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Author Spotlight: Exploring Salidroside's Molecular Mechanisms in Breast Cancer Treatment
Published on: June 9, 2023
Breast cancer phenotypes regulated by tissue factor-factor VII pathway: Possible therapeutic targets
1Shiro Koizume, Yohei Miyagi, Molecular Pathology and Genetics Division, Kanagawa Cancer Center Research Institute, Yokohama 241-8515, Japan.
Abstract:
Breast cancer is a leading cause of cancer death in women, worldwide. Fortunately, breast cancer is relatively chemosensitive, with recent advances leading to the development of effective therapeutic strategies, significantly increasing disease cure rate. However, disease recurrence and treatment of cases lacking therapeutic molecular targets, such as epidermal growth factor receptor 2 and hormone receptors, referred to as triple-negative breast cancers, still pose major hurdles in the treatment of breast cancer. Thus, novel therapeutic approaches to treat aggressive breast cancers are essential. Blood coagulation factor VII (fVII) is produced in the liver and secreted into the blood stream. Tissue factor (TF), the cellular receptor for fVII, is an integral membrane protein that plays key roles in the extrinsic coagulation cascade. TF is overexpressed in breast cancer tissues. The TF-fVII complex may be formed in the absence of injury, because fVII potentially exists in the tissue fluid within cancer tissues. The active form of this complex (TF-fVIIa) may stimulate the expression of numerous malignant phenotypes in breast cancer cells. Thus, the TF-fVII pathway is a potentially attractive target for breast cancer treatment. To date, a number of studies investigating the mechanisms by which TF-fVII signaling contributes to breast cancer progression, have been conducted. In this review, we summarize the mechanisms controlling TF and fVII synthesis and regulation in breast cancer cells. Our current understanding of the TF-fVII pathway as a mediator of breast cancer progression will be also described. Finally, we will discuss how this knowledge can be applied to the design of future therapeutic strategies.
Insights
Tissue factor (TF) and coagulation factor VII (fVII) signaling promotes aggressive breast cancer growth. Targeting this TF-fVII pathway offers a promising strategy for novel breast cancer therapies, especially for triple-negative cases.
Area of Science:
- Oncology
- Hematology
- Molecular Biology
Background:
- Breast cancer remains a leading cause of cancer death in women globally.
- Triple-negative breast cancers, lacking specific molecular targets, present significant treatment challenges.
- The blood coagulation system, particularly tissue factor (TF) and factor VII (fVII), is implicated in cancer progression.
Purpose of the Study:
- To review the mechanisms of TF and fVII synthesis and regulation in breast cancer cells.
- To describe the role of the TF-fVII pathway in mediating breast cancer progression.
- To discuss the therapeutic potential of targeting the TF-fVII pathway for aggressive breast cancers.
Main Methods:
- Literature review of studies investigating TF-fVII signaling in breast cancer.
- Summary of current understanding of TF and fVII regulation.
- Analysis of the TF-fVII pathway's contribution to malignant phenotypes.
Main Results:
- TF is overexpressed in breast cancer tissues.
- The TF-fVII complex (TF-fVIIa) can stimulate malignant phenotypes in breast cancer cells.
- The TF-fVII pathway is actively involved in breast cancer progression.
Conclusions:
- The TF-fVII pathway is a potential therapeutic target for breast cancer treatment.
- Understanding TF-fVII regulation is crucial for designing novel anti-cancer strategies.
- Targeting TF-fVII may offer new hope for treating aggressive and treatment-resistant breast cancers.
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