The review "Plant Pathology: Crossing the Boundaries: Novel Approaches and Perspectives for Scientists" explores the evolving field of plant pathology, emphasizing the necessity for innovative strategies and interdisciplinary collaboration to address the challenges posed by plant diseases. It highlights the integration of cutting-edge technologies, such as genomics and omics techniques, with ecological perspectives to better understand disease dynamics and develop sustainable management solutions. Traditional methods are insufficient to tackle the complex nature of plant diseases that threaten agriculture and ecosystems. The review points to the transformative potential of advanced technologies. Genomics offers deep insights into the genetic structures of pathogens and their interactions with host plants, crucial for identifying disease-resistant varieties and developing targeted treatments. Omics techniques, including transcriptomics, proteomics, and metabolomics, provide comprehensive views of molecular changes during plant-pathogen interactions, aiding in the identification of biomarkers for early disease detection and understanding mechanisms of plant resistance and susceptibility. Moreover, the review underscores the importance of an ecological approach to plant pathology. Understanding disease dynamics in the context of ecological systems reveals how environmental factors like climate change and biodiversity influence the emergence and spread of diseases. This ecological perspective is essential for developing robust and adaptable disease management strategies. The review advocates for crossing disciplinary boundaries and promoting collaboration among scientists from diverse fields. Such interdisciplinary efforts are crucial for advancing understanding and creating effective control strategies. Collaboration among molecular biologists, ecologists, agronomists, and other specialists can lead to innovative solutions addressing the root causes of plant diseases and reducing their impact on agriculture and natural ecosystems. In summary, the review emphasizes the need for novel approaches that combine cutting-edge technologies with ecological insights. Interdisciplinary collaboration is essential to enhance the understanding of plant diseases and to develop sustainable management practices. This comprehensive approach is vital for ensuring food security and maintaining ecosystem resilience in the face of emerging plant disease threats. The integration of these innovative strategies aims to meet the global demand for sustainable agricultural productivity and the health of natural ecosystems.
Published in | Pathology and Laboratory Medicine (Volume 8, Issue 1) |
DOI | 10.11648/j.plm.20240801.11 |
Page(s) | 1-8 |
Creative Commons |
This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited. |
Copyright |
Copyright © The Author(s), 2024. Published by Science Publishing Group |
Plant Pathology, Cross-disciplinary, Novel Approaches, Interdisciplinary Collaboration, Disease Dynamics, Genomics, Omics Technique
[1] | Adesemoye, A. O., Torbert, H. A., & Kloepper, J. W. (2008). Plant growth-promoting rhizobacteria allow reduced application rates of chemical fertilizers. Microbial Ecology, 55(4), 461–470. |
[2] | Adhikari, S., Adhikari, B., & Ghimire, S. (2019). Plant Disease Management: A Strategic Approach. In K. R. Hakeem, M. Jawaid, & M. Sabir (Eds.), Plant, Soil and Microbes (pp. 125-144). Springer. |
[3] | Adler, P. R., & Levine, J. M. (2007). Contrasting relationships between precipitation and species richness in space and time. Oikos, 116(12), 2215-2224. |
[4] | Agrios, G. N. (2005). Plant Pathology (5th ed.). Academic Press. |
[5] | Aly, A. H., Debbab, A., Proksch, P., & Fungal Diversity, (2011). Fifty Years of Drug Discovery from Fungi. In Fifty Years of Drug Discovery from Fungi (pp. 345–378). |
[6] | Birch, P. R. J., Armstrong, M., & Bos, J. I. B. (2016). Understanding Effector Evolution in Plant Pathogens. In Annual Review of Phytopathology, 54(1), 21–40. |
