Jul 2026· Biotechnology and Bioengineering· 0 citations· 138 references
Medicine
TL;DR
This review is guided by the hypothesis that rational, quantitative engineering of microbial SSs can transform conventional BCAs into integrated SBs, and synthesizes current advances within a systems‑level bioengineering framework linking secretion efficiency, regulation, and field performance.
Abstract
The escalating threat of plant diseases to global agriculture and food security necessitates innovative and sustainable control strategies. Conventional biological control agents (BCAs), while environmentally friendly, often suffer environmental challenges and secretion of limited/poor antimicrobial compounds. Advances in CRISPR/Cas genome editing, protease engineering, and synthetic biology have enabled precise modifications that improve pathogen targeting and secretion efficiency. Interest should now be shifted on development of "Super Bioagents (SBs)" with enhanced secretion systems (SSs) for plant disease suppression against changing environmental factors. This will create sustainable ecofriendly alternative to chemical pesticides. This review explores a detailed overview of molecular mechanisms of microbial SSs and the potentials of SBs as a frontier in plant disease management. While there are still challenges in mass deployment of BCAs in sustainable agriculture, this review is guided by the hypothesis that rational, quantitative engineering of microbial SSs can transform conventional BCAs into integrated SBs. It synthesizes current advances within a systems‑level bioengineering framework linking secretion efficiency, regulation, and field performance. It further explores possible integration of SBs in plant-microbiome interactions to further enhance their adaptability and effectiveness. Finally, the review dives into recent breakthroughs, current challenges, and future directions for SBs development and application as next-generation plant disease control agents.
The review highlights the advances in use of bacteriophages as precise, environmentally friendly and environmentally stable biocontrol agents of phytopathogenic bacteria and explains the mechanism of action of phages, pointing to a bright future in the application of phage-based biocontrol in sustainable and resilient...
Zeenat Niaz, Adil Zahoor, Junaid Hassan et al.· Integrative Plant Biotechnol...· 0 citations
The long-term and extensive use of conventional chemical pesticides has led to a series of problems, including pesticide resistance in plant pathogens and insect pests, environmental pollution, and risks to the safety of agricultural products. These challenges have created an urgent need for green, efficient, and susta...
Li Fan, Kai-Feng Wang, Lu Lin et al.· Biotechnology Advances· 0 citations
Bacterial diseases are a major cause of crop losses worldwide, threatening food security and the sustainability of agricultural production. Traditional management practices heavily rely on antibiotics, resistant strains and copper-based compounds but their continued efficiency is hampered by antimicrobial resistance, e...
Shahad Alqahtani· Frontiers in Plant Science· 0 citations
Microbial bioinoculants are increasingly positioned as key technological enablers of sustainable and climate-resilient agriculture, offering biological routes to enhance nutrient use efficiency, suppress pathogens, and improve crop tolerance to abiotic stress while reducing dependence on synthetic agrochemicals. Despit...
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Technological advancements in plant disease management have been rapidly gaining momentum, with the rise in response of phytopathogens to conventional agrochemicals and the increasing need for sustainable crop protection. The concept of artificial intelligence (AI)-driven nano-bioinoculants is a groundbreaking interdis...
Imran Ul Hq Imran Ul Hq, Nabeeha Aslam Khan Nabeeha Aslam Khan· Phytopathogenomics and Disea...· 0 citations
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