ArticleBiochemical pharmacology2012
Interplay of sorbitol pathway of glucose metabolism, 12/15-lipoxygenase, and mitogen-activated protein kinases in the pathogenesis of diabetic peripheral neuropathy.
Article in Biochemical pharmacology, 2012. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 23 papers.
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Who cites it
23 citing papers in PubMed, 38 citations in OpenAlex.
- Modeling Diabetic Neuropathy: Injury Biomarkers for Early Detection Through Neuronal and Glial In Vitro Models.International journal of molecular sciences · 2026Review
- Hydrogen sulfide alleviates neural degeneration probably by reducing oxidative stress and aldose reductase expression.Journal of cellular and molecular medicine · 2024Article
- Emerging Nonpharmacologic Interventions to Treat Diabetic Peripheral Neuropathy.Antioxidants & redox signaling · 2023Review
- Diabetic Corneal Neuropathy: Pathogenic Mechanisms and Therapeutic Strategies.Frontiers in pharmacology · 2022Review
- Effects of Curcumin Treatment in a Diabetic Neuropathic Pain Model of Rats: Involvement of c-Jun N-Terminal Kinase Located in the Astrocytes and Neurons of the Dorsal Root Ganglion.Pain research & management · 2021Article
- Diabetic Corneal Neuropathy.Journal of clinical medicine · 2020Review
- Neuroprotective Effect of Salvianolic Acid A against Diabetic Peripheral Neuropathy through Modulation of Nrf2.Oxidative medicine and cellular longevity · 2020Article
- Role of the 12-lipoxygenase pathway in diabetes pathogenesis and complications.Pharmacology & therapeutics · 2019Review
- Identify the Key Active Ingredients and Pharmacological Mechanisms of Compound XiongShao Capsule in Treating Diabetic Peripheral Neuropathy by Network Pharmacology Approach.Evidence-based complementary and alternative medicine : eCAM · 2019Article
- Influence of diabetes mellitus on anterior segment of the eye.Clinical interventions in aging · 2019Review
- Peripheral Glial Cells in the Development of Diabetic Neuropathy.Frontiers in neurology · 2018Review
- Schwann cell interactions with axons and microvessels in diabetic neuropathy.Nature reviews. Neurology · 2017Review
- Effects of High Glucose on Cell Viability and Differentiation in Primary Cultured Schwann Cells: Potential Role of ERK Signaling Pathway.Neurochemical research · 2016Article
- The role of lipoxygenases in pathophysiology; new insights and future perspectives.Redox biology · 2015Review
- Acute anoxic changes in peripheral nerve: anatomic and physiologic correlations.Brain and behavior · 2015Article
- Antioxidation and anti-inflammatory activity of Tang Bi Kang in rats with diabetic peripheral neuropathy.BMC complementary and alternative medicine · 2015Article
- Antioxidant strategies in the management of diabetic neuropathy.BioMed research international · 2015Review
- Hydroxamic acid-based histone deacetylase (HDAC) inhibitors can mediate neuroprotection independent of HDAC inhibition.The Journal of neuroscience : the official journal of the Society for Neuroscience · 2014Article
- A clinical and neuropathological study of Chinese patients with diabetic peripheral neuropathy.PloS one · 2014Article
- 12/15-Lipoxygenase inhibition counteracts MAPK phosphorylation in mouse and cell culture models of diabetic peripheral neuropathy.Journal of diabetes mellitus · 2013Article
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Authors and funding
5 authors at 3 institutions in 1 country.
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Abstract
The interactions among multiple pathogenetic mechanisms of diabetic peripheral neuropathy largely remain unexplored. Increased activity of aldose reductase, the first enzyme of the sorbitol pathway, leads to accumulation of cytosolic Ca²⁺, essentially required for 12/15-lipoxygenase activation. The latter, in turn, causes oxidative-nitrosative stress, an important trigger of mitogen activated protein kinase (MAPK) phosphorylation. This study therefore evaluated the interplay of aldose reductase, 12/15-lipoxygenase, and MAPKs in diabetic peripheral neuropathy. In experiment 1, male control and streptozotocin-diabetic mice were maintained with or without the aldose reductase inhibitor fidarestat, 16 mg kg⁻¹ d⁻¹, for 12 weeks. In experiment 2, male control and streptozotocin-diabetic wild-type (C57Bl6/J) and 12/15-lipoxygenase-deficient mice were used. Fidarestat treatment did not affect diabetes-induced increase in glucose concentrations, but normalized sorbitol and fructose concentrations (enzymatic spectrofluorometric assays) as well as 12(S)-hydroxyeicosatetraenoic concentration (ELISA), a measure of 12/15-lipoxygenase activity, in the sciatic nerve and spinal cord. 12/15-lipoxygenase expression in these two tissues (Western blot analysis) as well as dorsal root ganglia (immunohistochemistry) was similarly elevated in untreated and fidarestat-treated diabetic mice. 12/15-Lipoxygenase gene deficiency prevented diabetes-associated p38 MAPK and ERK, but not SAPK/JNK, activation in the sciatic nerve (Western blot analysis) and all three MAPK activation in the dorsal root ganglia (immunohistochemistry). In contrast, spinal cord p38 MAPK, ERK, and SAPK/JNK were similarly activated in diabetic wild-type and 12/15-lipoxygenase⁻/⁻ mice. These findings identify the nature and tissue specificity of interactions among three major mechanisms of diabetic peripheral neuropathy, and suggest that combination treatments, rather than monotherapies, can sometimes be an optimal choice for its management.
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