[7] | Bock, C. H., Poole, G. H., & Parker, P. E. (2018). Plant disease epidemiology: Applications and challenges in agricultural systems. APS Press. |
[8] | Brown, J. K. M., (2020). A systems approach to crop disease management. Nature Plants, 6(2), 202-214. |
[9] | Fernandez, O., Urrutia, M., Bernillon, S., Giauffret, C., Tardieu, F., & Le Gouis, J. (2020). Metabolomic and proteomic strategies to decipher plant adaptation to abiotic stress and their relevance for resilient crops. Frontiers in Plant Science, 10, 1820. |
[10] | Fuentes, A., Yoon, S., Kim, S. C., & Park, D. S. (2017). A robust deep-learning-based detector for real-time tomato plant diseases and pests recognition. Sensors, 17(9), 2022. |
[11] | Garrett, K. A., Esker, P. D., Sparks, A. H., & Sánchez, M. D. C. (2020). Exploring the application of epidemiological models to better understand and manage crop diseases. Annual Review of Phytopathology, 58, 1-21. |
[12] | Gautam, R., & Ghosh, S. K. (2018). Application of Remote Sensing in Agriculture: A Review. Journal of Agricultural Engineering and Biotechnology, 1(2), 101-110. |
[13] | Ghaffarzadeh, M., Kumar, L., & Holford, P. (2018). Machine learning methods for plant disease detection and diagnosis. In Machine Learning for Agriculture (pp. 229-245). Springer, Cham. |
[14] | Glare, T. R., Caradus, J. R., Gelernter, W. D., Jackson, T. A., Keyhani, N. O., Köhl, J.,... & Stewart, A. (2012). Have biopesticides come of age? Trends in Biotechnology, 30(5), 250-258. |
[15] | Hirsch, C. N., Hirsch, C. D., Brohammer, A. B., Bowman, M. J., Soifer, I., Barad, O.,... & Jander, G. (2017). Draft assembly of elite inbred line PH207 provides insights into genomic and transcriptome diversity in maize. Plant Cell, 29(6), 1407-1422. |
[16] | Islam, M. T., & Rahaman, M. M. (2019). Plant Disease Detection and Classification by Deep Learning. arXiv preprint arXiv: 1911.10323. |
[17] | Isman, M. B. (2006). Botanical insecticides, deterrents, and repellents in modern agriculture and an increasingly regulated world. Annual Review of Entomology, 51, 45–66. |
[18] | Jones, J. D. G., & Dangl, J. L. (2021). The plant immune system. Nature, 444(7117), 323-329. |
[19] | Jones, J. D. G., Dangl, J. L. (2014). The plant immune system. Nature, 444, 323–329. |
[20] | Jones, J. D. G., Vance, R. E., & Dangl, J. L. (2021). Intracellular innate immune surveillance devices in plants and animals. Science, 354(6316), aaf6395. |
[21] | Jones, J. D., Dangl, J. L., & Agrios, G. N. (Eds.). (2016). Plant pathology (6th ed.). Academic Press. |
[22] | Jones, J. D., Zaidi, S. S., & Oliver, R. P. (2020). Studying plant–pathogen interactions in the age of effectors. Trends in plant science, 25(11), 1056-1067. |
[23] | Jones, Jonathan D. G., and Jeffery L. Dangl. "The plant immune system." Nature 444, no. 7117 (2006): 323-329. |
[24] | Kamoun, S. (2019). Plant pathology in the 21st century. The Arabidopsis Book, 17, e0130. |
[25] | Kamoun, S. (2020). A catalogue of the effector secretome of plant pathogenic oomycetes. Annual Review of Phytopathology, 58, 21-39. |
[26] | Kamoun, S., Furzer, O., Jones, J. D. G., Judelson, H. S., Ali, G. S., Dalio, R. J. D., et al. (2015). The Top 10 oomycete pathogens in molecular plant pathology. Molecular Plant Pathology, 16(4), 413–434. |
[27] | Kamoun, S., Furzer, O., Jones, J. D., Judelson, H. S., Ali, G. S., Dalio, R. J., Roy, S. G., Schena, L., Zambounis, A., Panabières, F., Cahill, D., Ruocco, M., Figueiredo, A., Chen, X. R., Hulvey, J., Stam, R., Lamour, K., Gijzen, M., Tyler, B. M., Grünwald, N. J., Mukhtar, M. S., … Ristaino, J. B. (2019). The Top 10 oomycete pathogens in molecular plant pathology. Molecular Plant Pathology, 20(4), 381–402. |
[28] | Khan, M. I., Fatma, M., Per, T. S., Anjum, N. A., & Khan, N. A. (2019). Salicylic acid-induced abiotic stress tolerance and underlying mechanisms in plants. Frontiers in Plant Science, 10, 4. |
