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Published on: October 1, 2012
The Molecular Basis of Toxins' Interactions with Intracellular Signaling via Discrete Portals
Adi Lahiani1, Ephraim Yavin2, Philip Lazarovici3
1School of Pharmacy Institute for Drug Research, Faculty of Medicine, The Hebrew University of Jerusalem, P.O.Box 12065, Jerusalem 91120, Israel. adi.lahiani@mail.huji.ac.il.
Abstract:
An understanding of the molecular mechanisms by which microbial, plant or animal-secreted toxins exert their action provides the most important element for assessment of human health risks and opens new insights into therapies addressing a plethora of pathologies, ranging from neurological disorders to cancer, using toxinomimetic agents. Recently, molecular and cellular biology dissecting tools have provided a wealth of information on the action of these diverse toxins, yet, an integrated framework to explain their selective toxicity is still lacking. In this review, specific examples of different toxins are emphasized to illustrate the fundamental mechanisms of toxicity at different biochemical, molecular and cellular- levels with particular consideration for the nervous system. The target of primary action has been highlighted and operationally classified into 13 sub-categories. Selected examples of toxins were assigned to each target category, denominated as portal, and the modulation of the different portal's signaling was featured. The first portal encompasses the plasma membrane lipid domains, which give rise to pores when challenged for example with pardaxin, a fish toxin, or is subject to degradation when enzymes of lipid metabolism such as phospholipases A₂ (PLA₂) or phospholipase C (PLC) act upon it. Several major portals consist of ion channels, pumps, transporters and ligand gated ionotropic receptors which many toxins act on, disturbing the intracellular ion homeostasis. Another group of portals consists of G-protein-coupled and tyrosine kinase receptors that, upon interaction with discrete toxins, alter second messengers towards pathological levels. Lastly, subcellular organelles such as mitochondria, nucleus, protein- and RNA-synthesis machineries, cytoskeletal networks and exocytic vesicles are also portals targeted and deregulated by other diverse group of toxins. A fundamental concept can be drawn from these seemingly different toxins with respect to the site of action and the secondary messengers and signaling cascades they trigger in the host. While the interaction with the initial portal is largely determined by the chemical nature of the toxin, once inside the cell, several ubiquitous second messengers and protein kinases/ phosphatases pathways are impaired, to attain toxicity. Therefore, toxins represent one of the most promising natural molecules for developing novel therapeutics that selectively target the major cellular portals involved in human physiology and diseases.
Insights
Toxins pose health risks but offer therapeutic potential. This review classifies toxin targets into 13 categories, revealing common molecular mechanisms for drug development against diseases like cancer.
Area of Science:
- Molecular toxicology and pharmacology
- Cellular biology and signaling pathways
- Neuroscience and disease pathology
Background:
- Understanding toxin mechanisms is crucial for assessing human health risks and developing novel therapies.
- Despite advances, an integrated framework explaining the selective toxicity of diverse toxins is lacking.
- Toxins offer insights into cellular processes and can be repurposed as toxinomimetic agents for treating various pathologies.
Purpose of the Study:
- To review and illustrate the fundamental mechanisms of toxin action at biochemical, molecular, and cellular levels.
- To classify primary toxin targets into 13 operational categories ('portals') and analyze their signaling modulation.
- To highlight the potential of toxins as natural molecules for developing novel therapeutics.
Main Methods:
- Literature review emphasizing specific examples of microbial, plant, and animal toxins.
- Classification of toxin primary targets into 13 distinct 'portal' categories.
- Analysis of how toxins modulate signaling pathways within these targeted portals.
Main Results:
- Identified 13 distinct 'portal' categories representing primary toxin targets, including plasma membrane domains, ion channels, receptors, and subcellular organelles.
- Demonstrated that toxins disrupt cellular homeostasis by targeting these portals, affecting ion balance, second messenger levels, and organelle function.
- Highlighted commonalities in secondary messenger and signaling pathway impairment across diverse toxins once they enter the cell.
Conclusions:
- Toxins interact with specific cellular 'portals,' leading to predictable disruptions in signaling pathways.
- The study provides a framework for understanding toxin selectivity and their impact on human health.
- Toxins represent a promising source for developing targeted therapeutics by exploiting their interaction with key cellular portals.
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