APOBEC3 mutagenesis drives therapy resistance in breast cancer

Insights

Apolipoprotein B mRNA-editing enzyme catalytic polypeptide-like 3 (APOBEC3) enzymes drive therapy resistance in metastatic breast cancer. This study reveals APOBEC3 mutagenesis as a key factor in treatment resistance and a potential therapeutic target.

Area of Science:

  • Genomics
  • Oncology
  • Molecular Biology

Background:

  • Acquired genetic alterations are a primary cause of treatment resistance in metastatic breast cancer.
  • The specific mutational processes driving these alterations remain largely unknown.

Purpose of the Study:

  • To identify mutational processes in breast cancer.
  • To investigate the impact of these processes on clinical outcomes and therapy resistance.

Main Methods:

  • Analysis of paired tumor-normal sequencing data from 3,880 metastatic breast cancer patients.
  • Whole genome sequencing (WGS) of breast cancer models and primary-metastatic samples.
  • Assessment of apolipoprotein B mRNA-editing enzyme catalytic polypeptide-like 3 (APOBEC3) mutational signatures.

Main Results:

  • APOBEC3 mutational signatures were more prevalent in post-treatment than treatment-naïve hormone receptor-positive (HR+) cancers.
  • APOBEC3 signatures were linked to shorter progression-free survival in HR+ metastatic breast cancer patients on antiestrogen plus CDK4/6 inhibitor therapy.
  • Active APOBEC3 mutagenesis was shown to promote resistance to endocrine and targeted therapies via alterations like RB1 loss-of-function mutations.

Conclusions:

  • APOBEC3 mutagenesis is a frequent driver of therapy resistance in breast cancer.
  • APOBEC3 activity plays a pervasive role in breast cancer evolution, even before treatment.
  • APOBEC3 may serve as a biomarker and a therapeutic target for overcoming treatment resistance.

Related Concept Videos

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...
3.3K
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...
7.6K
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...
1.2K
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...
4.9K
Mismatch Repair01:20

Mismatch Repair

Organisms are capable of detecting and fixing nucleotide mismatches that occur during DNA replication. This sophisticated process requires identifying the new strand and replacing the erroneous bases with correct nucleotides. Mismatch repair is coordinated by many proteins in both prokaryotes and eukaryotes.
The Mutator Protein Family Plays a Key Role in DNA Mismatch Repair
The human genome has more than 3 billion base pairs of DNA per cell. Prior to cell division, that vast amount of genetic...
4.8K
Abnormal Proliferation02:23

Abnormal Proliferation

Under normal conditions, most adult cells remain in a non-proliferative state unless stimulated by internal or external factors to replace lost cells. Abnormal cell proliferation is a condition in which the cell's growth exceeds and is uncoordinated with normal cells. In such situations, cell division persists in the same excessive manner even after cessation of the stimuli, leading to persistent tumors. The tumor arises from the damaged cells that replicate to pass the damage to the...
4.5K