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Genomic selection for tolerance to aluminum toxicity in a synthetic population of upland rice.

Over half of the world's arable land is acidic, which constrains cereal production. In South America, different rice-growing regions (Cerrado in Brazil and Llanos in Colombia and Venezuela) are particularly affected due to high aluminum toxicity levels. For this reason, efforts have been made to breed for tolerance to aluminum toxicity using synthetic populations. The breeding program of CIAT-CIRAD is a good example of the use of recurrent selection to increase productivity for the Llanos in Colombia. In this study, we evaluated the performance of genomic prediction models to optimize the breeding scheme by hastening the development of an improved synthetic population and elite lines. We characterized 334 families at the S0:4 generation in two conditions. One condition was the control, managed with liming, while the other had high aluminum toxicity. Four traits were considered: days to flowering (FL), plant height (PH), grain yield (YLD), and zinc concentration in the polished grain (ZN). The population presented a high tolerance to aluminum toxicity, with more than 72% of the families showing a higher yield under aluminum conditions. The performance of the families under the aluminum toxicity condition was predicted using four different models: a single-environment model and three multi-environment models. The multi-environment models differed in the way they integrated genotype-by-environment interactions. The best predictive abilities were achieved using multi-environment models: 0.67 for FL, 0.60 for PH, 0.53 for YLD, and 0.65 for ZN. The gain of multi-environment over single-environment models ranged from 71% for YLD to 430% for FL. The selection of the best-performing families based on multi-trait indices, including the four traits mentioned above, facilitated the identification of suitable families for recombination. This information will be used to develop a new cycle of recurrent selection through genomic selection.

Oryza

Plant nitrogen nutrition: enhancing plant resilience to abiotic stresses.

Nitrogen (N) is not only an essential macronutrient for plant growth and development but also functions as a pivotal signaling molecule that orchestrates adaptive responses to various abiotic stresses, including acidic stress, aluminum toxicity, salinity, drought, and extreme temperatures. This review synthesizes recent advances in our understanding of the molecular mechanisms by which N signaling, mediated by different N forms (e.g., NH4+ and NO3-), integrates with core stress-response pathways. We specifically discuss the genetic crosstalk between N sensing and key signaling cascades, including abscisic acid (ABA) signaling, the salt overly sensitive (SOS) pathway, and reactive oxygen species (ROS) homeostasis. The review details how this integration modulates physiological and transcriptional reprogramming through central regulators such as NIN-like proteins (NLPs), calcineurin B-like protein (CBL)-interacting protein kinase (CIPK), and the target of rapamycin (TOR) kinase, ultimately optimizing the trade-off between growth and tolerance. By establishing a unified genetic and molecular framework, this review aims to provide a theoretical basis for developing novel strategies in precision N management and molecular breeding to synergistically enhance N use efficiency (NUE) and abiotic stress tolerance in crops.

Nitrogen

Alleviation of fluorine toxicity in starting turkeys and chicks with aluminum.

Aluminum (Al) compounds were evaluated as fluorine (F) toxicity alleviators in starting broiler chicks and turkeys. Added F levels from NaF ranged from 0 to 1000 ppm, whereas Al levels varied from 0 to 800 ppm. Al was fed either as Al2O3 or Al2 (SO4)3.18H2O. When fed as the sulphate salt, 800 ppm of Al completely prevented the toxic effect of at least 1000 ppm of F. Al2O3 was not effective as an alleviator of fluorine toxicity. When the mode of action of Al2(SO4)3.18H2O against F toxicity was studied in colostomized turkeys it was apparent that F absorption occurred but was probably less efficient than previously reported in ruminants. Al significantly (P less than .05) reduced F absorption in turkeys. Urinary F levels were: 2.4 ppm in birds fed a control diet (26 ppm F), 17.8 ppm in birds fed a diet with 1000 ppm F, and 6.7 ppm in birds fed the high F diet with 800 ppm Al as the sulphate salt. In addition, data from this study indicated that starting broiler chicks were more tolerant (800 ppm F) than starting turkeys (600 ppm F) to fluorine toxicosis.

Aluminum

Effect of H+ ion activity and Ca2+ on the toxicity of metals in the environment.

The role of acidity in determining and restricting plant distribution and performance is discussed. In soils especially, a key effect of H+ ion concentration is on the solubility of potentially toxic heavy metals such as aluminum, managenese, zinc, iron, copper, and nickel. Al has been reported from many studies since the 1920's as the key determining toxic factor in acid soils. Some acid-tolerant species have been shown to be especially tolerant of Al, and mechanisms of tolerance have been suggested. Mn is also a commonly toxic factor at soil pH less than 5.0. Calcium has been shown to alleviate Mn toxicity. Low pH soils are also generally low in Ca, K, Na, and P; all essential major elements for plant growth. In lakes and marine situations acidic waters are uncommon as the waters are buffered. Calcium is again ameliorative of metal toxicities. The pH, redox, and valency state are critical in determining nutrient availability and metal speciation. Recent increases in the H+ ion content of precipitation have caused increased acidities of freshwater lakes in Scandinavia and eastern North America, which have depleted biota, including fish populations.

