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Polymalic Acid-based Nano Biopolymers for Targeting of Multiple Tumor Markers: An Opportunity for Personalized Medicine?
Published on: June 13, 2014
Targeting tumor microenvironment: crossing tumor interstitial fluid by multifunctional nanomedicines
1Research Center for Pharmaceutical Nanotechnology, Faculty of Pharmacy, Tabriz University of Medical Sciences, Tabriz, Iran.
Introduction:
The genesis of cancer appears to be a complex matter, which is not simply based upon few genetic abnormalities/alteration. In fact, irregular microvasculature and aberrant interstitium of solid tumors impose significant pathophysiologic barrier functions against cancer treatment modalities, hence novel strategies should holistically target bioelements of tumor microenvironment (TME). In this study, we provide some overview and insights on TME and important strategies used to control the impacts of such pathophysiologic barriers.
Methods:
We reviewed all relevant literature for the impacts of tumor interstitium and microvasculature within the TME as well as the significance of the implemented strategies.
Results:
While tumorigenesis initiation seems to be in close relation with an emergence of hypoxia and alterations in epigenetic/genetic materials, large panoplies of molecular events emerge as intricate networks during oncogenesis to form unique lenient TME in favor of tumor progression. Within such irregular interstitium, immune system displays defective surveillance functionalities against malignant cells. Solid tumors show multifacial traits with coadaptation and self-regulation potentials, which bestow profound resistance against the currently used conventional chemotherapy and immunotherapy agents that target solely one face of the disease.
Conclusion:
The cancerous cells attain unique abilities to form its permissive microenvironment, wherein (a) extracellular pH is dysregulated towards acidification, (b) extracellular matrix (ECM) is deformed, (c) stromal cells are cooperative with cancer cells, (d) immune system mechanisms are defective, (e) non-integrated irregular microvasculature with pores (120-1200 nm) are formed, and (h) interstitial fluid pressure is high. All these phenomena are against cancer treatment modalities. As a result, to control such abnormal pathophysiologic traits, novel cancer therapy strategies need to be devised using multifunctional nanomedicines and theranostics.
Insights
Cancer cells create a protective tumor microenvironment (TME) that hinders treatment. Novel strategies must target TME barriers, including abnormal vasculature and immune defects, for effective cancer therapy.
Area of Science:
- Oncology
- Biomedical Engineering
- Cancer Biology
Background:
- Cancer genesis involves more than genetic alterations; the tumor microenvironment (TME) presents significant barriers to treatment.
- Irregular tumor microvasculature and aberrant interstitium impede drug delivery and therapeutic efficacy.
- Novel strategies are needed to holistically target TME bioelements.
Purpose of the Study:
- To provide an overview of the tumor microenvironment (TME).
- To discuss strategies for overcoming pathophysiologic barriers within the TME.
- To highlight the role of TME in cancer progression and treatment resistance.
Main Methods:
- Literature review focusing on the impacts of tumor interstitium and microvasculature.
- Analysis of strategies designed to control TME-related pathophysiologic barriers.
- Synthesis of current understanding of TME dynamics in cancer.
Main Results:
- Tumorigenesis involves hypoxia and genetic/epigenetic alterations, creating a TME that favors tumor progression.
- The TME exhibits defective immune surveillance and resistance to conventional therapies.
- Solid tumors display coadaptation and self-regulation, contributing to treatment resistance.
Conclusions:
- Cancer cells engineer a permissive TME characterized by acidic pH, deformed extracellular matrix, stromal cooperation, immune dysfunction, abnormal vasculature, and high interstitial fluid pressure.
- These TME characteristics present significant challenges to existing cancer treatment modalities.
- Multifunctional nanomedicines and theranostics are proposed as novel strategies to address these abnormal pathophysiologic traits.
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