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Clearance Models: Physiological Models01:09

Clearance Models: Physiological Models

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Drug clearance is a critical pharmacokinetic process involving the irreversible removal of drugs from the body through various organs over a specified time period. Physiological models are indispensable in determining organ-specific clearance, defined by the proportion of the drug eliminated per unit of time from the organ's blood volume.
The organ's clearance rate depends on the blood flow to the organ and the extraction ratio (E). The extraction ratio describes the organ's...
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Alterations in Respiration II01:30

Alterations in Respiration II

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There are numerous types of normal and abnormal respiration. Based on ventilatory movements, breathing patterns are classified as regular, deep, or shallow. Examples include Biot's breathing, Cheyne-Stokes respiration, Kussmaul's breathing, hyperventilation, and hypoventilation. Each pattern is clinically significant and aids in evaluating patients.
In Biot's breathing, the respiratory rate and depth are irregular, alternating between periods of deep gasping and apnea. Common causes...
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Model Approaches for Pharmacokinetic Data: Distributed Parameter Models01:06

Model Approaches for Pharmacokinetic Data: Distributed Parameter Models

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Pharmacokinetic models are mathematical constructs that represent and predict the time course of drug concentrations in the body, providing meaningful pharmacokinetic parameters. These models are categorized into compartment, physiological, and distributed parameter models.
The distributed parameter models are specifically designed to account for variations and differences in some drug classes. This model is particularly useful for assessing regional concentrations of anticancer or...
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Model Approaches for Pharmacokinetic Data: Physiological Models01:15

Model Approaches for Pharmacokinetic Data: Physiological Models

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Physiological models in pharmacokinetics are instrumental in understanding the distribution and elimination of drugs within the body. These models describe the drug concentration within target organs, influenced by factors such as drug uptake, tissue volume, and blood flow. Drug uptake is governed by the partition coefficient, which signifies the drug concentration ratio in tissue to that in the blood. The blood flow rate to a specific tissue is expressed as Qt, and the rate of change in tissue...
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Altered States of Awareness01:06

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Altered states of consciousness represent significant deviations from one's normal mental state. These deviations can range from subtle changes in awareness to profound transformations in perception, thought processes, and sensory experiences. Altered states of consciousness can be triggered by various factors, including drug use, meditation, hypnosis, illness, or even intense fatigue.
The ingestion of substances like stimulants or hallucinogens leads to chemical alterations in the brain...
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Wave Parameters01:10

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The simplest mechanical waves are associated with simple harmonic motion and repeat themselves for several cycles. These simple harmonic waves can be modeled using a combination of sine and cosine functions. Consider a simplified surface water wave that moves across the water's surface. Unlike complex ocean waves, in surface water waves, water moves vertically, oscillating up and down, whereas the disturbance of the wave moves horizontally through the medium. If a seagull is floating on the...
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Updated: Feb 15, 2026

Sampling and Identification of Microplastics in Groundwater
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Microplásticos de poliestireno alteran parámetros fisiológicos en el modelo de Drosophila

Sharine Priscilla1, Ryo Nagasawa2, Swetha Senthil Kumar1

  • 1Department of Biotechnology, School of Bioengineering, College of Engineering and Technology, SRM Institute of Science and Technology, Kattankulathur, Chengalpattu District, Tamil Nadu, 603203, India.

Environmental science and pollution research international
|February 14, 2026
PubMed
Resumen

Los microplásticos de poliestireno (MPs de PS) causan daños conductuales y bioquímicos significativos en Drosophila, lo que indica riesgos potenciales para los organismos. Este estudio destaca la toxicidad dependiente de la dosis y el tamaño de los MPs de PS, revelando estrés celular y daño oxidativo.

Palabras clave:
Toxicidad in vivoEstrés celularMicroplásticosNeurotoxicidadPoliestireno

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Área de la Ciencia:

  • Ciencias Ambientales
  • Toxicología
  • Biología Molecular

Sus antecedentes:

  • El poliestireno (PS) es un polímero sintético ampliamente utilizado, pero su eliminación inadecuada genera microplásticos (MPs de PS) que plantean riesgos ambientales y para la salud.
  • Los MPs de PS pueden absorber toxinas o lixiviar aditivos, lo que podría dañar a los organismos vivos.
  • Comprender la toxicidad in vivo de los MPs de PS es crucial para evaluar su impacto ecológico.

Objetivo del estudio:

  • Investigar los efectos toxicológicos in vivo de micro/nanoplásticos de PS (MPs de PS) sintetizados en Drosophila melanogaster.
  • Evaluar los efectos biológicos dependientes de la dosis y el tamaño de los MPs de PS en puntos finales fisiológicos y conductuales.
  • Elucidar los mecanismos moleculares subyacentes a la toxicidad de los MPs de PS, incluido el estrés oxidativo y la expresión génica.

Principales métodos:

  • Se utilizó Drosophila melanogaster (moscas adultas y larvas) como sistema modelo in vivo.
  • Se expuso a moscas y larvas a dos concentraciones (30 y 300 µg/mL) de MPs de PS (100-1000 nm).
  • Se evaluaron los cambios conductuales, los marcadores bioquímicos de estrés celular (desequilibrio redox) y los niveles transcripcionales de genes de respuesta al estrés (Hsp70Bc, rpr, cat, p53, sod).

Principales resultados:

  • La exposición a MPs de PS provocó alteraciones conductuales y bioquímicas significativas tanto en larvas como en adultos de Drosophila.
  • Los análisis bioquímicos indicaron biomarcadores elevados de estrés celular e desequilibrio redox.
  • El análisis transcripcional reveló la regulación positiva de genes clave de respuesta al estrés, confirmando el estrés oxidativo y la toxicidad celular.

Conclusiones:

  • Los MPs de PS inducen una toxicidad conductual y bioquímica significativa en Drosophila, mediada por el estrés oxidativo.
  • Los hallazgos demuestran una toxicidad dependiente de la dosis y el tamaño de los MPs de PS.
  • Este estudio proporciona información valiosa sobre los efectos toxicológicos in vivo de los microplásticos de poliestireno utilizando un organismo modelo manejable.