Genome Editing in Solanaceae: Harnessing CRISPR-Cas Technology for Precision Crop Improvement

Malnutrition and climate-induced stress remain major constraints to global food and nutritional security despite the yield gains of the Green Revolution. Solanaceae crops such as tomato, potato, brinjal, and pepper are key sources of vitamins, minerals, and bioactive compounds. Yet, their genetic improvement has been limited by narrow diversity and complex polygenic traits. The advent of CRISPR/Cas-mediated genome editing provides a transformative platform for precision crop improvement by enabling targeted modification of genes controlling stress tolerance, yield, and nutritional quality. In Solanaceae, CRISPR/Cas applications have successfully enhanced resistance against major pathogens (SlMlo1, SlPelo, SlDCL2), improved abiotic stress tolerance through editing of SlMAPK3, SlCBF1, and SlBZR1, and optimized fruit quality traits via modulation of Psy1, CrtR-b2, and fiAD2/3. Emerging innovations, such as base and prime editing, and RNP-mediated transgene-free delivery, are expanding the precision and scope of editing. However, challenges persist, including genotype-dependent transformation, low HDR efficiency, and incomplete understanding of off-target and epigenetic effects. Integrating CRISPR with omics-guided gene discovery, efficient transformation systems, and regulatory harmonization can accelerate the development of nutritionally enriched, stress-resilient, and sustainable Solanaceae varieties. This review synthesizes recent advances, identifies critical limitations, and outlines future opportunities for deploying CRISPR/Cas technology to achieve next-generation breeding and food system resilience.

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Publication Details

Journal
Plants
Published
2026-09-04
DOI
https://doi.org/10.3390/plants15172715
Primary Topic
CRISPR and Genetic Engineering
Type
article
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article

Genome Editing in Solanaceae: Harnessing CRISPR-Cas Technology for Precision Crop Improvement

Kirti Bardhan, Akshay Kumar Vats, Rahul Kumar, S Vyas et al.
Plants
CRISPR and Genetic Engineering
article

Genome Editing in Solanaceae: Harnessing CRISPR-Cas Technology for Precision Crop Improvement

Kirti Bardhan, Akshay Kumar Vats, Rahul Kumar, S Vyas, Snehel Chakravarty, M. Paul, Vishal Johar, Vandana Thakur, Anand Kumar, R. Ravi Teja, Vinod Kumar, Nimmy M S, Ambika More
article en

Abstract

Malnutrition and climate-induced stress remain major constraints to global food and nutritional security despite the yield gains of the Green Revolution. Solanaceae crops such as tomato, potato, brinjal, and pepper are key sources of vitamins, minerals, and bioactive compounds. Yet, their genetic improvement has been limited by narrow diversity and complex polygenic traits. The advent of CRISPR/Cas-mediated genome editing provides a transformative platform for precision crop improvement by enabling targeted modification of genes controlling stress tolerance, yield, and nutritional quality. In Solanaceae, CRISPR/Cas applications have successfully enhanced resistance against major pathogens (SlMlo1, SlPelo, SlDCL2), improved abiotic stress tolerance through editing of SlMAPK3, SlCBF1, and SlBZR1, and optimized fruit quality traits via modulation of Psy1, CrtR-b2, and fiAD2/3. Emerging innovations, such as base and prime editing, and RNP-mediated transgene-free delivery, are expanding the precision and scope of editing. However, challenges persist, including genotype-dependent transformation, low HDR efficiency, and incomplete understanding of off-target and epigenetic effects. Integrating CRISPR with omics-guided gene discovery, efficient transformation systems, and regulatory harmonization can accelerate the development of nutritionally enriched, stress-resilient, and sustainable Solanaceae varieties. This review synthesizes recent advances, identifies critical limitations, and outlines future opportunities for deploying CRISPR/Cas technology to achieve next-generation breeding and food system resilience.

PlantsVol. 15(17)
Lovely Professional University (IN), Marathwada Agricultural University (IN), DAV University (IN), Navsari Agricultural University (IN), National Academy of Agricultural Research Management (IN), Ramakrishna Mission Vidyamandira (IN), Bihar Agricultural University (IN), Ramakrishna Mission Vivekananda Educational and Research Institute (IN), National Research Centre on Plant Biotechnology (IN), Sant Baba Bhag Singh University (IN), Indian Agricultural Research Institute (IN), GLA University (IN)
Zero hunger
Openalex Percentile: Top 17%
CRISPR and Genetic Engineering
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