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Lingappa, S.

Publications and source records attributed to Lingappa, S..

2 recordsLinked to original sources

Gut bacterial Infection drives Parkinsonian pathology in LRRK2 G2019S Knock-in Mice

The LRRK2 G2019S mutation is one of the most common genetic risk factors for Parkinsons disease (PD), yet LRRK2 G2019S knock-in (KI) mice rarely develop robust neurodegeneration under basal conditions, suggesting that additional environmental triggers are required for disease progression. Here, we established a clinically relevant gene-environment interaction mouse model of PD by subjecting LRRK2 G2019S KI mice to recurrent Citrobacter (C.) rodentium infection, a murine model of enteric bacterial inflammation. Repeated infection induced progressive PD-like phenotypes selectively in KI mice, including motor impairment, reduced locomotor activity, impaired motor coordination, selective nigrostriatal dopaminergic neurodegeneration, enhanced neuroinflammation, and pathological phosphorylated -synuclein (p-Syn) accumulation, whereas wild-type (WT) mice remained largely resistant. Mechanistically, infected KI mice developed markedly exacerbated colonic inflammation, epithelial barrier dysfunction, increased intestinal permeability, and enhanced inflammasome activation despite normal bacterial clearance, indicating that pathogenic LRRK2 signaling amplifies inflammatory responses rather than impairing antimicrobial defense. In parallel, recurrent infection induced pronounced intestinal p-Syn accumulation and expansion of pathology beyond the epithelial layer in KI mice, supporting a gut-brain axis mechanism linking intestinal inflammation to neurodegeneration. Collectively, these findings demonstrate that the LRRK2 G2019S mutation functions as a sensitizing factor that cooperates with recurrent enteric inflammation to drive PD- related pathology. This study establishes a physiologically relevant LRRK2 G2019S gene- environment interaction mouse model that recapitulates key behavioral, neuropathological, and inflammatory features of PD.

immunology↗

Efficient Recombinant Production and Functional Characterisation of Cytotoxic and Haemotoxic Snake Venom Metalloproteinases

Snake venoms contain diverse mixtures of toxins that evolved to incapacitate prey, but in humans they cause extensive pathology following snakebite envenomation. In viper venom, some of the most potent toxins are the haemorrhagic and coagulopathic snake venom metalloproteinases (SVMPs). Because venoms contain a SVMP cocktail, and due to their cytotoxicity, SVMP characterizations have been hampered by the lack of purified enzymes. By incorporating their prodomain, which blocks the active SVMP site, we overcame their cytotoxicity and enabled recombinant production of zymogens from all three structurally variable SVMP classes (PI, PII and PIII) using our baculovirus/insect cell expression system. Zymogens were auto-activated by incubation with Zn2+ ions, resulting in prodomain cleavage, PII disintegrin cleavage and PIII prodomain proteolysis. Auto-activated SVMPs were characterized using protein substrate degradation, platelet aggregation and blood coagulation assays, benchmarked to native venom-purified SVMP. Our recombinant zymogen production protocol is generically applicable for the expression of SVMPs, unlocking biomedical use in haematology, and discovery of novel snakebite therapeutics.

pharmacology and toxicology↗