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Opioid Analgesics: Synthetic and Semisynthetic Opioids01:15

Opioid Analgesics: Synthetic and Semisynthetic Opioids

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Synthetic and semisynthetic opioids are pivotal in pain management and tackling opioid addiction. Semisynthetic opioids, including morphinans (morphine derivatives), oxycodone, oxymorphone, hydrocodone, and hydromorphone, have improved pharmacokinetic profiles compared to morphine. Additionally, heroin and 6-MAM (6-Monoacetylmorphine) show better CNS penetration than morphine due to heightened lipid solubility. Hydromorphone, a potent opioid, undergoes hepatic metabolism to form the active...
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Opioid Receptors: Overview01:22

Opioid Receptors: Overview

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Opioid receptors, including the mu (μ, MOR), delta (δ, DOR), and kappa (κ, KOR) types, belong to the rhodopsin family of G protein-coupled receptors. These receptors are located throughout the central and peripheral nervous systems and in non-neuronal tissues such as macrophages and astrocytes. Opioid receptor ligands can be categorized into agonists or antagonists. Highly selective agonists include [d-Ala2, MePhe4, Gly(ol)5]-enkephalin or DAMGO for MOR, [D-Pen2,...
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Opioid Analgesics: Morphine and Other Natural Cogeners01:20

Opioid Analgesics: Morphine and Other Natural Cogeners

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Opioids are a class of drugs that mimic endogenous opioid peptides and act on opioid receptors, and help in pain relief. These compounds are classified as natural, synthetic, or semi-synthetic. Natural opioids, like morphine, codeine, and thebaine, are derived from the opium poppy plant (Papaver somniferum or Papaver album) and are termed opiates. Synthetic opioids are artificial, while semi-synthetic opioids combine natural and synthetic compounds. Morphine, a prototypical opioid, possesses a...
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Analgesia and Pain Management01:25

Analgesia and Pain Management

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Pain is critical to various clinical pathologies, provoking an urgent need for effective management. Pain, whether acute or chronic, is a complex neurochemical process. Its alleviation depends on the type, with nonopioid analgesics effective for mild to moderate pain, such as musculoskeletal or inflammatory pain, while neuropathic pain responds best to anticonvulsants, tricyclic antidepressants, or serotonin/norepinephrine reuptake inhibitors. For severe acute or chronic pain, opioids may be...
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Local Anesthetics: Chemistry and Structure-Activity Relationship01:30

Local Anesthetics: Chemistry and Structure-Activity Relationship

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Local anesthetics (LAs) are drugs that induce a temporary loss of sensation in a limited body area, preventing pain. Cocaine was the first local anesthetic discovered in the late 19th century. Cocaine is a benzoic acid ester obtained from the leaves of coca shrubs and was often used for its psychotropic effects. Cocaine was first isolated in 1860 by Albert Niemann. Sigmund Freud studied the physiological actions of cocaine. Carl Koller later introduced it into clinical practice in 1884 as a...
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Adrenergic Agonists: Chemistry and Structure-Activity Relationship01:16

Adrenergic Agonists: Chemistry and Structure-Activity Relationship

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Adrenergic agonists' structure-activity relationship (SAR) determines their selectivity and efficacy. These agonists comprise a phenylethylamine moiety with an aromatic ring and an ethylamine side chain.
Aromatic ring substitutions: Substituting the aromatic ring with –OH groups at positions 3 and 4 yields catecholamines (e.g., epinephrine), which have a high affinity for adrenoceptors. Hydrogen bonding between –OH groups and receptors enhances adrenergic activity.
Separation of...
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Video Experimental Relacionado

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Author Spotlight: An Efficient Methodology to Confidently Differentiate and Characterize Fentanyl Analogs
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Fentanilo Reconfigurado: Un núcleo de 2-Azaspiro[3.3]heptano preserva la función μ-opioide

Arran W Stewart1, Lisa M Eubanks1, Mingliang Lin1

  • 1Department of Chemistry and Immunology, The Skaggs Institute for Chemical Biology, Worm Institute of Research and Medicine (WIRM), The Scripps Research Institute, La Jolla, California 92037, United States.

ACS medicinal chemistry letters
|February 18, 2026
PubMed
Resumen

Los investigadores exploraron nuevos análogos de fentanilo reemplazando un grupo químico clave, con el objetivo de reducir los riesgos respiratorios. El nuevo análogo espiro mantuvo el alivio del dolor pero mostró una depresión respiratoria significativamente menor, ofreciendo un modelo prometedor para opioides más seguros.

Palabras clave:
Agonismo sesgadoBioisósteroFentaniloPortabilidadReceptor μ-opioide

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Área de la Ciencia:

  • Química Medicinal
  • Farmacología
  • Neurociencia

Sus antecedentes:

  • El fentanilo es un potente agonista del receptor μ-opioide (MOR) utilizado para el alivio del dolor.
  • Una limitación importante del fentanilo son sus significativos efectos depresores respiratorios.
  • El desarrollo de nuevos analgésicos con una menor morbilidad respiratoria es una necesidad médica crítica no satisfecha.

Objetivo del estudio:

  • Investigar el impacto de reemplazar la porción de piperidina en el fentanilo con un grupo 2-azaspiro[3.3]-heptano.
  • Evaluar el perfil farmacológico, incluidos la unión al receptor, la señalización y los efectos antinociceptivos, del nuevo análogo espiro.
  • Evaluar los efectos respiratorios y las propiedades farmacocinéticas del análogo espiro in vivo.

Principales métodos:

  • Síntesis de un nuevo análogo espiro mediante la sustitución del anillo de piperidina del fentanilo por 2-azaspiro[3.3]-heptano.
  • Ensayos de unión a receptores in vitro para determinar la afinidad por MOR, KOR y DOR.
  • Ensayos in vitro para evaluar el reclutamiento de β-arrestina-2.
  • Estudios de antinocicepción in vivo utilizando pruebas de placa caliente y de cola en ratones.
  • Estudios farmacocinéticos que miden la semivida sérica después de la administración intravenosa en ratones.
  • Evaluación de la función respiratoria in vivo utilizando pletismografía de cuerpo entero en ratones.

Principales resultados:

  • El análogo espiro exhibió una unión preferente a MOR (MOR > KOR ≫ DOR) y no reclutó β-arrestina-2.
  • Se observó una antinocicepción completa en las pruebas de placa caliente y de cola, aunque con una potencia ~100 veces menor en comparación con el fentanilo.
  • El compuesto demostró una farmacocinética favorable con una semivida sérica de aproximadamente 27 minutos en ratones.
  • Se observó depresión respiratoria dependiente de la dosis, pero solo a dosis altas, lo que indica una ventana terapéutica más amplia.

Conclusiones:

  • El reemplazo de la porción de piperidina por 2-azaspiro[3.3]-heptano preserva la actividad antinociceptiva de la clase del fentanilo y reduce la morbilidad respiratoria.
  • Esta modificación estructural desacopla la potencia analgésica de la depresión respiratoria, mapeando importantes condiciones límite del farmacóforo opioide.
  • El análogo espiro representa una línea prometedora para el desarrollo de analgésicos opioides de próxima generación con un perfil de seguridad mejorado.