Metabolic and Endocrine Toxicities of Mitotane: A Systematic Review

Marta Bianchini1, Giulia Puliani1,2, Alfonsina Chiefari1

  • 1Oncological Endocrinology Unit, IRCCS Regina Elena National Cancer Institute, Via Elio Chianesi 53, 00144 Rome, Italy.

Cancers
|October 13, 2021
PubMed

Insights

Mitotane treatment for adrenocortical carcinoma (ACC) can cause endocrine issues like adrenal insufficiency and thyroid dysfunction. Most side effects are reversible, and a new algorithm can guide monitoring for these patients.

Area of Science:

  • Endocrinology
  • Oncology
  • Pharmacology

Background:

  • Mitotane is crucial for managing adrenocortical carcinoma (ACC).
  • Limited data exists on mitotane's endocrine and metabolic side effects.
  • Understanding these toxicities is vital for patient care.

Purpose of the Study:

  • To systematically review and synthesize evidence on mitotane's endocrine and metabolic toxicities.
  • To assess these side effects in both pediatric and adult ACC patients.
  • To propose a management algorithm for endocrine safety.

Main Methods:

  • Systematic review of 16 articles.
  • Inclusion of data from 493 patients with ACC.
  • Analysis of endocrine and metabolic adverse events.

Main Results:

  • Adrenal insufficiency (24.5% increased glucocorticoids), mineralocorticoid insufficiency (36.8%).
  • Thyroid dysfunction (decreased FT4 in 45.4%), dyslipidemia (increased LDL-c and HDL-c in 54.2%).
  • Hormonal changes in males (gynecomastia, hypogonadism) and females (ovarian cysts, menstrual disorders).

Conclusions:

  • Mitotane causes significant endocrine and metabolic disturbances in ACC patients.
  • Most adverse effects are reversible upon treatment cessation.
  • An algorithm is proposed to guide endocrine safety monitoring during mitotane therapy.

Related Concept Videos

Electron Transport Chain: Complex I and II01:46

Electron Transport Chain: Complex I and II

The mitochondrial electron transport chain (ETC) is the main energy generation system in the eukaryotic cells. However, mitochondria also produce cytotoxic reactive oxygen species (ROS) due to the large electron flow during oxidative phosphorylation. While Complex I is one of the primary sources of superoxide radicals, ROS production by Complex II is uncommon and may only be observed in cancer cells with mutated complexes.
ROS generation is regulated and maintained at moderate levels necessary...
15.3K
Toxic Reactions: Overview01:26

Toxic Reactions: Overview

When toxic substances penetrate the human body, they disseminate to various tissues, undergoing metabolic changes. This process yields reactive metabolites that may covalently bind with specific target molecules, resulting in toxicity.
Toxicity falls into two primary categories: local and systemic.
Local toxicity appears at the exposure site, such as protein denaturation caused by caustic substances.
In contrast, systemic toxicity requires the toxic agent's absorption and distribution,...
1.2K
Mutagenicity and Carcinogenicity01:25

Mutagenicity and Carcinogenicity

Mutagenicity and carcinogenicity refer to the ability of drugs to cause genetic defects and induce cancer, respectively. The International Agency for Research on Cancer (IARC) classifies agents into four groups based on their carcinogenic potential. Group 1 agents are known human carcinogens; group 2A agents are probably carcinogenic to humans; group 3 agents lack data to support their role in carcinogenesis; and group 4 includes agents for which data support that they are not likely to be...
1.5K
Cancer Therapies02:49

Cancer Therapies

Cancer therapies are various modes of treatment, such as surgery, radiation therapy, and chemotherapy that are administered to cancer patients.
However, cancer treatments can pose several challenges, as therapies used to kill cancer cells are generally also toxic to normal cells. Moreover, cancer cells mutate rapidly and can develop resistance to chemical agents or radiation therapy. Besides, all types of cancer cells may not respond to the same therapy. Some cancer cells respond to one...
8.2K
Chemotherapy-Induced Nausea and Vomiting: 5-HT3 Receptor Antagonists01:27

Chemotherapy-Induced Nausea and Vomiting: 5-HT3 Receptor Antagonists

5-HT3 receptor antagonists, such as dolasetron, granisetron (Kytril), ondansetron (Zofran), and palonosetron (Axoli), are crucial in managing chemotherapy-induced nausea and vomiting (CINV) and postoperative nausea. These drugs selectively block 5-HT3 receptors in the visceral vagal and spinal afferent nerves, chemoreceptor trigger zone, and the vomiting center. They have a rapid onset of action and can be given as a single dose before chemotherapy. Ondansetron and granisetron, in particular,...
387
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...
294