PubMed Health⌕ Search

SEARCH · PubMed Health

Results for “Spatial heterogeneity”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

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

At least 55 records · Page 3Linked to original sources

The effect of spatial heterogeneity and parasites on the evolution of host diversity.

Both spatial heterogeneity and exploiters (parasites and predators) have been implicated as key ecological factors driving population diversification. However, it is unclear how these factors interact. We addressed this question using the common plant-colonizing bacterium Pseudomonas fluorescens, which has been shown to diversify rapidly into spatial niche-specialist genotypes when propagated in laboratory microcosms. Replicate populations were evolved in spatially homogeneous and heterogeneous environments (shaken and static microcosms, respectively) with and without viral parasites (bacteriophage) for approximately 60 bacterial generations. Consistent with previous findings, exploiters reduced diversity in heterogeneous environments by relaxing the intensity of resource competition. By contrast, exploiters increased diversity in homogeneous environments where there was little diversification through resource competition. Competition experiments revealed this increase in diversity to be the result of fitness trade-offs between exploiter resistance and competitive ability. In both environments, exploiters increased allopatric diversity, presumably as a result of divergent selection for resistance between populations. Phage increased total diversity in homogeneous environments, but had no net effect in heterogeneous environments. Such interactions between key ecological variables need to be considered when addressing diversification and coexistence in future studies.

Animals↗

Allee effects can both conserve and create spatial heterogeneity in population densities.

In order to determine conditions which allow the Allee effect (caused by biparental reproduction) to conserve and create spatial heterogeneity in population densities, we studied a deterministic model of a symmetric two-patch metapopulation. We proved that under certain conditions there exist stable equilibria with unequal population densities in the two patches, a situation which can be interpreted as conserved heterogeneity. Furthermore, the Allee effect can lead to instability of the equilibrium with equal population densities if some degree of competition is assumed to occur between the subpopulations (non-local competition). This indicates the potential of the Allee effect to create spatial heterogeneity. Neither of these effects appear under biologically realistic parameter values in a model where uniparental reproduction is assumed. We proved that both the between-patch migration intensity and the degree of non-local competition are decisive in determining boundaries between these types of behaviour of the spatial system with Allee effect. Therefore, we propose that the Allee effect, migration intensity, and non-local competition should be considered jointly in studies focusing on problems like pattern formation in space and invasions of spreading species.

Animals↗

Spatial heterogeneity not homogeneity of the magnetic field during exposures to complex frequency-modulated patterns facilitates analgesia.

24 young (4 mo.) and 24 old (8 mo.) male Wistar rats were exposed for 30 min. on two consecutive days to either a sham-field or to a frequency-modulated magnetic field applied through a pair of solenoids (spatially heterogeneous strength) or a Helmholtz coil (spatially homogeneous strength). The maximum field strength was about 2 microTesla. The rats exposed to the spatially heterogeneous magnetic field but not the homogeneous magnetic field exhibited strong analgesia to thermal stimuli applied to the footpads immediately after the treatment and 30 min. later. The effect accommodated 38% of the variance in the latency to respond to the thermal stimuli. These results suggest that the practice by many researchers in bioelectromagnetism to design coils to generate maximum spatial homogeneity of intensities within the exposure volume when applying complex weak magnetic fields may actually diminish any biological effects.

Analgesia↗

Spatial heterogeneity of energy turnover in the heart.

