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The Role of IGF/IGF-IR-Signaling and Extracellular Matrix Effectors in Bone Sarcoma Pathogenesis
George N Tzanakakis1,2, Eirini-Maria Giatagana1, Aikaterini Berdiaki1
1Laboratory of Histology-Embryology, School of Medicine, University of Crete, 71003 Heraklion, Greece.
Abstract:
Bone sarcomas, mesenchymal origin tumors, represent a substantial group of varying neoplasms of a distinct entity. Bone sarcoma patients show a limited response or do not respond to chemotherapy. Notably, developing efficient chemotherapy approaches, dealing with chemoresistance, and preventing metastasis pose unmet challenges in sarcoma therapy. Insulin-like growth factors 1 and 2 (IGF-1 and -2) and their respective receptors are a multifactorial system that significantly contributes to bone sarcoma pathogenesis. Whereas failures have been registered in creating novel targeted therapeutics aiming at the IGF pathway, new agent development should continue, evaluating combinatorial strategies for enhancing antitumor responses and better classifying the patients that could best benefit from these therapies. A plausible approach for developing a combinatorial strategy is to focus on the tumor microenvironment (TME) and processes executed therein. Herewith, we will discuss how the interplay between IGF-signaling and the TME constituents affects sarcomas' basal functions and their response to therapy. This review highlights key studies focusing on IGF signaling in bone sarcomas, specifically studies underscoring novel properties that make this system an attractive therapeutic target and identifies new relationships that may be exploited. Potential direct and adjunct therapeutical implications of the extracellular matrix (ECM) effectors will also be summarized.
Insights
Targeting insulin-like growth factor (IGF) signaling within the tumor microenvironment (TME) offers new therapeutic strategies for bone sarcomas. Combining IGF pathway inhibitors with TME-targeting agents may overcome chemoresistance and improve patient outcomes.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Bone sarcomas are challenging to treat due to limited chemotherapy response and chemoresistance.
- The insulin-like growth factor (IGF) pathway (IGF-1 and IGF-2) plays a significant role in bone sarcoma development.
- Current targeted therapies for the IGF pathway have shown limited success.
Purpose of the Study:
- To review the interplay between IGF signaling and the tumor microenvironment (TME) in bone sarcomas.
- To identify novel therapeutic targets within the IGF pathway and TME.
- To explore combinatorial strategies for enhancing antitumor responses and patient stratification.
Main Methods:
- Literature review of key studies on IGF signaling in bone sarcomas.
- Analysis of the impact of IGF signaling and TME constituents on sarcoma biology and therapy response.
- Summarization of therapeutic implications of extracellular matrix (ECM) effectors.
Main Results:
- IGF signaling is a critical factor in bone sarcoma pathogenesis.
- The TME significantly influences sarcoma functions and therapeutic responses.
- Exploiting the IGF pathway and TME interactions presents opportunities for novel treatments.
Conclusions:
- Combinatorial therapeutic strategies targeting both IGF signaling and the TME are promising for bone sarcoma treatment.
- Further research into IGF pathway modulators and TME interactions is warranted.
- Patient stratification based on IGF pathway and TME status may optimize treatment efficacy.
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