Leveraging breakthrough mitochondrial science
NRG Therapeutics is pioneering a new approach to neurodegenerative disease by targeting mitochondrial dysfunction — a core driver of neuronal damage and disease progression.
Mitochondrial dysfunction
In neurodegenerative disease, a key driver of mitochondrial dysfunction and its downstream effects of neuroinflammation and neuronal death is the opening of the mitochondrial permeability transition pore (mPTP) in response to sensitization or activation by pathogenic proteins such as mis-localized TDP-43 in ALS and oligomeric α-synuclein in Parkinson’s.
Mitochondrial dysfunction leads to energy deficit, oxidative stress, and ultimately the death of critical neurons. The motor neurons in ALS and the substantia nigra pars compacta neurons in Parkinson’s are particularly vulnerable given their high energy demands.
mPTP opening linked to pathophysiology in neurodegenerative diseases
The mPTP is a key driver of pathophysiology in ALS and Parkinson’s
ALS
Inhibition of the mPTP prevents the aberrant release of mitochondrial DNA, a pathogenic pathway recently discovered to activate the innate immune system in ALS. 1
Parkinson’s
Inhibition of the mPTP prevents the activation of mitochondrial mediated cell death by toxic forms of α-synuclein in Parkinson’s. 2
NRG5051 – lead clinical asset
Our lead small molecule drug candidate, NRG5051, is progressing through Phase 1 clinical studies. NRG5051 is a potent inhibitor of the mPTP, acting via a novel NLRX1-mediated mechanism-of-action, that protects mitochondrial function and prevents neuronal death.
Our lead indication is ALS with a planned expansion into Parkinson’s and potentially additional neurodegenerative diseases.
Our lead indication is ALS with a planned expansion into additional neurodegenerative diseases such as Parkinson’s.
References
- TDP-43 Triggers Mitochondrial DNA Release via mPTP to Activate cGAS/STING in ALS: Yu et al., 2020, Cell 183, 636–649
- α-synuclein oligomers interact with ATP synthase and open the permeability transition pore in Parkinson’s disease: Ludtmann et al., 2018, Nature Communications, 9, 1-16



