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Updated: Jun 18, 2026

Generation of a RIP1 Knockout U937 Cell Line Using the CRISPR-Cas9 System
Published on: April 11, 2025
Nitration of the mitochondrial complex I subunit NDUFB8 elicits RIP1- and RIP3-mediated necrosis
Christiana W Davis1, Brian J Hawkins, Subbiah Ramasamy
1Institute for Environmental Medicine, University of Pennsylvania, Philadelphia, PA 19104, USA.
Abstract:
Nitric oxide (NO) and other reactive nitrogen species target multiple sites in the mitochondria to influence cellular bioenergetics and survival. Kinetic imaging studies revealed that NO from either activated macrophages or donor compounds rapidly diffuses to the mitochondria, causing a dose-dependent progressive increase in NO-dependent DAF fluorescence, which corresponded to mitochondrial membrane potential loss and initiated alterations in cellular bioenergetics that ultimately led to necrotic cell death. Cellular dysfunction is mediated by an elevated 3-nitrotyrosine signature of the mitochondrial complex I subunit NDUFB8, which is vital for normal mitochondrial function as evidenced by selective knockdown via siRNA. Overexpression of mitochondrial superoxide dismutase substantially decreased NDUFB8 nitration and restored mitochondrial homeostasis. Further, treatment of cells with either necrostatin-1 or siRNA knockdown of RIP1 and RIP3 prevented NO-mediated necrosis. This work demonstrates that the interaction between NO and mitochondrially derived superoxide alters mitochondrial bioenergetics and cell function, thus providing a molecular mechanism for reactive oxygen and nitrogen species-mediated alterations in mitochondrial homeostasis.
Insights
Nitric oxide (NO) rapidly enters mitochondria, disrupting cellular energy and causing cell death. This process involves mitochondrial superoxide and can be blocked by specific inhibitors, revealing a key mechanism in cell death pathways.
Area of Science:
- Mitochondrial biology
- Cellular signaling
- Biochemistry
Background:
- Nitric oxide (NO) and reactive nitrogen species (RNS) impact mitochondrial function.
- Mitochondria are critical for cellular bioenergetics and survival.
- Dysregulation of mitochondrial homeostasis is implicated in cell death.
Purpose of the Study:
- To investigate the molecular mechanisms by which NO affects mitochondrial function and cell death.
- To elucidate the role of mitochondrial superoxide in NO-induced cellular dysfunction.
- To identify potential therapeutic targets for NO-mediated necrosis.
Main Methods:
- Kinetic imaging studies using DAF fluorescence to monitor NO levels.
- Measurement of mitochondrial membrane potential.
- Analysis of 3-nitrotyrosine modification on mitochondrial complex I subunit NDUFB8.
- siRNA-mediated knockdown of NDUFB8 and RIP1/RIP3.
- Overexpression of mitochondrial superoxide dismutase.
- Treatment with necrostatin-1.
Main Results:
- NO rapidly diffuses into mitochondria, causing dose-dependent DAF fluorescence increase and mitochondrial membrane potential loss.
- NO exposure leads to 3-nitrotyrosine modification of NDUFB8, impairing mitochondrial complex I function.
- Overexpression of mitochondrial superoxide dismutase reduced NDUFB8 nitration and restored mitochondrial homeostasis.
- Necrostatin-1 or RIP1/RIP3 knockdown prevented NO-induced necrotic cell death.
Conclusions:
- The interaction between NO and mitochondrial superoxide alters mitochondrial bioenergetics and cell function.
- NO-mediated mitochondrial dysfunction and necrosis are dependent on the NDUFB8 subunit of complex I.
- Targeting the interplay between NO, superoxide, and mitochondrial complex I offers a potential strategy for preventing NO-induced cell death.
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