Independent education resourceInformation here does not replace care from a qualified health professional.
Peptide Therapy GuideClear peptide education

Educational guide

How Innate Immunity Is Regulated

One of the central components of the immune system is the enzyme cyclic GMP-AMP synthase (cGAS), which acts as a guard, detecting foreign DNA and initiating an immune response. If cGAS is not properly regulated, it will mistakenly attack the body’s own tissues

Written by Peptide Therapy Guide Editorial Team
For education only

This guide cannot diagnose a condition or recommend a personal treatment plan. Discuss medical questions with a qualified professional.

One of the central components of the immune system is the enzyme cyclic GMP-AMP synthase (cGAS), which acts as a guard, detecting foreign DNA and initiating an immune response. If cGAS is not properly regulated, it will mistakenly attack the body’s own tissues, leading to autoimmune disorders. Previous studies have not been fully able to reveal how cGAS does not mistakenly interact with the cell’s own DNA. Now, a study in mice by the École Polytechnique Fédérale de Lausanne (EPFL) sheds light on how cGAS is regulated, especially during the critical phase of cell division known as mitosis.

Previous studies have revealed little about how this happens. During cell division—mitosis— the membrane that protects the cell’s nucleus, the nuclear envelope, breaks down and cGAS quickly relocates into the nucleus. There, it attaches itself to nucleosomes and becomes covered by another protein called BAF. All this ensures that cGAS stays inactive and fixed in place, and does not mistakenly interact with the cell’s own DNA.

The new study, “The CRL5–SPSB3 ubiquitin ligase targets nuclear cGAS for degradation,” published in Nature, demonstrates how cGAS is selectively broken down in the nucleus, preventing it from mistakenly responding to the cell’s own DNA.

“Inside the cell nucleus, anchoring to nucleosomes and competition with chromatin architectural proteins jointly prohibit cGAS activation by genomic DNA,” the researchers wrote. “However, the fate of nuclear cGAS and its role in cell physiology remains unclear. Here we show that the ubiquitin proteasomal system (UPS) degrades nuclear cGAS in cycling cells.”

Using advanced imaging and molecular techniques, the researchers discovered that the process is mediated by a protein complex known as CRL5–SPSB3, which recognizes a specific motif in cGAS and tags it in the nucleus for destruction. Using structural biology, biochemistry, and cell biology, the researchers then visualized the interactions between cGAS and the protein complex at the atomic level.

CRL5–SPSB3 adds a protein called ubiquitin to cGAS. The ubiquitination of cGAS also marks it for destruction, effectively inactivating the sentinel once the threat of an invader has been neutralized. By elucidating the structure of the cGAS-SPSB3 complex, the study maps out how cGAS is regulated within the nucleus of cells.

The new findings will help scientists explore new strategies for treating diseases where the immune system is either overactive, such as in autoimmune diseases, or underactive, as in cases of chronic infections or cancer.

Connected reading

Helpful context for this guide

Source-derived material selected through this article’s indexed topics.

Related questions

01Why use a protein degrader?

Targeted protein degraders appear to have distinct advantages over more traditional inhibiting drugs. “Compared to traditional inhibitors, degraders have some potential advantages, such as eliminating scaffolding function, improving potency, and enhancing selectivity,” explains Yu Shen, PhD, director of cancer biology at AbbVie. Another major advantage of protein inhibitors is that they have the potential to treat what are referred to as undruggable proteins. As Nasveschuk points out, “There are some proteins that are just not targetable through ligands. These are ideal targets for protein degradation.” In some cases, the protein’s active site has a geometry that is not readily accessible. In other instances, although it may be possible to bind to a portion of a protein, there is no functional consequence of that binding event. “So, your inhibitor or ligand doesn’t actually do anything to the protein or modulate the disease,” Nasveschuk remarks. Protein degraders represent a novel way to target these undruggable proteins.

Source: www.genengnews.com ↗
02Undruggable or unscreenable?

Another obstacle to discovering new PPI inhibitors is the lack of libraries designed to hunt for them, points out Philippe Roche, PhD, senior scientist at the Integrative Structural and Chemical Biology team at the Cancer Research Center of Marseilles, France. “If you screen PPIs using libraries that were designed for kinases or GPCRs, that’s why you don’t get a lot of good results,” he says. To that end, his group began assembling a library focused on orthosteric inhibitors of PPIs. The result was 2P2Idb, a hand-curated, structural database cataloguing orthosteric inhibitors of PPIs for which the interface had been 3D characterized. From analyzing these known PPI inhibitors, and what structures they had in common, Roche and his colleagues developed a model to predict whether compounds would likely inhibit PPIs. Using this method, 2P2Idb creates an enriched screening library that dramatically increases the hit rate compared to standard libraries. Having proven their success with a small library of 1600 compounds, they are in the process of expanding the library to 10,000 compounds. Once that’s published, “the idea is to make this library available to labs around the world,” Roche says. “We will provide the library free of charge for people to be able to screen PPI targets.”

Source: www.genengnews.com ↗
03How stable is the antibody?

A crucial question often addressed during preclinical development focuses on the in vivo stability of therapeutic antibodies. Increasing the half-life of a therapeutic antibody has several benefits ranging from higher treatment efficacy to increased advantages for the patients who will have a fewer number of therapy sessions and a reduced cost. Given these compelling benefits, following the identification of therapeutic antibodies with the desired specificity, developers usually subject them to a refinement step to increase their stability. This process is often hindered by the lack of reliable experimental tools to predict the half-life of antibodies in patients. The major hurdle of using mouse models to predict antibody stability in the serum lies in the way immunoglobulin proteins are processed by the organism. In mammals, most proteins circulating in the serum undergo constant uptake by endothelial cells and are routed through the endosomes to the lysosomal compartment for degradation. In the endosomes, immunoglobulin G (IgG) proteins are recognized and bound by a transmembrane protein, called the neonatal Fc receptor (FcRn), which mediates their recycling to the plasma membrane and subsequent release back into the serum. As a result, the half-life of IgGs are significantly extended by this mechanism. Since most therapeutic antibodies belong to the IgG class, this recycling system is very relevant for their relative stability in the body. Remarkably, the relative affinity between IgGs and FcRn is extremely disparate between different species, with the mouse receptor showing a much higher affinity than its human counterpart.

Source: www.genengnews.com ↗
P

About the author

Peptide Therapy Guide Editorial Team

Editorial team for Peptide Therapy Guide.

View all articles →