Local myocardial blood flow varies substantially in spite of a rather homogeneous morphology. To further elucidate this paradox, the spatial heterogeneity of tricarboxylic acid cycle turnover (J(TCA), micromol min(-1) g(-1)) and coronary flow was assessed at a high spatial resolution (6x6x6 mm3) in the open chest dog. Local flow differed more than 2.5-fold between individual samples in each heart (n=7). Out of 1,500 myocardial samples, 1/10 received less than 60% and another 1/10 more than 138% of the normalized mean. In low- and high-flow samples, pyruvate uptake and metabolism were analyzed by 13C NMR spectroscopy. Following [3-13C]pyruvate infusion (2 mM, 12 min), glutamate [4-13C]/[3-13C] was significantly greater in low-flow (2.21+/-0.75, 40 samples) than in high-flow (1.64+/-0.49, 39 samples) areas. This suggests that there are major differences in J(TCA). Glutamate, citrate and lactate content positively correlated with flow. Anaplerotic pathways contributed a fraction similar to J(TCA) in low- and high-flow areas, as demonstrated by isotopomer analysis after 60 min of [3-13C]pyruvate application. Mathematical model analysis of NMR data and relevant pool sizes revealed that J(TCA) and thus myocardial oxygen consumption (MVO2) in high-flow areas exceed values in low-flow areas at least threefold. Thus low and high metabolic states normally coexist within the well perfused heart, suggesting that there is considerable spatial heterogeneity of cardiac energy generation and work.

Alanine↗

[Spatial heterogeneity of Trichiurus japonicus and small-scale fish in East China Sea and their spatial relationships].

Based on the investigation at 121 positions in East China Sea in 2001 Autumn, this paper analyzed the spatial heterogeneity of hairtail (Trichiurus japonicus) and seven kinds of small-scale fish (Setipinna taty, Collichthys lucidus, Champsodon capensis, Amblychaeturichthys hexanema, Acropoma japonicum, Benthosema pterotum and Apogon lineatus), and the spatial relationships among them. The results indicated that the semivariogram curve of hairtail was very similar to those of Apogon lineatus, Amblychaeturichthys hexanema and Acropoma japonicum, with highly significant correlations (P < 0.01), and the semivariograms of Setipinna taty and Collichthys lucidus appeared as pure nugget effect. The others could be described as spherical or exponential model that had high spatial autocorrelation. The ranges of Apogon lineatus, Amblychaeturichthys hexanema and Acropoma japonicum were equal to or beyond that of hairtail (265 km). Hairtail was spatially close to these three species, and thus, the latter might be the main preys of hairtail.

Animals↗

[Model of mediator secretion at a neuromuscular synapse based on the spatial heterogeneity of the probability of acetylcholine quantum release].

A spatial heterogeneity of the probability of the mediator quantum release (pt) along the nerve terminal was found in experiments on frog sartorius muscle with extracellular recording of end-plate potentials. The expression of Ca2+ ions effect depended upon the initial pt. With intracellular recording the increase of Ca2+ concentration from 0.2 to 1.8 mM was accompanied by increase of n and p binomial parameters. On the basis of the obtained data a model of mediator release at neuromuscular synapsis is proposed, which allows the estimation of the coefficients of pt distribution along the nerve terminal and the number of acting release sites. For estimation of these parameters it is necessary to calculate the n and p at two different Ca2+ ion concentrations.

Acetylcholine↗

Host spatial heterogeneity and the spread of vector-borne infection.

We analyze how spatial heterogeneity in host density affects the advance of vector-borne disease. Infection requires vector infestation. The vector spreads only between hosts occupying the same neighborhood, and the number of hosts varies randomly among neighborhoods. Simulation of a spatially detailed model shows that increasing heterogeneity in host abundance reduces pathogen prevalence. Clumping of hosts can limit the advance of the vector, which inhibits the spread of infection indirectly. Clumping can also increase the chance that the pathogen and vector become physically separated during the initial phase of the epidemic process. The latter limitation on the pathogen's spread, in our simulations, is restricted to small interaction neighborhoods. A mean-field model, which does not maintain spatial correlations between sites, approximates simulation results when hosts are arrayed uniformly, but overestimates infection prevalence when hosts are aggregated. A pair approximation, which includes some of the simulation model's spatial correlations, better describes the vector infestation frequencies across host spatial dispersions.

Analysis of Variance↗

Spatial heterogeneity of the axolemma of non-myelinated fibers in the optic disc of the adult rat. Freeze-fracture observations.

