Completed Lungs & Breathing Infection & Immunity

Oxygen and immune response

In plain English

AI plain-English summary

When oxygen levels drop in infected or inflamed tissue, immune cells can stop working properly—and this project aims to find out exactly how that happens. The problem is that many serious infections and chronic diseases create low-oxygen (hypoxic) conditions inside the body. Immune cells that would normally attack viruses or tumours become suppressed in these environments, allowing disease to persist. Researchers already know that a protein called HIF helps cells sense and respond to low oxygen, but they do not fully understand how HIF controls immune suppression. This project will map the specific molecular signals—including nitric oxide and a metabolite called 2-hydroxyglutarate—that macrophages and T cells use when oxygen is scarce. If successful, this work could reveal new drug targets for boosting immune responses in chronic infections and cancers. The findings might also improve CAR-T cell therapies, a type of cancer treatment where a patient’s own immune cells are engineered to attack tumours. Currently, these therapies often fail inside the low-oxygen environment of solid tumours. Understanding how 2-hydroxyglutarate affects T cell function could lead to more resilient engineered cells. This is fundamental science—it will not produce a treatment tomorrow. But similar curiosity-driven work on immune metabolism has already reshaped cancer immunotherapy in the past decade.

View original technical description
Our goals are centered on understanding how hypoxic response affects immunity. The experiments described are in three key areas: The first of these is myeloid immunosuppression by hypoxia, and the mechanisms of immunosuppression that are regulated by the hypoxia inducible transcription factor (HIF). Here, we will characterize and determine the range of factors produced by M1- and M2-polarized macrophages in HIF1a- and HIF2a-dependent manners by macrophages; we will ask how HIF-driven nitric oxide (NO) homeostasis regulates immunosuppression in hypoxia; and we will determine how HIF-driven myelosuppression acts in a model of acute and chronic viral infection. In the second aim, we will focus on cytotoxic T cell activation by hypoxia and HIF. Here, we will address the role of directed HIF expression on T cell function; and the differential metabolism of T cells as regulated by the VHL- and FIH-mediated control of HIF; including immunometabolic analysis of how those two factors affect T cell function. Our third aim concerns the role of the immunometabolite 2-hydroxyglutarate, and here we will carry out work on enantiomer-specific biology of the metabolites; map chromatin and RNA modifications induced by 2-HG; and investigate the potential use of 2-HG to enhance CAR-T therapies.

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Researchers

Randall Johnson (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Investigation of hypoxia-sensing mechanisms in immune regulation
Dissecting the dynamic role of methylation in the cellular response to hypoxia
Regulation of neutrophilic inflammation by the HIF/PHD pathway.
Regulation of tissue neutrophil function and survival by the interplay between oxygen and metabolite sensing pathways
Hypoxic and normoxic activation of NF-kappaB and HIF: investigating their crosstalk in a coordinated cellular response

Original classification

Principal Research Fellowship Renewal

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