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Monitoring Activation of the Antiviral Pattern Recognition Receptors RIG-I And PKR By Limited Protease Digestion and Native PAGE
Published on: July 29, 2014
Interferon-Independent Restriction of RNA Virus Entry and Replication by a Class of Damage-Associated Molecular
Michael J Ernandes1, Jonathan C Kagan2
1Harvard Medical School and Division of Gastroenterology, Boston Children's Hospital, Boston, Massachusetts, USA.
Abstract:
Mammalian cells detect microbial molecules known as pathogen-associated molecular patterns (PAMPs) as indicators of potential infection. Upon PAMP detection, diverse defensive responses are induced by the host, including those that promote inflammation and cell-intrinsic antimicrobial activities. Host-encoded molecules released from dying or damaged cells, known as damage-associated molecular patterns (DAMPs), also induce defensive responses. Both DAMPs and PAMPs are recognized for their inflammatory potential, but only the latter are well established to stimulate cell-intrinsic host defense. Here, we report a class of DAMPs that engender an antiviral state in human epithelial cells. These DAMPs include oxPAPC (oxidized 1-palmitoyl-2-arachidonoyl-sn-glycero-3-phosphocholine), PGPC (1-palmitoyl-2-glutaryl phosphatidylcholine), and POVPC [1-palmitoyl-2-(5-oxovaleroyl)-sn-glycero-3-phosphatidylcholine], oxidized lipids that are naturally released from dead or dying cells. Exposing cells to these DAMPs prior to vesicular stomatitis virus (VSV) infection limits viral replication. Mechanistically, these DAMPs prevent viral entry, thereby limiting the percentage of cells that are productively infected and consequently restricting viral load. We found that the antiviral actions of oxidized lipids are distinct from those mediated by the PAMP Poly I:C, in that the former induces a more rapid antiviral response without the induction of the interferon response. These data support a model whereby interferon-independent defensive activities can be induced by DAMPs, which may limit viral replication before PAMP-mediated interferon responses are induced. This antiviral activity may impact viruses that disrupt interferon responses in the oxygenated environment of the lung, such as influenza virus and SARS-CoV-2.IMPORTANCE In this work, we explored how a class of oxidized lipids, spontaneously created during tissue damage and unprogrammed cell lysis, block the earliest events in RNA virus infection in the human epithelium. This gives us novel insight into the ways that we view infection models, unveiling a built-in mechanism to slow viral growth that neither engages the interferon response nor is subject to known viral antagonism. These oxidized phospholipids act prior to infection, allowing time for other, better-known innate immune mechanisms to take effect. This discovery broadens our understanding of host defenses, introducing a soluble factor that alters the cellular environment to protect from RNA virus infection.
Insights
Oxidized lipids, a type of damage-associated molecular pattern (DAMP), prevent viral entry into human epithelial cells, limiting infection before the interferon response is activated. This interferon-independent antiviral defense offers a novel innate immunity mechanism against RNA viruses.
Area of Science:
- Innate immunity and host defense mechanisms.
- Cellular response to viral infection.
- Lipid mediators in inflammation and immunity.
Background:
- Mammalian cells detect pathogen-associated molecular patterns (PAMPs) and damage-associated molecular patterns (DAMPs) to initiate defensive responses.
- PAMPs are well-established to stimulate cell-intrinsic host defense, primarily through inflammation and antimicrobial activities.
- The role of DAMPs in directly stimulating cell-intrinsic antiviral defense, independent of PAMPs, remains less understood.
Purpose of the Study:
- To investigate whether DAMPs can induce an antiviral state in human epithelial cells.
- To identify specific DAMPs with antiviral properties and elucidate their mechanism of action.
- To compare the antiviral response induced by DAMPs with that induced by PAMPs.
Main Methods:
- Treatment of human epithelial cells with specific oxidized phospholipids (oxPAPC, PGPC, POVPC) identified as DAMPs.
- Infection of treated cells with vesicular stomatitis virus (VSV) to assess viral replication.
- Analysis of viral entry, productive infection, viral load, and interferon response induction.
- Comparison with cells treated with the PAMP Poly I:C.
Main Results:
- Oxidized phospholipids (oxPAPC, PGPC, POVPC) significantly limited VSV replication when applied prior to infection.
- These DAMPs function by preventing viral entry, thereby reducing the percentage of productively infected cells and overall viral load.
- The antiviral effect of these oxidized lipids was rapid and did not involve the induction of the interferon response, distinguishing it from PAMP-mediated defense.
Conclusions:
- A class of oxidized lipids, acting as DAMPs, can induce a rapid, interferon-independent antiviral state in human epithelial cells.
- These DAMPs limit viral replication by inhibiting viral entry, providing an early-acting host defense mechanism.
- This discovery reveals a novel innate immune pathway that may be crucial for controlling viruses, particularly those that antagonize interferon responses, such as influenza and SARS-CoV-2 in the lung.
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