[29] | Kim, S., Saha, S., Wu, D., Lange, T., Weigel, D., & Swaney, S. (2019). Comparative analysis of protein interaction networks reveals that conserved cellular processes are coordinately regulated by protein interactions. Genes & Development, 33(13-14), 810-825. |
[30] | Langridge, P., Waugh, R., & Han, B. (2020). Plant Genomics: From Biodiversity to Breeding. In Plant Communications, 1(1), 100019. |
[31] | Liakos, K. G., Busato, P., Moshou, D., Pearson, S., & Bochtis, D. (2018). Machine learning in agriculture: A review. Sensors, 18(8), 2674. |
[32] | López-Gómez, M., & Gómez, A. M. (2019). Plant disease management: Current trends and future prospects. Crop Protection, 135, 82-107. |
[33] | Mahlein, A. K., Steiner, U., Hillnhütter, C., Dehne, H. W., & Oerke, E. C. (2012). Hyperspectral imaging for small-scale analysis of symptoms caused by different sugar beet diseases. Plant Methods, 8(1), 3. |
[34] | Mahlein, A.-K. (2016). Plant Disease Detection by Imaging Sensors – Parallels and Specific Demands for Precision Agriculture and Plant Phenotyping. Plant Disease, 100(2), 241–251. |
[35] | Mohanty, S. P., Hughes, D. P., & Salathé, M. (2016). Using deep learning for image-based plant disease detection. Frontiers in plant science, 7, 1419. |
[36] | Mohanty, S. P., Hughes, D. P., & Salathé, M. (2017). Evaluation of deep learning strategies for nucleus segmentation in fluorescence images. Bioinformatics, 33(14), 2135-2142. |
[37] | Oerke, E.-C., Dehne, H.-W., Schönbeck, F., Weber, A. (2006). Crop Production and Crop Protection: Estimated Losses in Major Food and Cash Crops. Elsevier. |
[38] | Pandey, S. S., Singh, S., Babu, C. S., Shanker, K., & Srivastava, N. K. (2022). Application of CRISPR/Cas9 genome editing in the improvement of crop plants under abiotic stress. Journal of Biotechnology, 10, 54-63. |
[39] | Pinter Jr, P. J., Hatfield, J. L., Schepers, J. S., Barnes, E. M., Moran, M. S., Daughtry, C. S. T., & Upchurch, D. R. (2003). Remote sensing for crop management. Photogrammetric Engineering & Remote Sensing, 69(6), 647-664. |
[40] | Poveda, J., Abril-Urías, P., Escobar-Tovar, L., González-Castañeda, J., & Cuevas-Guzmán, R. (2021). Plant extracts: from natural resources to plant protection. Phytopathologia Mediterranea, 60(1), 131–153. |
[41] | Savary, S., Willocquet, L., Pethybridge, S. J., & Esker, P. (2019). A review of principles, limitations, and modelling approaches in plant disease epidemiology. Annual Review of Phytopathology, 57, 535-557. |
[42] | Schumann, G. L., & D’Arcy, C. J. (Eds.). (2018). Essential plant pathology. American Phytopathological Society Press. |
[43] | Singh, A. K., Ganapathysubramanian, B., Sarkar, S., & Singh, A. (2018). Machine learning for high-throughput stress phenotyping in plants. Trends in plant science, 23(2), 110-124. |
[44] | Singh, A., Ganapathysubramanian, B., Sarkar, S., & Singh, A. K. (2016). Deep learning for plant stress phenotyping: trends and future perspectives. Trends in Plant Science, 21(6), 558-568. |
[45] | Singh, P. P., Junghare, M., & Nigam, P. S. (2020). Plant extracts and essential oils: An alternative for disease management of fruits and vegetables. Postharvest Biology and Technology, 164, 111154. |
[46] | Singh, R. P., Hodson, D. P., Huerta-Espino, J., Jin, Y., Bhavani, S., Njau, P., & Herrera-Foessel, S. (2020). The emergence of Ug99 races of the stem rust fungus is a threat to world wheat production. Annual Review of Phytopathology, 58(1), 1–19. |
[47] | Sladojevic, S., Arsenovic, M., Anderla, A., Culibrk, D., & Stefanovic, D. (2016). Deep neural networks based recognition of plant diseases by leaf image classification. Computational intelligence and neuroscience, 2016. |
[48] | Smith, C. D., & Brown, E. F. (2018). Plant Pathology: Principles and Practice. CRC Press. |
[49] | Smith, D. L., et al. (2019). Interdisciplinary approaches to understanding agricultural production systems. Sustainability, 11(6), 1661. |
