Moving Synergistically Acting Drug Combinations to the Clinic by Comparing Sequential versus Simultaneous Drug

Saketh S Dinavahi1, Mohammad A Noory1, Raghavendra Gowda1

  • 1Division of Hematology-Oncology (J.J.D.); Departments of Pharmacology (S.S.D., M.A.N., R.G., R.I.N., G.P.R.), Medicine (J.J.D.), Public Health Sciences (A.B.), Dermatology (R.I.N., G.P.R.), Surgery (R.I.N., G.P.R.), and Pathology (G.P.R.); Melanoma and Skin Cancer Center (S.S.D., M.A.N., R.G., J.J.D., A.B., R.I.N., G.P.R.); Foreman Foundation for Melanoma Research (R.G., G.P.R.); and the Melanoma Therapeutics Program (R.G., R.I.N., G.P.R.), Pennsylvania State University College of Medicine, Hershey, Pennsylvania.

Molecular Pharmacology
|December 16, 2017
PubMed

Insights

Simultaneous treatment with AKT and WEE1 inhibitors synergistically kills melanoma cells. Sequential dosing was ineffective, highlighting the importance of simultaneous targeting for maximal therapeutic efficacy in resistant melanoma.

Area of Science:

  • Oncology
  • Pharmacology
  • Molecular Biology

Background:

  • Drug combinations are crucial for managing resistant melanoma.
  • Protein kinase B (AKT) inhibitors show limited clinical efficacy.
  • Combining AKT and WEE1 inhibitors presents a potential therapeutic strategy.

Purpose of the Study:

  • To evaluate the efficacy of simultaneous versus sequential dosing of AKT and WEE1 inhibitors in melanoma.
  • To establish a rapid preclinical approach for assessing drug combinations.
  • To elucidate the mechanistic basis for optimal drug combination scheduling.

Main Methods:

  • Melanoma cell lines were treated with AKT inhibitor AZD5363 and WEE1 inhibitor AZD1775.
  • Simultaneous and sequential dosing schedules were employed.
  • Cell survival, tumor growth, cell cycle, DNA damage repair, and transcription factor modulation were analyzed.

Main Results:

  • Simultaneous treatment synergistically reduced melanoma cell survival and tumor growth.
  • Sequential treatment demonstrated antagonistic effects and minimal tumor inhibition.
  • Simultaneous targeting enhanced cell cycle deregulation and DNA damage repair via p53 and FOXM1 modulation.

Conclusions:

  • Simultaneous administration of AKT and WEE1 inhibitors is essential for maximal therapeutic efficacy in melanoma.
  • Sequential dosing is antagonistic and not recommended.
  • This study provides a mechanistic rationale for selecting optimal drug combination schedules.

Related Concept Videos

Combined Effects of Drugs: Synergism01:27

Combined Effects of Drugs: Synergism

Synergism is a useful mechanism where combining two or more drugs is more effective than each constituent used alone. Such combinations are also called supra-additive interactions. The drugs collectively enhance the final therapeutic effect by acting on different targets. Another advantage is that the low dose of each constituent drug is sufficient to achieve the desired effect. This helps reduce the duration of therapy and lower the adverse effects of these drugs.
Such synergistic combinations...
7.0K
Agonism and Antagonism: Quantification01:14

Agonism and Antagonism: Quantification

When drugs are administered, they can elicit either an agonist or antagonist effect on the body. Agonism occurs when a drug activates a specific receptor, triggering a biological response. On the other hand, antagonism happens when a drug binds to the same receptors but blocks their activation, thereby preventing a biological response.
To quantify these effects, researchers use a dose-response curve, which provides valuable information about the potency and efficacy of a drug. Potency refers to...
1.1K
Drug Administration and Therapy Phases: Overview01:26

Drug Administration and Therapy Phases: Overview

Drugs, the chemical agents used in diagnosing, treating, or preventing diseases, undergo a four-phase process of development: pharmaceutic, pharmacokinetics, pharmacodynamics, and therapeutic.
The pharmaceutical phase focuses on leveraging the physicochemical properties of the drug to design and manufacture an effective product. Variants include orally administered tablets or capsules, topical creams or ointments, and parenteral-delivery solutions or emulsions.
The pharmacokinetic phase...
1.5K
Bioequivalence of Drugs: Drugs with Multiple Indications01:09

Bioequivalence of Drugs: Drugs with Multiple Indications

The concept of therapeutic equivalence (TE) in drugs with multiple indications is complex. A generic drug may be therapeutically equivalent to a brand-name product for one specific indication, but this doesn't necessarily mean it's equivalent for all other indications. Evidence of TE in one patient group and bioequivalence shown in healthy volunteers can support—but not confirm—TE for other indications. However, definitive proof requires individual clinical studies for each...
167
Drug Accumulation During Multiple Dosing: Intermittent IV Infusions01:24

Drug Accumulation During Multiple Dosing: Intermittent IV Infusions

Intermittent intravenous (IV) infusion is a method of drug administration where medications are delivered over short infusion periods followed by intervals of no drug delivery. This approach helps to prevent sustained high drug concentrations in the bloodstream, reducing the risk of adverse effects associated with prolonged exposure. Unlike continuous infusion, steady-state concentrations may not be achieved during a single dosing cycle but can be reached through repeated...
282
Modified-Release Drug Delivery Systems: Drug Release Characteristics01:22

Modified-Release Drug Delivery Systems: Drug Release Characteristics

Drug release from modified-release dosage forms is designed to achieve specific therapeutic effects by controlling the rate and extent of drug release. The classification of these drug release systems is based on key pharmacokinetic assumptions: drug disposition follows first-order kinetics, drug release is the rate-limiting step in absorption, and the released drug is rapidly and completely absorbed.There are four major models of drug release patterns. The first model is the slow zero-order...
18