Sulfatase 2 Inhibition Sensitizes Triple-Negative Breast Cancer Cells to Chemotherapy Through Augmentation of

Abstract

Insights

Triple-negative breast cancer (TNBC) has limited treatment options. A novel therapy combining chemotherapy with a sulfatase 2 inhibitor, OKN-007, enhances extracellular ATP release, increasing TNBC cell death and potentially improving treatment outcomes.

Area of Science:

  • Oncology
  • Biochemistry

Background:

  • Triple-negative breast cancer (TNBC) presents a significant clinical challenge due to limited therapeutic options and poor prognosis.
  • Extracellular adenosine triphosphate (eATP) release, induced by chemotherapy, can enhance TNBC cell death, but its levels are regulated by extracellular ATPases.
  • Sulfatase 2 is highly expressed in TNBC and may regulate eATP levels by desulfating heparan sulfate, an inhibitor of extracellular ATPases.

Approach:

  • TNBC cell lines were treated with paclitaxel in combination with a sulfatase 2 inhibitor (OKN-007) and/or heparan sodium sulfate.
  • Evaluated eATP content and cell viability post-treatment.
  • Assessed protein and cell surface expression of sulfatases 1 and 2 using ELISA, Western blot, and flow cytometry.

Key Points:

  • Sulfatase 2 expression was significantly higher in TNBC cell lines and human breast cancer samples compared to normal cells and tissues.
  • OKN-007 treatment potentiated chemotherapy-induced eATP release and TNBC cell death.
  • The combination therapy, including OKN-007, reduced the cancer-initiating cell population.

Conclusions:

  • Inhibiting sulfatase 2 with OKN-007 enhances chemotherapy's efficacy against TNBC by increasing eATP release.
  • This combination strategy demonstrates potential for deeper and more durable responses in TNBC treatment.
  • Targeting sulfatase 2 offers a promising avenue for novel combination therapies for TNBC.

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...
7.7K
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...
14.3K
Adaptive Mechanisms in Cancer Cells02:53

Adaptive Mechanisms in Cancer Cells

Cancer cells accumulate genetic changes at an abnormally rapid rate due to the defects in the DNA repair mechanisms. From an evolutionary perspective, such genetic instability is advantageous for cancer development. Mutant cell lines accumulate a series of beneficial mutations that contribute to their progression into cancer.
Some of the advantages that cancer cells have on normal cells include - enhanced ability to divide without terminally differentiating, induce new blood vessel formation,...
5.8K
mTOR Signaling and Cancer Progression03:03

mTOR Signaling and Cancer Progression

The mammalian target of rapamycin or mTOR protein was discovered in 1994 due to its direct interaction with rapamycin. The protein gets its name from a yeast homolog called TOR. The mTOR protein complex in mammalian cells plays a major role in balancing anabolic processes such as the synthesis of proteins, lipids, and nucleotides and catabolic processes, such as autophagy in response to environmental cues, such as availability of nutrients and growth factors.
The mTOR pathway or the...
3.8K
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...
2.1K