[50] | Smith, D. L., Lindow, S. E., Ahern, K. R., & Bradford, W. J. (2020). Microbial ecology of plant pathogens and plant disease. In Plant Pathology (pp. 1-23). John Wiley & Sons, Ltd. |
[51] | Smith, D. L., Subramanian, S., & Lamont, J. R. (2021). Omics approaches in plant pathology: unraveling the complexities of host-pathogen interactions. Annual Review of Phytopathology, 59, 323-347. |
[52] | Smith, J. D., Garcia, M., & Patel, P. (2019). Interdisciplinary approaches to sustainable disease management in agriculture: Insights from epidemiology, plant breeding, and agricultural economics. Journal of Agricultural and Applied Economics, 51(4), 602-618. |
[53] | Xiong, Z., Wang, R., Zhou, Y., & Ren, H. (2020). Integrating molecular biology and ecological principles to understand pathogen virulence in plant-pathogen interactions: a case study of the wheat stripe rust pathosystem. Frontiers in Plant Science, 11, 579805. |
[54] | Xu, X., & Baldwin, I. T. (2020). Plant-mediated indirect defense of a preferred herbivore reduces its performance in nature. Ecology Letters, 23(6), 1090-1100. |
APA Style
Mamo, T. Y. (2024). Plant Pathology - Crossing the Boundaries with Novel Approaches and Perspectives for Scientists. Pathology and Laboratory Medicine, 8(1), 1-8. https://doi.org/10.11648/j.plm.20240801.11
ACS Style
Mamo, T. Y. Plant Pathology - Crossing the Boundaries with Novel Approaches and Perspectives for Scientists. Pathol. Lab. Med. 2024, 8(1), 1-8. doi: 10.11648/j.plm.20240801.11
AMA Style
Mamo TY. Plant Pathology - Crossing the Boundaries with Novel Approaches and Perspectives for Scientists. Pathol Lab Med. 2024;8(1):1-8. doi: 10.11648/j.plm.20240801.11
@article{10.11648/j.plm.20240801.11, author = {Tsigehana Yewste Mamo}, title = {Plant Pathology - Crossing the Boundaries with Novel Approaches and Perspectives for Scientists }, journal = {Pathology and Laboratory Medicine}, volume = {8}, number = {1}, pages = {1-8}, doi = {10.11648/j.plm.20240801.11}, url = {https://doi.org/10.11648/j.plm.20240801.11}, eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.plm.20240801.11}, abstract = {The review "Plant Pathology: Crossing the Boundaries: Novel Approaches and Perspectives for Scientists" explores the evolving field of plant pathology, emphasizing the necessity for innovative strategies and interdisciplinary collaboration to address the challenges posed by plant diseases. It highlights the integration of cutting-edge technologies, such as genomics and omics techniques, with ecological perspectives to better understand disease dynamics and develop sustainable management solutions. Traditional methods are insufficient to tackle the complex nature of plant diseases that threaten agriculture and ecosystems. The review points to the transformative potential of advanced technologies. Genomics offers deep insights into the genetic structures of pathogens and their interactions with host plants, crucial for identifying disease-resistant varieties and developing targeted treatments. Omics techniques, including transcriptomics, proteomics, and metabolomics, provide comprehensive views of molecular changes during plant-pathogen interactions, aiding in the identification of biomarkers for early disease detection and understanding mechanisms of plant resistance and susceptibility. Moreover, the review underscores the importance of an ecological approach to plant pathology. Understanding disease dynamics in the context of ecological systems reveals how environmental factors like climate change and biodiversity influence the emergence and spread of diseases. This ecological perspective is essential for developing robust and adaptable disease management strategies. The review advocates for crossing disciplinary boundaries and promoting collaboration among scientists from diverse fields. Such interdisciplinary efforts are crucial for advancing understanding and creating effective control