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Updated: Feb 15, 2026

Production and Detection of Reactive Oxygen Species ROS in Cancers
Published on: November 21, 2011
Cellular death, reactive oxygen species (ROS) and diabetic complications
Caroline Maria Oliveira Volpe1, Pedro Henrique Villar-Delfino1, Paula Martins Ferreira Dos Anjos1
1Núcleo de Pós-Graduação e Pesquisa, Hospital Santa Casa de Belo Horizonte, Rua Domingos Vieira 590, Santa Efigênia, Belo Horizonte, MG30150-240, Brazil.
Abstract:
Chronic or intermittent hyperglycemia is associated with the development of diabetic complications. Several signaling pathways can be altered by having hyperglycemia in different tissues, producing oxidative stress, the formation of advanced glycation end products (AGEs), as well as the secretion of the pro-inflammatory cytokines and cellular death (pathological autophagy and/or apoptosis). However, the signaling pathways that are directly triggered by hyperglycemia appear to have a pivotal role in diabetic complications due to the production of reactive oxygen species (ROS), oxidative stress, and cellular death. The present review will discuss the role of cellular death in diabetic complications, and it will suggest the cause and the consequences between the hyperglycemia-induced signaling pathways and cell death. The signaling pathways discussed in this review are to be described step-by-step, together with their respective inhibitors. They involve diacylglycerol, the activation of protein kinase C (PKC) and NADPH-oxidase system, and the consequent production of ROS. This was initially entitled the "dangerous metabolic route in diabetes". The historical usages and the recent advancement of new drugs in controlling possible therapeutical targets have been highlighted, in order to evaluate the evolution of knowledge in this sensitive area. It has recently been shown that the metabolic responses to stimuli (i.e., hyperglycemia) involve an integrated network of signaling pathways, in order to define the exact responses. Certain new drugs have been experimentally tested-or suggested and proposed-for their ability to modulate the possible biochemical therapeutical targets for the downregulation of retinopathy, nephropathy, neuropathy, heart disease, angiogenesis, oxidative stress, and cellular death. The aim of this study was to critically and didactically evaluate the exact steps of these signaling pathways and hence mark the indicated sites for the actions of such drugs and their possible consequences. This review will emphasize, besides others, the therapeutical targets for controlling the signaling pathways, when aimed at the downregulation of ROS generation, oxidative stress, and, consequently, cellular death-with all of these conditions being a problem in diabetes.
Insights
High blood sugar (hyperglycemia) triggers harmful cell death pathways, leading to diabetic complications. Understanding these pathways and developing targeted drugs can help manage conditions like retinopathy and heart disease.
Area of Science:
- Biochemistry
- Cell Biology
- Pharmacology
Background:
- Chronic hyperglycemia is a primary driver of diabetic complications.
- Hyperglycemia alters cellular signaling, inducing oxidative stress, advanced glycation end products (AGEs), inflammation, and cell death (autophagy/apoptosis).
- Specific hyperglycemia-induced pathways, involving diacylglycerol, protein kinase C (PKC), and NADPH oxidase, are critical for reactive oxygen species (ROS) production and oxidative stress.
Purpose of the Study:
- To review the role of cell death in diabetic complications.
- To elucidate the cause-and-consequence relationship between hyperglycemia-induced signaling pathways and cell death.
- To identify therapeutic targets for novel drugs to mitigate diabetic complications.
Main Methods:
- Step-by-step description of key signaling pathways triggered by hyperglycemia.
- Discussion of inhibitors for these pathways.
- Review of historical and recent advancements in drug development for diabetic complications.
Main Results:
- Hyperglycemia-induced signaling pathways, particularly those generating ROS, are pivotal in diabetic complications.
- These pathways involve diacylglycerol, PKC activation, and the NADPH oxidase system.
- New drugs are being developed to target these pathways, aiming to downregulate ROS, oxidative stress, and cell death.
Conclusions:
- Cellular death is a critical mechanism in diabetic complications, directly linked to hyperglycemia-induced signaling.
- Targeting specific steps in these pathways offers a promising therapeutic strategy.
- Modulating these pathways can potentially prevent or treat diabetic complications such as retinopathy, nephropathy, and heart disease.
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