Multi-omics platforms are presented as integrated data layers spanning transcriptomics, proteomics, metabolomics, and epigenomics. The abstract states that these approaches deepen understanding of stress-adaptive traits and genotype-by-environment interactions.
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multi-omics platforms
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epigenomics, metabolomics, proteomics, transcriptomics
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The integrated biotechnology approaches discussed have deepened understanding of complex stress-adaptive traits and genotype-by-environment interactions and revealed precise targets for breeding climate-resilient maize cultivars.
These approaches have significantly deepened our understanding of complex stress-adaptive traits and genotype-by-environment interactions, revealing precise targets for breeding climate-resilient cultivars.
Technical breakthroughs in maize resilience biotechnology still face barriers including genotype-dependent transformation efficiency, regulatory landscapes, and implementation costs in resource-limited settings.
Despite these technical breakthroughs, barriers such as genotype-dependent transformation efficiency, regulatory landscapes, and implementation costs in resource-limited settings remain.
Integrating molecular breakthroughs with practical deployment strategies offers a roadmap for developing sustainable, climate-resilient maize varieties.
By integrating molecular breakthroughs with practical deployment strategies, this review offers a comprehensive roadmap for developing sustainable, climate-resilient maize varieties to meet future agricultural demands.
The review presents an integrated framework for enhancing maize resilience under climate change that includes CRISPR/Cas9, next-generation genome editing, genomic selection, environmental genomic selection, and multi-omics platforms.
We present an integrated framework that encompasses CRISPR/Cas9 and next-generation genome editing, Genomic Selection (GS), Environmental Genomic Selection (EGS), and multi-omics platforms-spanning transcriptomics, proteomics, metabolomics, and epigenomics.