This freeze-fracture study examined the structure of the axolemma of non-myelinated fibers in the optic disc region of the adult rat. Spatially heterogeneous patterns of intramembranous particles (IMPs) were observed on the E-fracture faces; particle distribution patterns ranged from clusters of 4-7 IMPs to linear arrays of particles 1-3 IMPs wide that apparently encircle the axon. These bands of particles displayed a periodicity of approximately 0.16 micrometers. The present findings demonstrate that, in specialized regions, the axolemma of non-myelinated fibers not in the region of synapses can exhibit distinct spatial heterogeneity.

Animals↗

The competitive exclusion principle versus biodiversity through competitive segregation and further adaptation to spatial heterogeneities.

In this work we introduce a general class of spatially heterogeneous competing species models where the species are assumed to disperse in a random way through the inhabiting region in the presence of some refuge patches where they are free from the aggressions of the antagonist species. Our model shows that the competitive exclusion principle fails to be true under these circumstances, as the species can segregate within their respective refuge areas when the intensity of the aggressions from competitors severely increase. Going beyond, segregation mechanisms, as a result from competition, combined with subsequent species differentiation, as a consequence from territorial heterogeneities--after a certain number of generations--might ultimately explain the extraordinary biodiversity of the Earth's biosphere, which seems to be confirmed by fossil registers in zoo-paleontology. Actually, the existence of Lazaro' species strongly support the validity of the predictions made from our prototype model.

Animals↗

Scaling up from local competition to regional coexistence across two scales of spatial heterogeneity: insect larvae in the fruits of Apeiba membranacea.

Species that live in patchy and ephemeral habitats can compete strongly for resources within patches at a small scale. The ramifications of these interactions for population dynamics and coexistence at regional scales will depend on the intraspecific and interspecific distributions of individuals among patches. Spatial heterogeneity due to independent aggregation of competitors among patchy habitats is an important mechanism maintaining species diversity. I describe regional patterns of aggregation for four species of insect larvae in the fruits of Apeiba membranacea, a Neotropical rainforest tree. This aggregation results from variation in densities at a small scale (among the fruits under a single tree), compounded by significant variation among trees in both mean densities and degrees of aggregation. Both the degrees of aggregation and mean densities are statistically independent within and across species at both spatial scales. I evaluate the regional consequences of these spatial patterns by using maximum likelihood methods to parameterize a model that includes both explicit measures of the strength of competition and spatial variation at both within- and among-tree spatial scales. Despite strong competitive interactions among these species, during 2 years the observed spatial variation at both scales combined was sufficient to explain the coexistence of these species, although other coexistence mechanisms may also operate simultaneously. The observed spatial variation at small spatial scales may not be sufficient for coexistence, indicating the importance of considering multiple sources of spatial heterogeneity when scaling up from experiments that investigate local interactions to regional patterns of coexistence.

Animals↗

Species coexistence by permanent spatial heterogeneity in a lottery model.

We studied the effect of permanent spatial heterogeneity in promoting species coexistence in a lottery model. The system consisted of multiple habitats, each composed of a number of sites occupied by adults of two species. Larvae produced from different habitats were mixed in a common pool. When an adult died, the vacant site became occupied by an individual randomly chosen from the larval pool. If there were n habitats, there could be up to n-1 internal equilibria with both species in addition to two single-species equilibria. These equilibria and their local stability can be calculated from a single function, indicating the difference among species in their average lifetime reproductive success. Our main result is that between-habitat variation in the ratio of mortalities of two species promotes coexistence, while that of reproductive rates does not. This conclusion is the opposite of the role of temporal variation in the standard lottery model, in which between-year variation in the reproductive rate, but not that in the mortalities, promotes coexistence.

Animals↗

Temporal and spatial heterogeneity of blood supply to the heart: visualization and interpretation.

Blood flow of the heart muscle (the coronary circulation) exhibits both temporal and spatial heterogeneity. In this paper, the unique blood velocity waveform during a cardiac cycle, the flow fluctuation of a longer period and the within-layer spatial flow heterogeneity of the coronary circulation are described with a reference to the pathogenesis of angina pectoris and myocardial infarction.

Animals↗

Incorporation of tumor shape into an assessment of spatial heterogeneity for human sarcomas imaged with FDG-PET.

