Peripheral nerve damage associated with administration of taxanes in patients with cancer

Andreas A Argyriou1, Martin Koltzenburg, Panagiotis Polychronopoulos

  • 1Department of Clinical Neurophysiology, National Hospital for Neurology and Neurosurgery, UCL, Institute for Neurology, Queen Square, London WC1N3BG, UK. andargyriou@yahoo.gr

Insights

Taxanes can cause peripheral neuropathy, a nerve damage affecting sensation and movement. New research explores neuroprotective agents to prevent this common chemotherapy side effect.

Area of Science:

  • Neuroscience
  • Oncology
  • Pharmacology

Background:

  • Peripheral neuropathy is a recognized toxicity of taxane chemotherapy.
  • This neuropathy typically presents as a symmetric, axonal, sensory-dominant distal neuropathy with some motor involvement.
  • The accepted mechanism involves a "dying back" process of nerve endings, affecting Schwann cells and axonal transport.

Purpose of the Study:

  • To review the pathogenesis, incidence, risk factors, diagnosis, characteristics, and management of taxane-induced peripheral neuropathy.
  • To highlight the need for new prophylactic strategies against taxane neurotoxicity.
  • To discuss promising neuroprotective agents for preventing taxane-induced nerve damage.

Main Methods:

  • Literature review of taxane-induced peripheral neuropathy.
  • Analysis of clinical and electrophysiological assessment methods.
  • Evaluation of current and potential therapeutic interventions.

Main Results:

  • Taxane neurotoxicity incidence is linked to dose, schedule, and patient factors like age and prior neuropathy.
  • Clinical examination and electrophysiology are key for diagnosis.
  • Current symptomatic treatments offer limited relief; novel prophylactic approaches are needed.

Conclusions:

  • Taxane-induced peripheral neuropathy necessitates careful management and dose adjustments.
  • Neuroprotective agents like thiols, neurotrophic factors, and antioxidants show potential for prevention.
  • Further clinical trials are essential to validate these neuroprotective strategies.

Related Concept Videos

Peripheral Artery Disease IV: Nursing Management01:26

Peripheral Artery Disease IV: Nursing Management

The nursing management of a patient with peripheral artery disease (PAD) begins with a thorough assessment of the patient’s health history and clinical manifestations.AssessmentHealth History: Evaluate the patient’s history of hypertension, hyperlipidemia, family history of cardiovascular issues, and lifestyle factors such as dietary patterns, smoking, and physical activity.Physical Examination:Assess the affected extremity for decreased or absent peripheral pulses, temperature changes,...
Peripheral Artery Disease V: Postoperative Nursing Management01:23

Peripheral Artery Disease V: Postoperative Nursing Management

During the postoperative period, it is crucial to focus on maintaining circulation, identifying and managing potential complications, and planning for discharge.Nursing AssessmentVital signs monitoring: Regularly monitor vital signs, including blood pressure, heart rate, respiratory rate, and temperature, to detect early signs of complications such as bleeding and infection.Circulation assessment: Monitor pulses, perform Doppler assessments, and check capillary refill, color, temperature, and...
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...
Local Anesthetics: Adverse Effects01:12

Local Anesthetics: Adverse Effects

While local anesthetics are generally safe and well-tolerated, they can occasionally cause adverse effects that vary in severity. Local anesthetics can induce toxicity at two distinct levels. They can either produce local effects through direct contact with the neural elements or be absorbed into the bloodstream from the injection site, leading to systemic effects.
Once absorbed into the systemic circulation, local anesthetics can affect the organs that depend on the functioning of sodium...
Local Anesthetics: Differential Sensitivity of Nerve Fibers01:24

Local Anesthetics: Differential Sensitivity of Nerve Fibers

Local anesthetics (LAs) block the sodium channels of nerve trunks, sensory nerve endings, and neuromuscular junctions. Although LAs can block all kinds of nerves, the sensitivity of nerve fibers differs according to nerve types and structures. LAs are known to block myelinated fibers faster than unmyelinated ones. Also, they block pain or sensory neurons at low concentrations without affecting the motor neurons involved in muscle contractions. This helps relieve labor pain without affecting the...
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 these...