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Nitrone-based therapeutics for neurodegenerative diseases: their use alone or in combination with lanthionines
Robert A Floyd1, Hugo C Castro Faria Neto2, Guy A Zimmerman3
1Experimental Therapeutics, Oklahoma Medical Research Foundation, Oklahoma City, OK 73104, USA.
Abstract:
The possibility of free radical reactions occurring in biological processes led to the development and employment of novel methods and techniques focused on determining their existence and importance in normal and pathological conditions. For this reason the use of nitrones for spin trapping free radicals became widespread in the 1970s and 1980s, when surprisingly the first evidence of their potent biological properties was noted. Since then widespread exploration and demonstration of the potent biological properties of phenyl-tert-butylnitrone (PBN) and its derivatives took place in preclinical models of septic shock and then in experimental stroke. The most extensive commercial effort made to capitalize on the potent properties of the PBN-nitrones was for acute ischemic stroke. This occurred during 1993-2006, when the 2,4-disulfonylphenyl PBN derivative, called NXY-059 in the stroke studies, was shown to be safe in humans and was taken all the way through clinical phase 3 trials and then was deemed to be ineffective. As summarized in this review, because of its excellent human safety profile, 2,4-disulfonylphenyl PBN, now called OKN-007 in the cancer studies, was tested as an anti-cancer agent in several preclinical glioma models and shown to be very effective. Based on these studies this compound is now scheduled to enter into early clinical trials for astrocytoma/glioblastoma multiforme this year. The potential use of OKN-007 in combination with neurotropic compounds such as the lanthionine ketamine esters is discussed for glioblastoma multiforme as well as for various other indications leading to dementia, such as aging, septic shock, and malaria infections. There is much more research and development activity ongoing for various indications with the nitrones, alone or in combination with other active compounds, as briefly noted in this review.
Insights
Nitrones, initially used for free radical research, show potent biological properties. A derivative, OKN-007, effective in preclinical cancer models, is entering clinical trials for brain tumors.
Area of Science:
- Biochemistry
- Pharmacology
- Neuroscience
Background:
- Free radical reactions are implicated in biological processes, necessitating methods to detect them.
- Nitrones, developed for spin trapping, exhibited significant biological properties starting in the 1970s.
- Phenyl-tert-butylnitrone (PBN) derivatives have been explored for conditions like septic shock and stroke.
Purpose of the Study:
- To review the development and applications of nitrones, particularly PBN derivatives, in biological and medical research.
- To highlight the transition of a PBN derivative (NXY-059) from stroke trials to cancer research (OKN-007).
- To discuss the potential of OKN-007 in treating glioma and other neurodegenerative conditions.
Main Methods:
- Review of preclinical and clinical studies involving nitrones, focusing on PBN derivatives.
- Examination of data from stroke trials (NXY-059) and preclinical cancer models (OKN-007).
- Discussion of potential combination therapies involving OKN-007.
Main Results:
- NXY-059, a PBN derivative, demonstrated safety in human stroke trials but lacked efficacy.
- OKN-007, the same compound, showed high efficacy in preclinical glioma models.
- OKN-007 is slated for early clinical trials in astrocytoma/glioblastoma multiforme.
Conclusions:
- Nitrones possess significant biological activities with therapeutic potential.
- OKN-007 represents a promising candidate for brain cancer treatment.
- Further research into nitrones, including combination therapies, is warranted for various diseases.
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