strategies. Collaboration among molecular biologists, ecologists, agronomists, and other specialists can lead to innovative solutions addressing the root causes of plant diseases and reducing their impact on agriculture and natural ecosystems. In summary, the review emphasizes the need for novel approaches that combine cutting-edge technologies with ecological insights. Interdisciplinary collaboration is essential to enhance the understanding of plant diseases and to develop sustainable management practices. This comprehensive approach is vital for ensuring food security and maintaining ecosystem resilience in the face of emerging plant disease threats. The integration of these innovative strategies aims to meet the global demand for sustainable agricultural productivity and the health of natural ecosystems. }, year = {2024} }
TY - JOUR T1 - Plant Pathology - Crossing the Boundaries with Novel Approaches and Perspectives for Scientists AU - Tsigehana Yewste Mamo Y1 - 2024/08/20 PY - 2024 N1 - https://doi.org/10.11648/j.plm.20240801.11 DO - 10.11648/j.plm.20240801.11 T2 - Pathology and Laboratory Medicine JF - Pathology and Laboratory Medicine JO - Pathology and Laboratory Medicine SP - 1 EP - 8 PB - Science Publishing Group SN - 2640-4478 UR - https://doi.org/10.11648/j.plm.20240801.11 AB - The review "Plant Pathology: Crossing the Boundaries: Novel Approaches and Perspectives for Scientists" explores the evolving field of plant pathology, emphasizing the necessity for innovative strategies and interdisciplinary collaboration to address the challenges posed by plant diseases. It highlights the integration of cutting-edge technologies, such as genomics and omics techniques, with ecological perspectives to better understand disease dynamics and develop sustainable management solutions. Traditional methods are insufficient to tackle the complex nature of plant diseases that threaten agriculture and ecosystems. The review points to the transformative potential of advanced technologies. Genomics offers deep insights into the genetic structures of pathogens and their interactions with host plants, crucial for identifying disease-resistant varieties and developing targeted treatments. Omics techniques, including transcriptomics, proteomics, and metabolomics, provide comprehensive views of molecular changes during plant-pathogen interactions, aiding in the identification of biomarkers for early disease detection and understanding mechanisms of plant resistance and susceptibility. Moreover, the review underscores the importance of an ecological approach to plant pathology. Understanding disease dynamics in the context of ecological systems reveals how environmental factors like climate change and biodiversity influence the emergence and spread of diseases. This ecological perspective is essential for developing robust and adaptable disease management strategies. The review advocates for crossing disciplinary boundaries and promoting collaboration among scientists from diverse fields. Such interdisciplinary efforts are crucial for advancing understanding and creating effective control strategies. Collaboration among molecular biologists, ecologists, agronomists, and other specialists can lead to innovative solutions addressing the root causes of plant diseases and reducing their impact on agriculture and natural ecosystems. In summary, the review emphasizes the need for novel approaches that combine cutting-edge technologies with ecological insights. Interdisciplinary collaboration is essential to enhance the understanding of plant diseases and to develop sustainable management practices. This comprehensive approach is vital for ensuring food security and maintaining ecosystem resilience in the face of emerging plant disease threats. The integration of these innovative strategies aims to meet the global demand for sustainable agricultural productivity and the health of natural ecosystems. VL - 8 IS - 1 ER -