Central nervous system distributional kinetics of selected histone deacetylase inhibitors

Wenqiu Zhang1, Ju-Hee Oh1, Wenjuan Zhang1

  • 1Department of Pharmaceutics, Brain Barriers Research Center, University of Minnesota, Minneapolis, Minnesota.

Insights

Histone deacetylase inhibitors (HDACIs) like vorinostat and quisinostat show limited brain tumor efficacy due to rapid degradation and poor CNS exposure. Understanding their pharmacokinetics is crucial for optimizing brain cancer treatment strategies.

Area of Science:

  • Neuro-oncology
  • Pharmacology
  • Biochemistry

Background:

  • Histone deacetylase inhibitors (HDACIs) are investigated for central nervous system (CNS) tumors due to dysregulated histone deacetylase activity.
  • Many HDACIs show promise in vitro but have modest in vivo efficacy, potentially due to insufficient CNS drug exposure.

Purpose of the Study:

  • To investigate the systemic pharmacokinetics and CNS distribution of vorinostat and quisinostat in a murine model.
  • To understand the factors limiting CNS exposure of these HDACIs.

Main Methods:

  • Pharmacokinetic analysis of vorinostat and quisinostat in plasma and CNS of mice.
  • Utilized transgenic transporter-deficient mouse models to assess blood-brain barrier transporter involvement.
  • Compared CNS distributional kinetics with panobinostat.

Main Results:

  • Both vorinostat and quisinostat undergo in vitro degradation in mouse plasma and have short in vivo half-lives.
  • CNS delivery of vorinostat was not limited by P-gp or BCRP.
  • CNS exposure of unbound quisinostat was limited by P-gp activity.

Conclusions:

  • Vorinostat and quisinostat are susceptible to degradation in plasma and CNS tissues.
  • Accurate CNS distributional kinetic parameters were determined by minimizing post-sampling degradation.
  • Understanding CNS exposure is vital for predicting therapeutic windows and guiding dosing strategies for HDACIs in CNS tumors.

Related Concept Videos

Indirect-Acting Cholinergic Agonists: Pharmacokinetics01:22

Indirect-Acting Cholinergic Agonists: Pharmacokinetics

Indirect-acting cholinergic agonists, or anticholinesterases, enhance the body's cholinergic activity by inhibiting acetylcholine's breakdown. They are categorized as reversible or irreversible agents based on their mechanism of action. They are further classified into short-acting, intermediate-acting, and long-acting agents based on their duration of action.
Reversible agents containing quaternary amines, such as neostigmine and edrophonium, are not easily absorbed orally because they...
902
Nonlinear Pharmacokinetics: Dependence of Elimination Half-Life and Dose Clearance01:23

Nonlinear Pharmacokinetics: Dependence of Elimination Half-Life and Dose Clearance

The elimination half-life and drug clearance of drugs following nonlinear kinetics can vary with dosage. The Michaelis-Menten parameters and drug concentration influence these factors. As the dose increases, the elimination half-life tends to lengthen, resulting in a reduction in clearance and a disproportionately larger area under the curve. The total clearance can be derived from the Michaelis-Menten equation for drugs following a one-compartment model.
A study on guinea pigs examined the...
75
Direct-Acting Cholinergic Agonists: Pharmacokinetics01:31

Direct-Acting Cholinergic Agonists: Pharmacokinetics

Direct-acting cholinergic agonists, such as synthetic choline esters and naturally occurring alkaloids, exert their effects by enhancing the actions of acetylcholine and stimulating the parasympathetic nervous system. Synthetic choline esters share structural similarities with acetylcholine. For example, they have a positively charged quaternary ammonium or onium group, contributing to their hydrophilic characteristics. As a result, they are poorly absorbed in the body through oral...
1.0K
Indirect-Acting Cholinergic Agonists: Mechanism of Action01:18

Indirect-Acting Cholinergic Agonists: Mechanism of Action

Indirect-acting cholinergic agonists work by interacting with an enzyme called acetylcholinesterase (AChE) in the synaptic cleft. They can be reversible or irreversible inhibitors and have different effects on the enzyme.
Reversible inhibitors like edrophonium bind to a specific part of the enzyme called the anionic catalytic site. They form noncovalent bonds, which means they are not strongly attached to the enzyme. This creates a temporary and less stable enzyme–inhibitor complex,...
1.5K
Depolarizing Blockers: Pharmocokinetics01:19

Depolarizing Blockers: Pharmocokinetics

Depolarizing blockers are administered through intravenous injection. Succinylcholine is the most common choice of depolarizing blockers in emergency clinical practices. Although they have a rapid onset, they readily diffuse away from the motor end plate into the extracellular fluid. They are metabolized by enzymes such as liver butyrylcholinesterase and plasma pseudocholinesterases. This produces a short duration of action, typically 5-10 minutes long, unlike nondepolarizing blockers, which...
305
Chemotherapy-Induced Nausea and Vomiting: Neurokinin-1 Receptor Antagonists01:28

Chemotherapy-Induced Nausea and Vomiting: Neurokinin-1 Receptor Antagonists

Neurokinin 1 (NK1) receptors are distributed across the GI tract, vagal afferents, and key CNS regions including the central vomiting center and chemoreceptor trigger zone (CTZ) Chemotherapy agents stimulate enterochromaffin cells in the gastrointestinal (GI) tract to release large amounts of substance P (SP). SP is a neuropeptide released by specific sensory nerves in response to many different stressors, including those in the GI mucosa affected by chemotherapy.  SP binds and activates...
147