnerets, novel structures that are used by spiders to breathe on land and to spin their webs. Combined with morphological and palaeontological evidence, these observations suggest that fundamentally different new organs (wings, air-breathing organs, and spinnerets) evolved from the same ancestral structure (gills) in parallel instances of terrestrialization.

Adaptation, Physiological↗

Mutational adaptation of Escherichia coli to glucose limitation involves distinct evolutionary pathways in aerobic and oxygen-limited environments.

Mutational adaptations leading to improved glucose transport were followed with Escherichia coli K-12 growing in glucose-limited continuous cultures. When populations were oxygen limited as well as glucose limited, all bacteria within 280 generations contained mutations in a single codon of the ptsG gene. V12F and V12G replacements in the enzyme IIBC(Glc) component of the glucose phosphotransferase system were responsible for improved transport. In stark contrast, ptsG mutations were uncommon in fully aerobic glucose-limited cultures, in which polygenic mutations in mgl, mlc, and malT (regulating an alternate high-affinity Mgl/LamB uptake pathway) spread through the adapted population. Hence the same organism adapted to the same selection (glucose limitation) by different evolutionary pathways depending on a secondary environmental factor. The clonal diversity in the adapted populations was also significantly different. The PtsG V12F substitution under O(2) limitation contributed to a universal "winner clone" whereas polygenic, multiallelic changes led to considerable polymorphism in aerobic cultures. Why the difference in adaptive outcomes? E. coli physiology prevented scavenging by the LamB/Mgl system under O(2) limitation; hence, ptsG mutations provided the only adaptive pathway. But ptsG mutations in aerobic cultures are overtaken by mgl, mlc, and malT adaptations with better glucose-scavenging ability. Indeed, when an mglA::Tn10 mutant with an inactivated Mgl/LamB pathway was introduced into two independent aerobic chemostats, adaptation of the Mgl(-) strain involved the identical ptsG mutation found under O(2)-limited conditions with wild-type or Mgl(-) bacteria.

Adaptation, Physiological↗

Stress-induced variation in evolution: from behavioural plasticity to genetic assimilation.

Extreme environments are closely associated with phenotypic evolution, yet the mechanisms behind this relationship are poorly understood. Several themes and approaches in recent studies significantly further our understanding of the importance that stress-induced variation plays in evolution. First, stressful environments modify (and often reduce) the integration of neuroendocrinological, morphological and behavioural regulatory systems. Second, such reduced integration and subsequent accommodation of stress-induced variation by developmental systems enables organismal 'memory' of a stressful event as well as phenotypic and genetic assimilation of the response to a stressor. Third, in complex functional systems, a stress-induced increase in phenotypic and genetic variance is often directional, channelled by existing ontogenetic pathways. This accounts for similarity among individuals in stress-induced changes and thus significantly facilitates the rate of adaptive evolution. Fourth, accumulation of phenotypically neutral genetic variation might be a common property of locally adapted and complex organismal systems, and extreme environments facilitate the phenotypic expression of this variance. Finally, stress-induced effects and stress-resistance strategies often persist for several generations through maternal, ecological and cultural inheritance. These transgenerational effects, along with both the complexity of developmental systems and stressor recurrence, might facilitate genetic assimilation of stress-induced effects. Accumulation of phenotypically neutral genetic variance by developmental systems and phenotypic accommodation of stress-induced effects, together with the inheritance of stress-induced modifications, ensure the evolutionary persistence of stress-response strategies and provide a link between individual adaptability and evolutionary adaptation.

Acclimatization↗

Evolutionary Genomics Unravels the Responses and Adaptation to Climate Change in a Key Alpine Forest Tree Species.

Despite widespread biodiversity loss, our understanding of how species and populations will respond to accelerated climate change remains limited. In this study, we integrate population genomics, experimental evolution, and environmental modeling to elucidate the evolutionary responses to climate change in Populus lasiocarpa, a key alpine forest tree species primarily distributed in the mountainous regions of a global biodiversity hotspot. Over historical timescales, our findings demonstrate that demographic dynamics, divergent selection, and long-term balancing selection have shaped and maintained genetic variation within and between populations. In examining genomic signatures of contemporary climate adaptation, we found that haplotype blocks, potentially caused by inversion polymorphisms that suppress recombination, are linked to enriched combinations of locally adaptive environmental variations. We further assessed the relative contributions of environmentally induced plastic responses, constitutive expression divergence between genetic clusters, and their interactions in driving gene expression variation and divergence. Notably, we observed a strong correlation between sequence divergence and constitutive differential expression among genetic clusters. Finally, by incorporating genetic adaptation, migration, and genetic load into our predictions of population-level climate change risks, we identified western populations-primarily distributed in the Hengduan Mountains, a region known for its environmental heterogeneity and significant biodiversity-as the most vulnerable to climate change. These populations should be prioritized for conservation and management. Overall, our study advances the understanding of the relative roles of long-term natural selection, local environmental adaptation, and immediate plastic expression changes in shaping the responses of natural populations of keystone species to climate change.

Climate Change↗