NK cells encapsulated in micro/macropore-forming hydrogels via 3D bioprinting for tumor immunotherapy

Dahong Kim1,2, Seona Jo3,4, Dongjin Lee1

  • 1Nano Convergence & Manufacturing Systems, Korea Institute of Machinery and Materials (KIMM), Daejeon, 34103, Republic of Korea.

Biomaterials Research
|June 22, 2023
PubMed
Abstract

Insights

This study developed a 3D bioprinted hydrogel to encapsulate Natural Killer (NK) cells for enhanced immunotherapy. This novel approach improves NK cell function and offers a promising strategy to prevent tumor recurrence after surgery.

Area of Science:

  • Biomaterials Science
  • Immunotherapy
  • Cancer Research

Background:

  • Surgical resection of solid tumors can leave residual cells, increasing relapse risk.
  • Conventional intravenous immunotherapy faces challenges in tumor homing and expansion, limiting clinical efficacy.
  • There is a critical need for advanced immunotherapy strategies to prevent post-surgical tumor recurrence and metastasis.

Purpose of the Study:

  • To develop a novel micro/macropore-forming hydrogel system for encapsulating Natural Killer (NK) cells.
  • To enhance NK cell viability, activity, and cytokine release for improved immunotherapy against solid tumors and leukemia.
  • To create a 3D bioprinted immunotherapy platform for potential clinical application in preventing post-resection tumor relapse.

Main Methods:

  • Utilized 3D bioprinting to fabricate micro/macroporous hydrogels using sodium alginate and thermally sensitive gelatin.
  • Incorporated Natural Killer (NK) cells within the hydrogel structure.
  • Investigated the functionality and antitumor effects of encapsulated NK cells (NK92 and zEGFR-CAR-NK) in vitro.

Main Results:

  • The micro/macropore hydrogel design facilitated NK cell aggregation, enhancing cell viability, lysis activity, and cytokine release.
  • 3D bioprinting enabled the formation of macropores crucial for NK cell nutrient supply.
  • Demonstrated significant antitumor effects against leukemia and solid tumor models in vitro.

Conclusions:

  • The 3D bioprinted hydrogel provides an optimal micro-macro environment for NK cell therapy in leukemia and solid tumors.
  • This technology enables macro-scale clinical applications and holds potential as an off-the-shelf immunotherapy product.
  • The developed system offers a potential clinical strategy to prevent tumor relapse and metastasis post-resection.

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