Aug 2026· International Journal of Biological Macromolecules· pp.
154241
· 0 citations· 57 references
Medicine
Abstract
The agricultural production system is facing unprecedented pressure of climate change, human population, pressure on renewable and non-renewable resources, and elevation in both biotic and abiotic stress factors. The recent development in nucleic acid based technologies have transformed research in plant sciences through deployment of powerful technologies for understanding complex biological mechanisms controlling climate resilience, nutrition and yield attributes in agriculturally important crops. This editorial documented the key results of 33 articles published in this special issue, covering application of various techniques to improve desirable attributes in agriculturally important crops. Furthermore, the published literature displayed the key findings emerging through the application of CRISPR-Cas based genome editing system, integration of multi-omics, application of machine learning, RNA-based regulations and chloroplast bioengineering with higher precision, efficiency, and reliability. The innovation in plant-microbe interaction, rhizosphere engineering has revealed novel avenues of research for improving the potential of resource use efficiency and sustainability. Altogether, the research published in this special issue may play a transformative role in advancing precision breeding, stress resilience and crop performance under ever-changing climatic conditions. However, there is a requirement for continuous interdisciplinary research, embracing innovation and international collaboration for utilization of full potential of cutting-edge technologies contributing significantly to achieving food security.
Agricultural systems are increasingly challenged by climate change, resource scarcity, environmental degradation, and the need to ensure food security for a growing global population. Addressing these multifaceted challenges requires innovative, science-driven approaches that enhance productivity while promoting ecological sustainability. This editorial examines the evolving role of plant biotechnology as a key driver of modern agricultural advancement, highlighting recent developments in genomics, multi-omics technologies, molecular breeding, genome editing, plant tissue culture, and digital agriculture. It discusses how these technologies contribute to the development of resilient crop varieties with improved tolerance to biotic and abiotic stresses, enhanced nutrient-use efficiency, and superior agronomic performance. The editorial further emphasizes the integration of artificial intelligence, high-throughput phenotyping, bioinformatics, and systems biology into precision crop improvement, enabling more efficient translation of molecular discoveries into field applications. The importance of interdisciplinary collaboration, responsible innovation, biosafety, and science-based regulatory frameworks is also considered in supporting the sustainable deployment of emerging biotechnologies. Looking ahead, the convergence of advanced molecular tools with computational and ecological sciences is expected to accelerate the development of resilient agricultural systems capable of addressing future environmental and food production challenges. Continued investment in research, technological innovation, and international collaboration will be essential to maximize the societal and environmental benefits of next-generation crop improvement strategies.
Md. Mosharraf Hossen· Journal of Agriculture and F...· 0 citations
Vegetable crops play an indispensable role in global food and nutritional security, yet their production is limited by many challenges. Biotechnology has revolutionised the improvement of vegetable crops worldwide through modern technologies such as genetic engineering, marker-assisted selection, CRISPR/Cas genome editing, tissue culture and molecular breeding, resulted in the development of climate-resilient, nutritionally enriched and highyielding cultivars that have helped to reshape the vegetable production system. Landmark achievements in plant biotechnology, namely virus-free planting material, multiple disease resistance, Bt brinjal, Flavr Savr tomato, Purple Tomato™, genome-edited GABA tomato and high anthocyanin/carotene content have revolutionised vegetable production systems globally. In addition, new intervention options such as biofortification, edible vaccines, RNA interference and biotechnology-based hybrid breeding are not only creating possibilities at the interface of agriculture and nutrition but also in public health. This status paper highlights recent advances, successful applications and emerging opportunities of biotechnology to strengthen vegetable production under changing climatic conditions.
Anjali, Akhilesh Sharma, D. Chaudhary et al.· Himachal journal of agricult...· 0 citations
Plant-growth-promoting microorganisms (PGPMs) have emerged as important biological tools for improving plant nutrition, crop productivity, soil health, and resilience to environmental stresses, contributing to more resource-efficient agricultural systems. This review provides a comprehensive overview of recent advances in PGPM research, with particular emphasis on next-generation microbial technologies, including synthetic microbial communities, advanced bioformulations, omics-based approaches, precision agriculture, and their contribution to the circular bioeconomy. This review combines a narrative synthesis with a bibliometric analysis based on a dataset of 801 English-language articles and review papers retrieved from the Web of Science Core Collection on 22 May 2026. Bibliometric mapping identified a rapidly expanding and increasingly interdisciplinary research landscape centered on microbial biostimulants, biofertilizers, circular economy, soil health, microbiome engineering, and climate-smart agriculture. This narrative synthesis highlights that advances in multi-omic technologies, microbiome research, and formulation strategies are improving our understanding of plant–microbe interactions and supporting the development of more targeted microbial products. At the same time, widespread agricultural implementation remains constrained by inconsistent field performance, limited ecological validation, formulation challenges, fragmented regulatory frameworks, and insufficient long-term biosafety assessments. Future research should prioritize long-term field validation across diverse agroecosystems, standardized efficacy and safety evaluation, integration of artificial intelligence with multi-omics datasets, development of ecologically reliable microbial consortia, and regulatory harmonization to facilitate responsible commercialization.
Danka Kiperović, Vera Karličić, Gordana Racić et al.· Agriculture· 0 citations
This special issue was offered to provide a platform to the plant scientists working on development and/or evaluation of plant mutants facilitating climate‐resilient crop breeding. A total of 13 research and review articles were accepted for publication. These research and review papers focused on the development and evaluation of the novel mutants for their adaptation to various climates including both biotic and abiotic stresses using emerging tools of molecular physiology and statistics. These also presented the use of different physical and chemical mutagens and advanced molecular tools to develop and detect mutations, respectively. Likewise, some novel approaches for crop improvement were presented, including targeted mutations, bioinformatics and functional genomics. Additionally, one study on precise gene editing in rice reported that tolerance to bacterial leaf blight can be achieved without yield penalty. Overall, this special issue highlights the role of mutation breeding and advanced crop improvement tools in ensuring global food security.
S. Shokat, Asif Naeem, Pooja Bhatnagar‐Mathur et al.· Plant Breeding· 0 citations
By combining genomic data with precision breeding techniques, researchers are developing crops that are better adapted to a growing population and a changing climate, positioning the integration of molecular breeding and bioinformatics as a central pillar of future global food security.
Muhammad Shahid Iqbal, Z. Sarfraz, Muhammad Mujahid et al.· Frontiers in Plant Science· 0 citations
This assessment explores the groundbreaking possibilities of CRISPR-driven genome editing and biofortification methods for creating climate-resilient, nutrient-rich crops and suggests future pathways for utilizing biotechnological advancements to increase agricultural sustainability and human nutrition.
P. B. Angon, Sujit Mondal, A. Roy et al.· Frontiers in Plant Physiolog...· 0 citations