Nanoengineered drug delivery in cancer immunotherapy for overcoming immunosuppressive tumor microenvironment

Sei Hyun Park1, Ryounho Eun1, Janghun Heo1

  • 1SKKU Advanced Institute of Nanotechnology (SAINT), Department of Nano Science and Technology, Department of Nano Engineering, School of Chemical Engineering, and Biomedical Institute for Convergence at SKKU, Sungkyunkwan University (SKKU), Suwon, Gyeonggi-Do, 16419, Republic of Korea.

Insights

Tumors create immunosuppressive environments to evade immune responses. This review explores how tumors suppress immunity and how nanoengineered strategies can convert "cold" tumors into "hot" ones for effective cancer immunotherapy.

Area of Science:

  • Oncology and Immunology
  • Biomedical Engineering

Background:

  • Tumors actively modify their microenvironment to escape immune surveillance, leading to limited efficacy of current cancer treatments.
  • The immunosuppressive tumor microenvironment converts immune cells into suppressive phenotypes and utilizes cytokines (e.g., IL-10, TGF-β) and enzymes (e.g., VEGF, IDO1, iNOS) to hinder anti-tumor immunity.

Approach:

  • Reviewing the intricate mechanisms tumors employ to establish and maintain an immunosuppressive environment.
  • Examining the development of nanoengineered delivery strategies designed to counteract tumor-induced immune suppression.

Key Points:

  • Tumors actively manipulate their microenvironment to suppress immune responses, a key challenge in oncology.
  • Regulatory cells (M2 macrophages, Treg cells, MDSCs) and secreted factors (cytokines, enzymes) contribute to immune evasion.
  • Converting the immunosuppressive tumor microenvironment from 'cold' to 'hot' is crucial for successful cancer immunotherapy.

Conclusions:

  • Understanding tumor immune suppression mechanisms is vital for developing effective cancer therapies.
  • Nanoengineered delivery systems offer promising strategies to overcome tumor-induced immune suppression and enhance immunotherapy outcomes.

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