Mitigation of Parkinson’s Disease Pathology in C. elegans by Marine Bacterium Kocuria rhizophila via Ferroptosis Suppression

Read the full article See related articles

Listed in

This article is not in any list yet, why not save it to one of your lists.
Log in to save this article

Abstract

Parkinson’s disease (PD) is a progressive neurodegenerative condition characterized by the loss of dopaminergic (DA) neurons and alpha-synuclein aggregation, with ferroptosis playing a critical pathological role. This study investigated the neuroprotective potential of Kocuria rhizophila strain CDMP12, a marine bacterium isolated from the Gulf of Mannar, India, using Caenorhabditis elegans models of PD. Dietary supplementation with K. rhizophila (CDMP12) significantly preserved DA neuron structure, rescued neuro-sensory and motor deficits, and attenuated both alpha-synuclein expression in the C. elegans models. Transcriptomic and qRT-PCR analyses revealed that CDMP12 systematically suppressed ferroptosis by significantly downregulating iron and lipid regulatory genes such as smf-3 , ftn-1 , and acs-4 , while upregulating the protective antioxidant gene gpx-1 . Furthermore, BODIPY staining demonstrated that CDMP12 treatment markedly reduced lipid peroxidation, lowering the oxidized-to-non-oxidized lipid ratio in PD worms. Collectively, these findings identify K. rhizophila (CDMP12) as a promising marine-derived neuroprotective candidate that mitigates PD-associated pathology, accompanied by reduced alpha-synuclein burden, preservation of DA neuronal function, and attenuation of ferroptosis-associated molecular and lipid peroxidation signatures.

Highlights

1. Marine bacterium K. rhizophila preserves dopaminergic neurons in C. elegans Parkinson’s disease models.

2. K. rhizophila restores dopamine-dependent behaviors in UA44 worms.

3. K. rhizophila reduces alpha-synuclein expression.

4. K. rhizophila induces widespread transcriptomic remodelling

5. K. rhizophila normalise the expression of key ferroptotic genes and reduces lipid peroxidation; implicating ferroptosis as a central target.

Article activity feed