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Phosphorylation regulation of cardiac proteins in Babesia microti infected mice in an effort to restore heart function.

AbstractBACKGROUND:
Babesia is a common protozoan parasite that infects red blood cells. In mice infected with Babesia microti, the red blood cells were lysed, resulting in decreased oxygen-carrying capacity. To compensate for low blood oxygen levels, stress on the heart was greatly increased. Babesiosis induces a variety of pathologies; meanwhile, heart tissues initiate self-repair responses to babesiosis-induced tissue damage to restore heart function.
METHODS:
To discover the molecular mechanisms of the damage and self-repair in the heart after B. microti infection in mice, we investigated the changes in protein expression and phosphorylation modification levels in heart tissues at 0, 5, 8, 11, and 19 days post-infection using data-independent acquisition (DIA) quantitative proteomics.
RESULTS:
The numbers of global proteins we identified were 1934, 1966, 1984, 1989, and 1955 and of phosphopeptides were 5118, 5133, 5130, 5133, and 5140 at 0, 5, 8, 11, and 19 days, respectively, in heart cells after infection with B. microti. The results showed that after B. microti infection the differentially expressed proteins in mice mainly include fibrinogen α (Fgα), fibrinogen β (Fgβ), Serpina1b, Serpina1c, cathepsin Z, cytochrome c oxidases (COXs), RPS11, and RPS20. The proteins with phosphorylation changes mainly include 20-kDa light chain of myosin II (MLC20), myosin light chain kinase (MLCK), mitogen-activated protein kinase 14 (MAPK14), and Akt1. These proteins were mainly involved in coagulation processes, cell apoptosis, oxidative phosphorylation, and ribosomes.
CONCLUSIONS:
The coagulation cascade-related proteins, apoptosis-related proteins, oxidative phosphorylation-related proteins, and other types of proteins are all involved in the damage and self-repair process in the heart after B. microti infection. These results offer a wealth of new targets for further exploration into the causes of heart disease induced by Babesia infection and are of great significance for novel drug development and new opportunities for targeted therapies.
AuthorsXiaohong Yang, Ningmei Wang, Shuguang Ren, Yuhong Hu, Han Wang, Aimeng Ji, Lihui Cao, Mengxue Li, Jingze Liu, Hui Wang
JournalParasites & vectors (Parasit Vectors) Vol. 15 Issue 1 Pg. 98 (Mar 21 2022) ISSN: 1756-3305 [Electronic] England
PMID35313969 (Publication Type: Journal Article)
Copyright© 2022. The Author(s).
Topics
  • Animals
  • Babesia
  • Babesia microti
  • Babesiosis (parasitology)
  • Erythrocytes (parasitology)
  • Mice
  • Phosphorylation

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