We have been exploring techniques for evaluation of fluoro-deoxyglucose (FDG) utilization characteristics in human sarcomas measured with positron emission tomography. In previous work, a measure of spatial heterogeneity based on evaluating the deviation of the FDG utilization distribution within the tumor region from a unimodal elliptically contoured spatial pattern was developed. This measure was shown to be a strong prognostic indicator of time to death. The present work explores a more general measure of heterogeneity which incorporates tumor boundary information. The approach relies on the use of a non-parametric representation for the tumor boundary surface. A set of 179 sarcoma patients with follow-up are evaluated with this technique. The results are analyzed to obtain empirical insight into the factors explaining elliptical heterogeneity. In terms of patient survival, the incorporation of the more sophisticated measure of spatial heterogeneity shows some potential improvement in the prediction risk. Further data will enable us to obtain a clearer empirical understanding of the role of the surface information in the measurement of tumor heterogeneity.

Data Interpretation, Statistical↗

Spatial heterogeneity of Escherichia coli DNA fingerprints isolated from cellulitis lesions in chickens.

Avian cellulitis in broiler chickens is characterized by subcutaneous lesions that result in economic losses because of the partial or complete condemnation of the carcasses at processing. Escherichia coli is the primary causative agent of this condition. Previous research with a biotyping system found that the E. coli of cellulitis origin were unique to each ranch, suggesting that these E. coli were endemic within the ranch environment. The objective of our study was to analyze the genetic variability of E. coli isolates associated with cellulitis. We analyzed the genetic relatedness of the isolates in relation to the houses, ranches, and complexes in which the broilers were grown. This analysis enabled us to assess the spatial heterogeneity, or genetic diversity on a spatial scale, of the isolates. Forty-nine broilers with cellulitis lesions were necropsied. These broilers came from six houses on four ranches on three complexes that had been placed with chicks from the same hatchery within a 2-wk period. Isolates of E. coli from the lesions were DNA fingerprinted by pulsed-field gel electrophoresis. Relatedness among isolates was determined with the Dice coefficient and an unweighted pair group method with average linkages cluster analysis. The complexes possessed isolates with a variety of DNA fingerprints, yet each complex appeared to have isolates with a unique set of DNA fingerprints. Isolates from the same complex tended to form clusters with similarity coefficients greater than 90%. Isolates from different complexes were genetically distinct. This heterogeneity at the level of the complex suggests that isolates were not disseminated from a source common to the complexes. The spatial heterogeneity of the E. coli isolates in this study implies an endemic population of cellulitis-associated E. coli exists in the broiler house environment.

Animals↗

[Spatial heterogeneity of pelagic fishery resources in the East China Sea].

Quantitative description of spatial heterogeneity can help the understanding of the distribution of fishery resources and its relationship with the environment from ecological view. Based on geographic information system, the Geary index for the density distribution of pelagic fish was calculated, and the semivariograms were drawn. The Geary value c was 0.25 and Co/(Co + C) was 19.1%, indicating that the distribution of the pelagic fish had a high spatial autocorrelation with anisotropy. The sharp slope of semivariogram in the directions of 45 degrees and 135 degrees meant that there existed important dynamic environmental processes in the two directions. The annual fluctuation of fishery resource density was caused by the spatial autocorrelation, because the density had a significantly positive correlation with value C, but no correlation with Co. The fractal dimension D was negatively correlated with the density, meaning that the density increase was resulted from the increase of spatial fish centralizing.

Animals↗

Spatial heterogeneity and microvascular fluid exchange: a simple macroscopic equation.

