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Related Concept Videos

Tumor Immunotherapy01:27

Tumor Immunotherapy

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Immunotherapy is a treatment that boosts or manipulates the immune system to fight diseases, including cancer. For instance, by stimulating an immune response through vaccinations against viruses that cause cancers, like hepatitis B virus and human papillomavirus, these diseases can be prevented. Nonetheless, some cancer cells can avoid the immune system due to their rapid mutation and division. The immune response to many cancers involves three phases: elimination, equilibrium, and escape.
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Cell-mediated Immune Responses01:40

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T Cell Activation and Clonal Selection01:22

T Cell Activation and Clonal Selection

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T cells are integral to our adaptive immune system, recognizing and effectively responding to foreign antigens. T cell activation and clonal selection are pivotal in orchestrating this immune response. This article elucidates these mechanisms, detailing the roles of cluster of differentiation (CD) markers, major histocompatibility complex (MHC) molecules, costimulatory signals, and the process of clonal selection.
Naive T cells that have not yet encountered an antigen express two primary CD...
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Related Experiment Video

Updated: Oct 17, 2025

Transduction and Expansion of Primary T Cells in Nine Days with Maintenance of Central Memory Phenotype
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Improving CAR T-Cell Persistence.

Violena Pietrobon1, Lauren Anne Todd2, Anghsumala Goswami1

  • 1Refuge Biotechnologies, Inc., Menlo Park, CA 94025, USA.

International Journal of Molecular Sciences
|October 13, 2021
PubMed
Summary

CAR T-cell therapy shows promise but faces challenges with limited persistence, especially in solid tumors. Strategies to enhance T-cell stemness and combat exhaustion are crucial for improving patient outcomes.

Keywords:
CARTRUCKculturing conditionsexhaustionlymphodepletionpersistencestemness

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Area of Science:

  • Immunology
  • Oncology
  • Biotechnology

Background:

  • Chimeric antigen receptor (CAR) T-cell therapy has advanced significantly, yet clinical benefits are restricted, particularly in solid tumors.
  • Limited T-cell expansion and long-term persistence post-transfer are key factors contributing to relapse in both hematological and solid tumor settings.
  • The tumor microenvironment poses additional challenges, impairing T-cell survival, infiltration, and function.

Purpose of the Study:

  • To review the primary causes of decreased CAR T-cell persistence in patients.
  • To explore molecular mechanisms of T-cell exhaustion and strategies to overcome it.
  • To examine approaches for generating CAR T-cells with enhanced stemness for improved therapeutic efficacy.

Main Methods:

  • Literature review focusing on CAR T-cell therapy efficacy and limitations.
  • Analysis of molecular mechanisms underlying T-cell exhaustion and stemness.
  • Examination of clinical trial data and therapeutic strategies.

Main Results:

  • Limited CAR T-cell persistence is a major hurdle, influenced by factors from manufacturing to the tumor microenvironment.
  • T-cell exhaustion, driven by specific molecular pathways, significantly impairs therapeutic outcomes.
  • Strategies targeting T-cell stemness and resistance to exhaustion are under investigation.

Conclusions:

  • Overcoming CAR T-cell exhaustion and promoting stemness are critical for advancing therapy efficacy, especially in solid tumors.
  • Optimizing CAR T-cell design, manufacturing, and in vivo conditions can enhance persistence and clinical benefit.
  • Further research into T-cell stemness mechanisms offers a promising avenue for next-generation CAR T-cell therapies.