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The Potential Role of the T2 Ribonucleases in TME-Based Cancer Therapy
Paola Campomenosi1,2, Lorenzo Mortara3, Barbara Bassani4
1Laboratory of Molecular Genetics, Department of Biotechnology and Life Sciences, University of Insubria, Via J.H. Dunant 3, 21100 Varese, Italy.
Abstract:
In recent years, there has been a growing interest in developing innovative anticancer therapies targeting the tumor microenvironment (TME). The TME is a complex and dynamic milieu surrounding the tumor mass, consisting of various cellular and molecular components, including those from the host organism, endowed with the ability to significantly influence cancer development and progression. Processes such as angiogenesis, immune evasion, and metastasis are crucial targets in the search for novel anticancer drugs. Thus, identifying molecules with "multi-tasking" properties that can counteract cancer cell growth at multiple levels represents a relevant but still unmet clinical need. Extensive research over the past two decades has revealed a consistent anticancer activity for several members of the T2 ribonuclease family, found in evolutionarily distant species. Initially, it was believed that T2 ribonucleases mainly acted as anticancer agents in a cell-autonomous manner. However, further investigation uncovered a complex and independent mechanism of action that operates at a non-cell-autonomous level, affecting crucial processes in TME-induced tumor growth, such as angiogenesis, evasion of immune surveillance, and immune cell polarization. Here, we review and discuss the remarkable properties of ribonucleases from the T2 family in the context of "multilevel" oncosuppression acting on the TME.
Insights
T2 ribonuclease family enzymes show potent anticancer activity by targeting the tumor microenvironment (TME). These multi-tasking molecules counteract tumor growth through non-cell-autonomous mechanisms, impacting angiogenesis and immune evasion.
Area of Science:
- Oncology
- Biochemistry
- Immunology
Background:
- The tumor microenvironment (TME) significantly influences cancer progression, making it a key target for novel anticancer therapies.
- Developing multi-tasking molecules that can inhibit cancer growth at multiple levels is a critical unmet clinical need.
- The T2 ribonuclease family has demonstrated consistent anticancer activity across various species.
Purpose of the Study:
- To review and discuss the properties of T2 ribonuclease family members.
- To explore their multilevel oncosuppressive mechanisms within the TME.
- To highlight their potential as innovative anticancer agents.
Main Methods:
- Literature review of T2 ribonuclease family research.
- Analysis of T2 ribonucleases' mechanisms of action in the TME.
- Discussion of their impact on angiogenesis, immune evasion, and immune cell polarization.
Main Results:
- T2 ribonucleases exhibit anticancer activity through both cell-autonomous and non-cell-autonomous mechanisms.
- Non-cell-autonomous actions significantly affect TME-driven tumor growth.
- These enzymes modulate crucial processes like angiogenesis and immune surveillance.
Conclusions:
- T2 ribonucleases possess remarkable properties for multilevel oncosuppression.
- Their ability to target the TME makes them promising candidates for innovative cancer therapies.
- Further research into T2 ribonucleases could lead to novel therapeutic strategies against cancer.
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