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April 10, 20260 citationsOpen Access

Bioengineering Enhanced Antioxidant Systems in Transgenic Plants – Strategies, Outcomes, and Challenges: A Review

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KNK.Hritvik NairNPNikhila ParasaAKAkanksha Kushwah

Key Points

  • The aim is to discuss strategies for enhancing antioxidant systems in transgenic plants and their outcomes under abiotic stress.
  • Review of genetic engineering strategies to enhance antioxidant systems
  • Analysis of various antioxidant components and pathways
  • Case studies of transgenic Nicotiana tabacum and Solanum lycopersicum
  • Reduction in lipid peroxidation observed in transgenic plants
  • Stabilized photosynthetic performance under various abiotic stresses
  • Substantial improvements in detoxification of reactive oxygen species

Abstract

Reactive oxygen species (ROS) such as superoxide radicals, hydrogen peroxide and hydroxyl radicals are continuously synthesized in plants and can cause adverse effects when coupled with abiotic stress. Such stresses include salinity, cold environment, UV radiation, and more. Excess production of ROS can cause adverse effects like lipid peroxidation, increase in protein denaturation, membrane damage, and impaired photosynthesis. To solve such an issue, plants rely on a coordinated antioxidant network consisting of both enzymatic and non-enzymatic antioxidant components. The progress in plant genetic engineering has enabled targeted enhancement of these antioxidant systems which in turn improves stress tolerance and productivity. Strategies such as overexpression of individual antioxidant enzymes, organelle-targeted expression, multi-gene stacking within pathways like the AsA-GSH cycle and metabolic engineering of non-enzymatic antioxidants have introduced new methods of protecting plants from deleterious ROS species. Cases studied include transgenic Nicotiana tabacum, Solanum lycopersicum, and other species. These cases tell us the substantial improvements in detoxification of ROS in affected plants by getting results that include reduction in lipid peroxidation and stabilized photosynthetic performance under abiotic stress. Despite this, however, several challenges remain in balancing ROS homeostasis, optimizing promoter choice, avoiding metabolic bottlenecks and even managing gene-dosage effects. This review talks about strategies, outcomes and challenges that you can face when bioengineering enhanced antioxidant systems in transgenic plants.

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Cite This Study

Nair et al. (2026) studied this question.

synapsesocial.com/papers/69d896a46c1944d70ce082f7https://doi.org/10.5281/zenodo.19465900
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Antioxidant Defense Systems in Plants: Mechanisms, Regulation, and Biotechnological Strategies for Enhanced Oxidative Stress Tolerance2025
  2. 2Green vanguards: Harnessing the power of plant antioxidants, signal catalysts, and genetic engineering to combat reactive oxygen species under multiple abiotic stresses2024 · 40 citations
  3. 3Reactive Oxygen Species in Crop Plants: Production, Detoxification, Signaling, and Molecular Cross-Talk2026
  4. 4New progress in the production, oxidative damage, and scavenging mechanisms of reactive oxygen species in plants under abiotic stress2026 · 13 citations
  5. 5Photo-Oxidative Stress in Plants: ROS Signaling, Damage Propagation, and Systems-Level Resilience2026