The effect of the spatial distribution of capillary membrane "pores" on the estimate for the hydraulic conductivity (Lp) and the reflection coefficient (sigma s) in the presence of an axial gradient in the hydrostatic pressure difference (delta P) is examined. The differential fluid balance is integrated along the length of the capillary and a simple analytic solution is obtained for a capillary membrane of arbitrary structure. The effective hydrostatic pressure difference, (delta P)eff, is not simply the average of the arterial [(delta P)a] and venous [(delta P)v] pressure differences but is instead found to be (delta P)eff identical to [(delta P)a + (delta P)v]/2 + kappa [(delta P)a - (delta P)v]/2, where kappa identical to 1 - 2 (Lp1/Lp). The two macroscopic coefficients, Lp and Lp1, are related to integrals of the pore density along the length of the capillary. Failure to account for spatial heterogeneity may lead to an incorrect interpretation of the experimental data, e.g., the estimate for sigma s could be greater than 1 or less than 0 depending on the pore distribution and pressure gradient along the capillary. The single capillary hydraulic conductivity measurements of Gore [1982), Amer. J. Physiol. 242, H268-H287) and data on the microvascular pressure distributions (Bohlen and Gore (1977), Microvasc. Res. 14, 251-264) are used to estimate the magnitude of these effects.

Capillaries↗

Spatial heterogeneity of myocardial perfusion and metabolism.

Left ventricular myocardium is characterized by a substantial spatial heterogeneity of both perfusion and metabolism. Under resting conditions, the transmural gradient of myocardial oxygen consumption (MVO2) from the subepi- to the subendocardial layer exceeds that of coronary flow, resulting in a lower subendocardial PO2, altered kinetics of oxidative phosphorylation, and enhanced free cytosolic adenosine. Within each layer, there is a major spatial variability of perfusion: Local flow rates in individual myocardial samples (200 mg) range from 20-250% of the mean myocardial blood flow. Low flow areas (< 50% of mean flow) display a rather low uptake of fatty acids and glucose; the uptake of these substrates increases in proportion to local flow. There is also a close relationship between local perfusion and the local turnover of the tricarboxylic acid cycle and, thus, MVO2 as was recently demonstrated using 13C NMR techniques. Consequently, within the well perfused left ventricular myocardium local MVO2 and, thus, energy turnover varies more than 3-fold between low and high flow areas. Low flow areas are not ischemic, since local lactate, adenosine, and ATP are comparable to mean flow areas. When coronary perfusion pressure is reduced, the transmural perfusion gradient reverses resulting in impaired energy status and enhanced adenosine predominantly in the subendocardium. This rise in local adenosine or lactate requires a decrease of the individual local flow by more than 50% of its preischemic value. It, thus, appears that not the absolute level of local flow predicts the impact of ischemia but its relative change.

Adenosine Triphosphate↗

Molecular imaging of temporal dynamics and spatial heterogeneity of hypoxia-inducible factor-1 signal transduction activity in tumors in living mice.

Tumor hypoxia is a spatially and temporally heterogeneous phenomenon, which results from several tumor and host tissue-specific processes. To study the dynamics and spatial heterogeneity of hypoxia-inducible factor-1 (HIF-1)-specific transcriptional activity in tumors, we used repetitive noninvasive positron emission tomography (PET) imaging of hypoxia-induced HIF-1 transcriptional activity in tumors in living mice. This approach uses a novel retroviral vector bearing a HIF-1-inducible "sensor" reporter gene (HSV1-tk/GFP fusion) and a constitutively expressed "beacon" reporter gene (DsRed2/XPRT). C6 glioma cells transduced with this multireporter system revealed dose-dependent patterns in temporal dynamics of HIF-1 transcriptional activity induced by either CoCl2 or decreased atmospheric oxygen concentration. Multicellular spheroids of C6 reporter cells developed a hypoxic core when >350 microm in diameter. 18F-2'-fluoro-2'deoxy-1beta-D-arabionofuranosyl-5-ethyl-uracil (FEAU) PET revealed spatial heterogeneity of HIF-1 transcriptional activity in reporter xenografts in mice as a function of size or ischemia-reperfusion injury. With increasing tumor diameter (>3 mm), a marked increase in HIF-1 transcriptional activity was observed in the core regions of tumors. Even a moderate ischemia-reperfusion injury in small C6 tumors caused a rapid induction of HIF-1 transcriptional activity, which persisted for a long time because of the inability of C6 tumors to rapidly compensate acute changes in tumor microcirculation.

Animals↗