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Updated: Aug 4, 2025

A Flow Cytometry-Based Cell Surface Protein Binding Assay for Assessing Selectivity and Specificity of an Anticancer Aptamer
Published on: September 13, 2022
Prospects for targeting ACKR1 in cancer and other diseases
Kyler S Crawford1, Brian F Volkman1
1Department of Biochemistry, Medical College of Wisconsin, Milwaukee, WI, United States.
Abstract:
The chemokine network is comprised of a family of signal proteins that encode messages for cells displaying chemokine G-protein coupled receptors (GPCRs). The diversity of effects on cellular functions, particularly directed migration of different cell types to sites of inflammation, is enabled by different combinations of chemokines activating signal transduction cascades on cells displaying a combination of receptors. These signals can contribute to autoimmune disease or be hijacked in cancer to stimulate cancer progression and metastatic migration. Thus far, three chemokine receptor-targeting drugs have been approved for clinical use: Maraviroc for HIV, Plerixafor for hematopoietic stem cell mobilization, and Mogalizumab for cutaneous T-cell lymphoma. Numerous compounds have been developed to inhibit specific chemokine GPCRs, but the complexity of the chemokine network has precluded more widespread clinical implementation, particularly as anti-neoplastic and anti-metastatic agents. Drugs that block a single signaling axis may be rendered ineffective or cause adverse reactions because each chemokine and receptor often have multiple context-specific functions. The chemokine network is tightly regulated at multiple levels, including by atypical chemokine receptors (ACKRs) that control chemokine gradients independently of G-proteins. ACKRs have numerous functions linked to chemokine immobilization, movement through and within cells, and recruitment of alternate effectors like β-arrestins. Atypical chemokine receptor 1 (ACKR1), previously known as the Duffy antigen receptor for chemokines (DARC), is a key regulator that binds chemokines involved in inflammatory responses and cancer proliferation, angiogenesis, and metastasis. Understanding more about ACKR1 in different diseases and populations may contribute to the development of therapeutic strategies targeting the chemokine network.
Insights
The chemokine network regulates cell migration, impacting autoimmune diseases and cancer. Atypical chemokine receptor 1 (ACKR1) is a key regulator, and understanding its role may lead to new therapeutic strategies.
Area of Science:
- Immunology
- Cell Biology
- Pharmacology
Background:
- The chemokine network comprises signaling proteins and G-protein coupled receptors (GPCRs) that control cellular functions, including migration.
- Dysregulation of chemokine signaling contributes to autoimmune diseases and cancer progression, including metastasis.
- Current chemokine receptor-targeting drugs are limited, partly due to the network's complexity and context-specific functions.
Purpose of the Study:
- To explore the role of atypical chemokine receptors (ACKRs) in regulating the chemokine network.
- To highlight the significance of atypical chemokine receptor 1 (ACKR1) in inflammatory responses and cancer.
- To emphasize the potential of ACKR1 as a therapeutic target for various diseases.
Main Methods:
- Review of existing literature on chemokine signaling, GPCRs, and ACKRs.
- Analysis of the functions of ACKRs, particularly ACKR1 (Duffy antigen receptor for chemokines, DARC).
- Discussion of therapeutic strategies targeting the chemokine network.
Main Results:
- ACKRs regulate chemokine gradients independently of G-proteins, influencing cell migration and other functions.
- ACKR1 plays a crucial role in inflammatory responses, cancer proliferation, angiogenesis, and metastasis.
- The complexity of chemokine signaling presents challenges for drug development, necessitating a deeper understanding of individual components like ACKR1.
Conclusions:
- ACKRs, especially ACKR1, are critical regulators within the chemokine network.
- Further research into ACKR1's functions across diverse diseases and populations can inform the development of novel therapeutics.
- Targeting specific components like ACKR1 may offer more precise therapeutic strategies than broad chemokine network inhibition.
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