Animals

Aluminum uptake by the parathyroid glands.

Aluminum-containing drugs are used extensively to bind dietary phosphate and as antacids, but little is known about toxicity and tissue uptake of ingested aluminum. Aluminum concentrations were measured by neutron activation analysis in tissues taken from hyperparathyroid and normal human subjects and from rats. The parathyroid glands contained significantly more aluminum per unit mass than did thyroid or cervical muscle. The concentration of aluminum in the parathyroids appears to be linearly related to dietary aluminum intake.

Aluminum

The effect of attapulgite and charcoal on enterotoxicity of Vibrio cholerae and Escherichia coli enterotoxins in rabbits.

Vibrio cholerae and certain strains of Escherichia coli produce heat-labile enterotoxins which play a significant role in the pathogenesis of the intestinal disease. Activated attapulgite, a heated magnesium aluminum silicate, was previously shown to prevent the toxic effects of endotoxin. The present study has revealed that this drug inhibits the toxic effects of cholera and E. coli enterotoxins in the intestinal loop of rabbits, when toxin and attapulgite are pre-incubated prior to injection. Up to 50 to 100 minimal effective doses are inhibited. Attapulgite is effective also when injected separately, albeit simultaneously, into the intestinal loops, but not when administered after the toxin. Since supernates of toxinattapulgite mixtures are non-toxic, it is postulated that attapulgite acts by adsorption and that the attached enterotoxin is no longer toxic to the rabbit intestine. The previously reported effect of charcoal on V. cholerae enterotoxin paralleling that of attapulgite, was confirmed. In contrast to the effects of these absorbents on isolated toxin, both failed to prevent enterotoxicity in the rabbit model of an enterotoxin-producing strain of E. coli.

Aluminum Silicates

Determination of aluminum in biological samples by atomic absorption spectrophotometry with a graphite furnace.

Aluminum, generally considered non-essential and non-toxic, may accumulate in toxic amounts in the brain in cases of chronic renal failure. We describe a procedure for its analysis in biological fluids by atomic absorption spectrophotometry with a graphite furnace. No sample preparation is required and the procedure is sensitive at the appropriate concentrations. A sample of serum or urine is pipetted into the interior of the graphite tube, where it is sequentially dried, charred, and atomized. Precautions for sample handling are discussed and instrument settings are defined. Precision and accuracy of the method are evaluated, as are the effects of salts, protein content of serum, and specific gravity of urine. Serum of 23 persons who were not consuming aluminum-containing antacids contained 28 +/- 9 (SD) microgram of Al per liter (1.02 +/- 0.33 mumol/liter).

Aluminum

Colloidal silica--aluminum modified--PVP density gradient centrifugation: centrifuge tube wall cell adherence, aggregation, separation properties and comparison to BSA and Ficoll.

A method is described for the inexpensive and easy preparation of colloidal silica--aluminum modified--polyvinylpyrrolidone (CS-AM-PVP) density gradient centrifugation medium. Using density gradient centrifugation, several cell separation and biochemical characteristics were studied: centrifuge tube wall cell adherence, mouse spleen cell density distribution, rebanding properties, mitogen response and cell aggregation. Cell adherence to the centrifuge tube wall using density gradients of CS-AM-PVP was compared with density gradients of bovine serum albumin and Ficoll. Few cells adhered to the centrifuge tube wall when CS-AM-PVP was used as a gradient medium; whereas, significant cell adherence to the centrifuge tube cell wall occurred when bovine serum albumin or Ficoll was used as a gradient medium. The CS-AM-PVP gradient medium did not inhibit the response to mitogens of mouse spleen cells which had been separated into density subpopulations in a discontinuous CS-AM-PVP density gradient, caused a minimum amount of cell aggregation, and was found to be non-toxic.

Aluminum

Efficacy and toxicity of the solvent polyethylene glycol 400 in monkey model.

Several antiepileptic drugs, such as carbamazepine and clonazepam, have low bioavailability in solid form and are insoluble in an aqueous solution. Alcohol solvents are often employed as vehicles when these drugs are studied in animal models. Secondary and particularly tertiary alcohols are suspected of some anticonvulsant activity. The present research evaluated the possibility that polyethylene glycol 400 (PEG 400) might be efficacious, toxic, or both. Monkeys (N = 11) rendered epileptic by aluminum-hydroxide were administered PEG 400 by constant rate (1 ml/hr) intravenous infusion for 3--4 weeks, preceded and followed by several weeks of baseline. At a concentration of 60%, PEG 400 significantly reduced seizure frequency, but also exhibited severe side effects. These findings suggest that experimental testing of anticonvulsants may be compromised when this or similar solvents are used chronically.

