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Nitric Oxide in Parasitic Infections: a Friend or Foe?

Overview
Journal J Parasit Dis
Specialty Parasitology
Date 2022 Dec 2
PMID 36457767
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Abstract

The complex interaction between the host and the parasite remains a puzzling question. Control of parasitic infections requires an efficient immune response that must be balanced against destructive pathological consequences. Nitric oxide is a nitrogenous free radical which has many molecular targets and serves diverse functions. Apart from being a signaling messenger, nitric oxide is critical for controlling numerous infections. There is still controversy surrounding the exact role of nitric oxide in the immune response against different parasitic species. It proved protective against intracellular protozoa, as well as extracellular helminths. At the same time, it plays a pivotal role in stimulating detrimental pathological changes in the infected hosts. Several reports have discussed the anti-parasitic and immunoregulatory functions of nitric oxide, which could directly influence the control of the infection. Nevertheless, there is scarce literature addressing the harmful cytotoxic impacts of this mediator. Thus, this review provides insights into the most updated concepts and controversies regarding the dual nature and opposing sides of nitric oxide during the course of different parasitic infections.

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References
1.
V Cabral F, Pelegrino M, Seabra A, Ribeiro M . Nitric-oxide releasing chitosan nanoparticles towards effective treatment of cutaneous leishmaniasis. Nitric Oxide. 2021; 113-114:31-38. DOI: 10.1016/j.niox.2021.04.008. View

2.
Pestechian N, Rasekh H, Rostami-Nejad M, Yousofi H, Hosseini-Safa A . Molecular identification of Giardia lamblia; is there any correlation between diarrhea and genotyping in Iranian population?. Gastroenterol Hepatol Bed Bench. 2014; 7(3):168-72. PMC: 4129568. View

3.
Maneerat Y, Viriyavejakul P, Punpoowong B, Jones M, Wilairatana P, Pongponratn E . Inducible nitric oxide synthase expression is increased in the brain in fatal cerebral malaria. Histopathology. 2000; 37(3):269-77. DOI: 10.1046/j.1365-2559.2000.00989.x. View

4.
Bangirana P, Conroy A, Opoka R, Hawkes M, Hermann L, Miller C . Inhaled nitric oxide and cognition in pediatric severe malaria: A randomized double-blind placebo controlled trial. PLoS One. 2018; 13(1):e0191550. PMC: 5784958. DOI: 10.1371/journal.pone.0191550. View

5.
Furtado R, Soares D, Prado A, Farias L, Da Silva B, Rodrigues A . Constitutive nitric oxide synthase-like enzyme in two species involved in cutaneous and mucocutaneous leishmaniasis. Parasitol Int. 2021; 83:102347. DOI: 10.1016/j.parint.2021.102347. View