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Assessment of Resistance to Tyrosine Kinase Inhibitors by an Interrogation of Signal Transduction Pathways by Antibody Arrays
Published on: September 19, 2018
ACK1/TNK2 tyrosine kinase: molecular signaling and evolving role in cancers
11] Moffitt Cancer Center, Drug Discovery Department, Tampa, FL, USA [2] Department of Oncologic Sciences, University of South Florida, Tampa, FL, USA.
Abstract:
Deregulated tyrosine kinase signaling alters cellular homeostasis to drive cancer progression. The emergence of a non-receptor tyrosine kinase (non-RTK), ACK1 (also known as activated Cdc42-associated kinase 1 or TNK2) as an oncogenic kinase, has uncovered novel mechanisms by which tyrosine kinase signaling promotes cancer progression. Although early studies focused on ACK1 as a cytosolic effector of activated transmembrane RTKs, wherein it shuttles between the cytosol and the nucleus to rapidly transduce extracellular signals from the RTKs to the intracellular effectors, recent data unfold a new aspect of its functionality as an epigenetic regulator. ACK1 interacts with the estrogen receptor (ER)/histone demethylase KDM3A (JHDM2a) complex, which modifies KDM3A by tyrosine phosphorylation to regulate the transcriptional outcome at HOXA1 locus to promote the growth of tamoxifen-resistant breast cancer. It is also well established that ACK1 regulates the activity of androgen receptor (AR) by tyrosine phosphorylation to fuel the growth of hormone-refractory prostate cancers. Further, recent explosion in genomic sequencing has revealed recurrent ACK1 gene amplification and somatic mutations in a variety of human malignancies, providing a molecular basis for its role in neoplastic transformation. In this review, we will discuss the various facets of ACK1 signaling, including its newly uncovered epigenetic regulator function, which enables cells to bypass the blockade to major survival pathways to promote resistance to standard cancer treatments. Not surprisingly, cancer cells appear to acquire an 'addiction' to ACK1-mediated survival, particularly under stress conditions, such as growth factor deprivation or genotoxic insults or hormone deprivation. With the accelerated development of potent and selective ACK1 inhibitors, targeted treatment for cancers harboring aberrant ACK1 activity may soon become a clinical reality.
Insights
Activated Cdc42-associated kinase 1 (ACK1) is an oncogenic kinase driving cancer progression through tyrosine kinase signaling and epigenetic regulation. Targeting ACK1 offers a promising strategy for treating cancers with aberrant ACK1 activity.
Area of Science:
- Oncology
- Molecular Biology
- Epigenetics
Background:
- Deregulated tyrosine kinase signaling is a hallmark of cancer.
- Activated Cdc42-associated kinase 1 (ACK1), also known as TNK2, is an oncogenic non-receptor tyrosine kinase.
- ACK1 plays critical roles in cancer progression by transducing signals and regulating gene expression.
Purpose of the Study:
- To review the multifaceted roles of ACK1 in cancer.
- To highlight ACK1's newly discovered function as an epigenetic regulator.
- To discuss the therapeutic potential of targeting ACK1 in malignancies.
Main Methods:
- Literature review of studies on ACK1 signaling in cancer.
- Analysis of genomic sequencing data revealing ACK1 alterations.
- Examination of ACK1's interactions with key receptors and epigenetic modifiers.
Main Results:
- ACK1 promotes cancer growth by interacting with estrogen receptor (ER) and androgen receptor (AR).
- ACK1's epigenetic role involves tyrosine phosphorylation of KDM3A, affecting HOXA1 locus transcription in tamoxifen-resistant breast cancer.
- ACK1 regulates androgen receptor activity in hormone-refractory prostate cancer.
- Genomic studies show recurrent ACK1 amplification and mutations in various cancers.
Conclusions:
- ACK1's dual role as a signaling transducer and epigenetic regulator contributes to cancer progression and treatment resistance.
- Cancer cells develop an 'addiction' to ACK1-mediated survival pathways.
- Development of selective ACK1 inhibitors presents a potential targeted therapy for ACK1-driven cancers.
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