Aluminum Hydroxide

Abiotic factors affecting the toxicity of lead to fungi.

The toxicity of lead (Pb) to fungi in pure culture was influenced by several abiotic factors: pH, inorganic anions, clay minerals, and particulate (humic acid) and soluble organic matter. The toxicity of Pb was potentiated under acidic conditions (pH 5 and 6), and phosphate or carbonate anions reduced the toxicity, apparently as a result of the formation of sparingly soluble Pb salts. Clay minerals (montmorillonite greater than attapulgite greater than kaolinite) and particulate humic acid protected against the toxicity of Pb, presumably as the result of sorption, by cation exchange of the Pb to the exchange complexes, which reduced its availability for uptake by the fungi. Soluble organics, such as tryptone, yeast extract, cysteine, succinic acid, and increasing concentrations of neopeptone, also reduced the toxicity of Pb.

Aluminum Silicates

Experimental study of biological effects of leads and aluminum following oral administration.

A wide spectrum of the biological effects of lead and aluminum ions is noted during short-term and long-term oral administration to laboratory animals. The general toxic and gonadotoxic effects of these metals during a short-term experiment appeared to be identical, and the correlation of these effects was preserved during chronic experiments. Lead (0.03 mg/l.) and aluminum (0.5 mg/l.) concentrations in water may be dangerous to the health of the population, and hygienic standards are recommended for inclusion in the standard for drinking water quality.

Administration, Oral

Histopathological evaluation of materials implanted in the cerebral cortex.

Histopathological changes of the cerebral cortex in response to small, penetrating metal and non-metal implants were analyzed by means of light and electron microscopy. The needle-shaped implants were left in place during all stages of histological preparation and embedded in plastic together with the cortex. Changes of the brain-implant boundary were classified as non-reactive, reactive, or toxic, according to the reactive cellular constituents. Among the non-reactive materials were several plastics and metals such as aluminum, gold, platinum, and tungsten. The boundary of these implants displayed little or no gliosis and normal neuropile with synapses within 5 micron of the implant's surface. The boundary of reactive materials such as tantalum or silicon dioxide was marked by multinucleate giant cells and a thin layer (10 micron)) of connective tissue. Toxic materials such as iron and copper were separated from the cortical neuropile by a capsule of cellular connective tissue and a zone of astrocytosis. Cobalt, a highly toxic material, produced more extensive changes in the zones of connective tissue and astrocytes. These results indicate that a variety of materials are well tolerated by the brain and could be used in the fabrication of neuroprosthetic devices.

Aluminum

Zebrafish as a Model Organism to Study Neurotoxicity: A Potential Tool for Neuroprotective Drug Discovery.

INTRODUCTION: Danio rerio, the zebrafish, serves as an excellent model in neuroprotective drug discovery due to its conserved nervous system organization, neurotransmitter pathways, antioxidant defenses, and genomic similarity to mammals. METHODS: A systematic literature search following PRISMA 2020 guidelines was conducted across Pub- Med, Scopus, Web of Science, and Google Scholar. Studies published between 2020 and 2025 were prioritized, with earlier key papers included for context. The data on larval, adult, and genetically modified zebrafish models were analyzed for neurotoxic effects, focusing on study design, toxicants, and neurobehavioral or molecular outcomes. RESULTS: Neurotoxicants such as chlorpyrifos, bisphenol, triphenyl phosphate, aluminum, ammonium acetate, arsenic, zinc, acrylamide, methylmercury, and tris (1,3-dichloro-2-propyl) phosphate were shown to cross the zebrafish blood-brain barrier. These exposures caused significant behavioral alterations, neurotransmitter imbalances, oxidative stress, and gene or protein expression changes related to brain function. Analysis of the transgenic zebrafish revealed notable alterations in neuronal development and axonal morphology upon exposure to various neurotoxic chemicals. DISCUSSION: Zebrafish display neurotoxic responses with a close resemblance to mammals, supporting their translational value in neurotoxicity and drug discovery studies. However, limitations such as a less complex brain compared to mammals, quick neuronal regeneration, limited tissue access, and difficulties in drug absorption quantification warrant refinements in zebrafish models. CONCLUSION: Zebrafish offer a versatile, cost-effective, and genetically tractable system for neurotoxicity and neuroprotection research. This systematic review highlights their crucial role in neuroprotective drug discovery while emphasizing the need for improved methodological approaches to enhance translational reliability.

Animals