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Engineered Nanomaterials for Immunomodulation: A Review. | LitMetric

Engineered Nanomaterials for Immunomodulation: A Review.

ACS Appl Bio Mater

Department of Biochemistry, School of Life Sciences, Central University of Rajasthan, Bandarsindari 305817, Ajmer, India.

Published: February 2024

AI Article Synopsis

  • Nanomaterials can evade the immune system, altering immunological responses and potentially causing inflammation due to their unique physical and chemical properties.
  • The size, shape, composition, surface charge, and adsorbed molecules on nanomaterials significantly influence how immune cells respond to these materials.
  • The review focuses on the characteristics of engineered nanomaterials, their effects on immune responses, biocompatibility, safety concerns, and future developments in optimizing their application in immunomodulation.

Article Abstract

The immune system usually provides a defense against invading pathogenic microorganisms and any other particulate contaminants. Nonetheless, it has been recently reported that nanomaterials can evade the immune system and modulate immunological responses due to their unique physicochemical characteristics. Consequently, nanomaterial-based activation of immune components, i.e., neutrophils, macrophages, and other effector cells, may induce inflammation and alter the immune response. Here, it is essential to distinguish the acute and chronic modulations triggered by nanomaterials to determine the possible risks to human health. Nanomaterials size, shape, composition, surface charge, and deformability are factors controlling their uptake by immune cells and the resulting immune responses. The exterior corona of molecules adsorbed over nanomaterials surfaces also influences their immunological effects. Here, we review current nanoengineering trends for targeted immunomodulation with an emphasis on the design, safety, and potential toxicity of nanomaterials. First, we describe the characteristics of engineered nanomaterials that trigger immune responses. Then, the biocompatibility and immunotoxicity of nanoengineered particles are debated, because these factors influence applications. Finally, future nanomaterial developments in terms of surface modifications, synergistic approaches, and biomimetics are discussed.

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Source
http://dx.doi.org/10.1021/acsabm.3c00940DOI Listing

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