Dihydroartemisinin alleviates morphine-induced neuroinflammation in BV-2 cells

Sen Guan1, Tingting Jin1, Shuai Han1

  • 1Department of Anesthesiology, Women's and Children's Hospital Affiliated to Qingdao University, Qingdao, Shandong, China.

Bioengineered
|December 2, 2021
PubMed

Insights

Dihydroartemisinin (DHA) reduces morphine-induced microglial activation and neuroinflammation by regulating miR-16 and TLR4/NF-κB signaling. This offers a potential strategy to enhance morphine

Area of Science:

  • Neuroscience
  • Pharmacology
  • Immunology

Background:

  • Morphine tolerance presents a clinical challenge, linked to microglial activation and neuroinflammation.
  • Dihydroartemisinin (DHA), derived from artemisinin, shows potential as an anti-inflammatory agent.

Purpose of the Study:

  • To investigate the effects of DHA on suppressing microglial activation and neuroinflammation.
  • To elucidate the underlying molecular mechanisms, including the role of miR-16 and TLR4/NF-κB signaling.

Main Methods:

  • BV-2 microglial cells were induced by morphine and treated with DHA or minocycline.
  • Assessed cell viability (CCK-8), protein expression (Western blot for Ki67, IBa-1, TLR4), and cytokine release (ELISA, qRT-PCR).
  • Evaluated miR-16 expression (qRT-PCR), miR-16 and TLR4 interaction (luciferase assay), and NF-κB activation (immunofluorescence).

Main Results:

  • DHA reduced cell viability and decreased Ki67 and IBa-1 expression in morphine-treated BV-2 cells.
  • DHA significantly lowered the release of pro-inflammatory cytokines.
  • DHA upregulated miR-16, which was downregulated by morphine. miR-16 inhibition partially reversed DHA's anti-inflammatory effects.
  • DHA inhibited TLR4/NF-κB signaling, an effect partially reversed by miR-16 inhibition.

Conclusions:

  • DHA effectively suppresses microglial activation and neuroinflammation.
  • The mechanism involves the regulation of miR-16-mediated TLR4/NF-κB signaling.
  • DHA represents a promising therapeutic candidate for improving morphine's clinical analgesic efficacy.

Related Concept Videos

Analgesia and Pain Management01:25

Analgesia and Pain Management

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...
917
Opioid Analgesics: Synthetic and Semisynthetic Opioids01:15

Opioid Analgesics: Synthetic and Semisynthetic Opioids

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...
500
Opioid Analgesics: Morphine and Other Natural Cogeners01:20

Opioid Analgesics: Morphine and Other Natural Cogeners

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...
449
Opioid Receptors: Overview01:22

Opioid Receptors: Overview

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,...
2.3K