The anesthetic action of some polyhalogenated ethers-Monte Carlo method based QSAR study

Mlađan Golubović1, Milan Lazarević2, Dragan Zlatanović3

  • 1Center for Anesthesiology and Reanimatology, Clinical Center Niš, Niš, Serbia.

Insights

Quantitative Structure-Activity Relationship (QSAR) models were developed to understand general anesthetic action. This research identified key molecular fragments influencing anesthetic effects, aiding the search for new anesthetic drugs.

Area of Science:

  • Pharmacology
  • Medicinal Chemistry
  • Computational Chemistry

Background:

  • The precise mechanism of action for general anesthetics remains debated, with multiple biological targets proposed.
  • Postoperative nausea and vomiting are frequent complications potentially linked to inhalational anesthetic agents.

Purpose of the Study:

  • To develop Quantitative Structure-Activity Relationship (QSAR) models for polyhalogenated ethers to elucidate their anesthetic properties.
  • To identify specific molecular fragments contributing to anesthetic action, given the incomplete understanding of their mechanism.

Main Methods:

  • QSAR models were constructed using optimal molecular descriptors derived from SMILES notation and local graph invariants.
  • The Monte Carlo optimization method with random training/test set splits was employed for model development.
  • Model robustness and predictive potential were assessed using various statistical methods, including the Index of ideality correlation.

Main Results:

  • A robust QSAR model with good statistical quality was successfully developed using in silico methods.
  • Specific molecular fragments were identified as having both positive and negative influences on anesthetic activity.
  • The Monte Carlo optimization proved effective for building reliable predictive models.

Conclusions:

  • The study provides valuable insights into the structure-activity relationships of general anesthetics.
  • The identified molecular fragments can guide the design and discovery of novel anesthetic agents.
  • QSAR modeling serves as an essential tool in drug development when mechanisms of action are not fully understood.

Related Concept Videos

Local Anesthetics: Mechanism of Action01:23

Local Anesthetics: Mechanism of Action

Local anesthetics (LAs) block sensory and motor impulses by inhibiting the sodium channels on the nerve cell membranes. This induces temporary loss of sensation, relieving pain in a specific body area.
Local anesthetics are amphiphilic molecules consisting of a hydrophobic aromatic part linked to a hydrophilic group by an ester or amide linkage. They are weak bases and are usually available as salts, which increases their solubility and stability. Once administered, LAs exist in the body either...
3.4K
Ethers from Alcohols: Alcohol Dehydration and Williamson Ether Synthesis02:29

Ethers from Alcohols: Alcohol Dehydration and Williamson Ether Synthesis

Overview
Ethers can be prepared from organic compounds by various methods. Some of them are discussed below,
Preparation of Ethers by Alcohol Dehydration
In this method, in the presence of protic acids, alcohol dehydrates to produce alkenes and ethers under different conditions. For example, in the presence of sulphuric acid, dehydration of ethanol at 413 K yields ethoxyethane, whereas it yields ethene at 443 K.
13.0K
Crown Ethers02:36

Crown Ethers

Crown ethers are cyclic polyethers that contain multiple oxygen atoms, usually arranged in a regular pattern. The first crown ether was synthesized by Charles Pederson while working at DuPont in 1967. For this work, Pedersen was co-awarded the 1987 Nobel Prize in Chemistry. Crown ethers are named using the formula x-crown-y, where x is the total number of atoms in the ring and y is the number of ether oxygen atoms. The term 'crown' refers to the crown-like shape that these ether molecules...
6.1K
Structure and Nomenclature of Ethers02:28

Structure and Nomenclature of Ethers

Structure and Bonding
Ethers are organic compounds with an ether functional group which is characterized by an oxygen atom connected to two — identical or different — alkyl, aryl, or vinyl groups. The C–O–C linkage in dimethyl ether — the simplest ether — has an approximately tetrahedral bond angle of 110.3 degrees. The oxygen atom is sp3- hybridized, with the C–O distance being about 140 pm.
Classification of Ethers
Based on their attached substituent...
14.9K
Physical Properties of Ethers02:17

Physical Properties of Ethers

Overview
An ether molecule has a net dipole moment due to the polarity of C–O bonds. Subsequently, boiling points of ethers are lower than those of alcohols of comparable molecular weight and slightly higher than those of hydrocarbons of comparable molecular weight (Table 1).
Ethers can act as hydrogen bond acceptors, making them more water-soluble than hydrocarbons, but since ethers cannot act as hydrogen bond donors, they are much less soluble in water than alcohols. Ethers are considered...
8.5K
Fixed Action Patterns01:06

Fixed Action Patterns

A fixed action pattern (FAP) is a specific, hard-wired sequence of behaviors that occurs in response to an external stimulus, called a sign stimulus. The behavior is “fixed” because it is essentially unchangeable—proceeding similarly across individuals of a species every time it occurs.
17.7K