Mutations at leucine 215 of beta-tubulin affect paclitaxel sensitivity by two distinct mechanisms

Yaqing Wang1, Shanghua Yin, Kristie Blade

  • 1Department of Integrative Biology and Pharmacology, University of Texas Medical School, 6431 Fannin Street, Houston, Texas 77030, USA.

Biochemistry
|January 4, 2006
PubMed

Insights

Mutations in beta-tubulin

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Biochemistry

Background:

  • Paclitaxel resistance in cancer therapy is often linked to mutations in beta-tubulin.
  • The H6-H7 loop of beta-tubulin is implicated in drug resistance.
  • Understanding these mutations is crucial for developing new cancer treatments.

Purpose of the Study:

  • To investigate the role of leucine residue 215 (L215) in the H6-H7 loop of beta-tubulin.
  • To determine how specific mutations at L215 affect microtubule assembly and drug sensitivity.
  • To identify novel mechanisms of drug resistance and sensitivity.

Main Methods:

  • Site-directed mutagenesis was used to create mutations at the L215 position in beta-tubulin.
  • Mutated genes were expressed in Chinese hamster ovary cells using a tetracycline-regulated system.
  • Microtubule assembly, drug sensitivity (paclitaxel, epothilone A, colcemid), and expression levels were analyzed.

Main Results:

  • Most L215 mutations destabilized microtubule assembly and conferred paclitaxel resistance.
  • The L215I mutation specifically increased sensitivity to paclitaxel, unlike other tested drugs.
  • Paclitaxel's substoichiometric action was suggested by the L215I mutation's dose-dependent effect.

Conclusions:

  • The H6-H7 loop of beta-tubulin is critical for microtubule assembly and response to antimitotic drugs.
  • The L215I mutation represents the first identified mammalian mutation that specifically enhances paclitaxel sensitivity.
  • This finding offers new insights into paclitaxel's mechanism of action and potential therapeutic strategies.

Related Concept Videos

Drugs that Stabilize Microtubules01:15

Drugs that Stabilize Microtubules

Microtubules are dynamic structures that undergo cycles of catastrophe and rescue. The microtubules play a central role in cell division by forming the spindle apparatus for segregating the chromosomes. This makes them ideal targets for regulating dividing cells in tumors and malignant cancer cells. Microtubule stabilizing drugs help stabilize the microtubule formation and promote its polymerization. Paclitaxel was the first microtubule stabilizing agent used as anticancer drug in chemotherapy...
Pharmacogenetics of Drug Targets: β₂-Adrenergic Receptors, Apo E, Thymidylate Synthase01:11

Pharmacogenetics of Drug Targets: β₂-Adrenergic Receptors, Apo E, Thymidylate Synthase

Genetic polymorphisms in drug targets have emerged as critical determinants of interindividual variability in drug response and toxicity. Pharmacogenomic investigations increasingly focus on identifying these variations to personalize and optimize therapeutic interventions. A drug target may be a receptor, enzyme, or signaling protein involved in pharmacologic responses or disease-related pathways. While early pharmacogenetic studies focused primarily on drug metabolism, current research...
Drugs that Destabilize Microtubules01:10

Drugs that Destabilize Microtubules

Microtubules are dynamic structures and can be regulated by microtubule targeting agents (MTAs). Microtubule destabilizing drugs are a class of MTAs that destabilize and prevent microtubules' polymerization. Both natural and synthetic chemicals can be found under this class of drugs. Vincristine and vinblastine, two vinca alkaloids, and colchicine were among the first to be discovered. These drugs can affect cells in various ways, either by inducing a change in cell morphology, preventing...
Targeted Cancer Therapies02:57

Targeted Cancer Therapies

The targeted cancer therapies, also known as “molecular targeted therapies,” take advantage of the molecular and genetic differences between the cancer cells and the normal cells. It needs a thorough understanding of the cancer cells to develop drugs that can target specific molecular aspects that drive the growth, progression, and spread of cancer cells without affecting the growth and survival of other normal cells in the body.
There are several types of targeted therapies against specific...
Treatment Resistant Cancers02:56

Treatment Resistant Cancers

Cancer is the second leading cause of death in the United States. A cancer cell is genetically unstable and hence can mutate faster. They can also modify their microenvironment and escape immune surveillance. The difficulties in treating cancer are further compounded by the emergence of rapid resistance to anticancer drugs. The most common ways to attain resistance in cancer cells include alteration in drug transport and metabolism, modification of drug target, elevated DNA damage response, or...
Combination Therapies and Personalized Medicine02:50

Combination Therapies and Personalized Medicine

Combining two or more treatment methods increases the life span of cancer patients while reducing damage to vital organs or tissue from the overuse of a single treatment. Combination therapy also targets different cancer-inducing pathways, thus reducing the chances of developing resistance to treatment.
The combination of the drug acetazolamide and sulforaphane is a good example of combination therapy to treat cancer. The cells in the interior of a large tumor often die due to the hypoxic and...