Cellular Pathophysiology of Leptospirosis: Role of Na/K-ATPase
Cassiano Felippe Gonçalves-de-Albuquerque1, Carolina Medina Coeli da Cunha1,2, Léo Victor Grimaldi de Castro3
1Laboratory of Immunopharmacology, Department of Physiology, Federal University of the State of Rio de Janeiro (UNIRIO), Rio de Janeiro 20211-030, Brazil.
Abstract:
Inada and Ido identified Leptospira sp. as the pathogen responsible for Weil's Disease in 1915. Later, it was confirmed that Leptospira causes leptospirosis. The host microorganism's interaction at the cellular level remained misunderstood for many years. Although different bacterial components have been isolated and purified, the complexity of the molecular interactions between these components and the host and the molecular mechanisms responsible for the systemic dysfunctions still needs to be fully unveiled. Leptospirosis affects virtually all animal species. Its cellular pathophysiology must involve a ubiquitous cellular mechanism in all eukaryotes. Na/K-ATPase is the molecular target of the leptospiral endotoxin (glycolipoprotein-GLP). Na/K-ATPase dysfunctions on different types of cells give rise to the organ disorders manifested in leptospirosis. Concomitantly, the development of a peculiar metabolic disorder characterized by dyslipidemia, with increased levels of circulating free fatty acids and an imbalance in the fatty acid/albumin molar ratio, triggers events of cellular lipotoxicity. Synergistically, multiple molecular stimuli are prompted during the infection, activating inflammasomes and Na/K-ATPase signalosome, leading to pro-inflammatory and metabolic alterations during leptospirosis. Leptospirosis involves diverse molecular mechanisms and alteration in patient inflammatory and metabolic status. Nonetheless, Na/K-ATPase is critical in the disease, and it is targeted by GLP, its components, and other molecules, such as fatty acids, that inhibit or trigger intracellular signaling through this enzyme. Herein, we overview the role of Na/K-ATPase during leptospirosis infection as a potential therapeutic target or an indicator of disease severity.
Insights
Leptospira infection disrupts cellular function by targeting the Na/K-ATPase enzyme. This leads to inflammation and metabolic disorders like lipotoxicity, making Na/K-ATPase a key factor in leptospirosis severity and a potential therapeutic target.
Area of Science:
- Microbiology
- Cellular Biology
- Pathophysiology
Background:
- Leptospirosis, caused by Leptospira bacteria, affects numerous animal species, with its cellular mechanisms poorly understood.
- While bacterial components are known, the intricate molecular interactions and systemic dysfunction pathways require further elucidation.
Purpose of the Study:
- To investigate the role of Na/K-ATPase in the cellular pathophysiology of leptospirosis.
- To explore Na/K-ATPase as a potential therapeutic target and disease severity indicator.
Main Methods:
- Review of existing literature on Leptospira interactions with host cells.
- Analysis of the molecular targeting of Na/K-ATPase by Leptospira components and host-derived molecules.
- Examination of the link between Na/K-ATPase dysfunction, inflammation, and metabolic alterations.
Main Results:
- Leptospiral glycolipoprotein (GLP) targets Na/K-ATPase, causing cellular dysfunction and organ damage in leptospirosis.
- Infection induces dyslipidemia and lipotoxicity, exacerbating cellular damage.
- Activation of inflammasomes and the Na/K-ATPase signalosome drives pro-inflammatory and metabolic changes.
Conclusions:
- Na/K-ATPase is central to leptospirosis pathogenesis, mediating cellular dysfunction and systemic effects.
- Targeting Na/K-ATPase or monitoring its activity may offer therapeutic strategies and diagnostic insights for leptospirosis.
More Related Videos
06:05Author Spotlight: Leptospira DNA Detection in Water for Environmental Analysis and Disease Surveillance
Published on: June 14, 2024
12:48Measuring Cation Transport by Na,K- and H,K-ATPase in Xenopus Oocytes by Atomic Absorption Spectrophotometry: An Alternative to Radioisotope Assays
Published on: February 19, 2013
Related Concept Videos
Active Transport
Primary active transporters, like Na+, K+ and -ATPase, directly utilize ATP to move ions across the membrane. These transporters play significant roles in various physiological processes. For instance, Na+, K+ and -ATPase maintain...
ATP Synthase: Structure
Acute Kidney Injury II: Pathophysiology
ATP Synthase: Mechanism
ATP Driven Pumps III: V-type Pumps
The peripheral or cytosolic V1 domain with eight subunits is involved in ATP hydrolysis. The integral or transmembrane V0 domain containing at least five subunits...
Bacterial Phylum Spirochaetes
