Skip to main navigation Skip to search Skip to main content

Brain-iT Immunotherapy: The Neurotransmitters Dopamine, Glutamate, GnRH-II and Neuropeptide Y Revive, Activate and Empower Healthy T Cells, Exhausted T Cells of Cancer Patients, and Genetically Engineered CAR T Cells

Research output: Contribution to journalArticlepeer-review

Abstract

Neurotransmitters are critical signaling molecules of the nervous system that activate their receptors within milliseconds, and convey accurate, coordinated, tightly regulated and important messages from one nerve cell, across a syn-apse, to another nerve, muscle or gland cell. It is time to realize that specific neurotransmitters also activate T cells directly and rapidly via their receptors in T cells. Subsequently, they decrease immune checkpoint inhibitors, increase expression of critical receptors, and induce a kaleidoscope of effector T cell functions. This review summarizes our discoveries of direct, activating, rejuvenating, and strengthening effects of either Dopamine, Glutamate, GnRH-II or Neuropeptide Y, or their combinations on human T cells of five origins: (1) normal T cells of healthy people, (2) exhausted T cells of head and neck cancer patients, (3) exhausted T cells of hepatocellular carcinoma patients, (4) exhausted T cells of glioblastoma patients, and (5) human genetically-engineered CAR T cells. The beneficial effects of these neurotransmitters on healthy T cells and on exhausted T cells of cancer patients include the following: depolarization; simultaneous decreased expression of key checkpoint inhibitors (PD-1, LAG-3, Tim-3, TIGIT and CD160); increased expression of CD3 zeta chain, CD147/EMM-PRIN/Basigin and 67kDa laminin receptor; and increased adhesion to fibronectin and laminin, chemotactic migration to SDF-1, migration toward autologous tumors, gene expression, cytokine secretion, proliferation, and arrest of human cancer cells. The direct effects of GnRH-II, Dopamine, or Glutamate on human anti-breast cancer ErbB-2+ CAR T cells were dis-covered in a yet unpublished collaborative research with Professor Zelig Eshhar, the pioneering scientist who invented and developed the concept of T-bodies, later re-named CAR T cells. The direct effects of the neurotransmitters on these CAR T cells include (1) dramatically increased expression of: CD3 zeta, CD147 and CXCR4, within only 30 minutes; (2) increased chemotactic migration towards SDF-1; (3) increased migration toward breast cancer cells; (4) increased penetration of the bone marrow of SCID mice; (5) increased homing to human breast cancer in SCID mice; and (6) increased inhibition of human breast cancer in SCID mice. In summary, either Glutamate, Dopamine, Neuropeptide Y, GnRH-II or their combina-tions, can activate, rescue, and strengthen healthy, exhausted, and genetically engineered CAR T cells. A novel personalized adoptive immunotherapy, called Brain-iT Immunotherapy, was invented and patented, and the review details its diagnostic and therapeutic stages for either patient’s exhausted T cells or genetically engineered CAR T cells.

Original languageEnglish
Pages (from-to)67-107
Number of pages41
JournalCritical Reviews in Oncogenesis
Volume31
Issue number1
DOIs
StatePublished - 2026

Bibliographical note

Publisher Copyright:
© 2026 by Begell House, Inc..

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • Brain-iT Immunotherapy
  • CAR T cells
  • CD147
  • CD160
  • CD3 zeta
  • CXCR4
  • Dopamine
  • Glutamate
  • GnRH-II
  • LAG-3
  • Neuropeptide Y
  • PD-1
  • T cells
  • TIGIT
  • Tim-3
  • adoptive Immunotherapy
  • checkpoint inhibitors
  • exhausted T cells
  • immunotherapy of cancer
  • nerve-driven immunity
  • neuroimmunology
  • neuropeptides
  • neurotransmitters

Fingerprint

Dive into the research topics of 'Brain-iT Immunotherapy: The Neurotransmitters Dopamine, Glutamate, GnRH-II and Neuropeptide Y Revive, Activate and Empower Healthy T Cells, Exhausted T Cells of Cancer Patients, and Genetically Engineered CAR T Cells'. Together they form a unique fingerprint.

Cite this