Skip to content
Open access

Cell‐based crop phenotyping for future climates

Jul 2026 · New Phytologist · Vol 252, pp. 575 - 587 · 0 citations · 151 references
Medicine

TL;DR

It is argued that current phenotyping methods may be excellent tools for functional validation of previously discovered traits but have limited predictive value in stress biology, and proposed that bridging the mismatch between omics technologies and phenotyping is the only way to account for cell‐specific operation of key genes conferring stress tolerance.

Abstract

Abiotic stress tolerance has been significantly weakened in modern crops during the domestication process. Regaining tolerance has become a critical task in light of current climate trends and their impact on global food security. Abiotic stress tolerance is an extremely complex trait and is conferred at various levels of plant functional organization and developmental stages, with regulatory mechanisms operating across multiple scales, from individual cells to tissues and the entire plant. The emergence of advanced molecular tools such as single‐cell RNA sequencing and spatial omics technologies has revolutionized the field, advancing our understanding of plant responses to hostile environments. However, the implementation of this knowledge in crop breeding programmes is handicapped by the lack of appropriate phenotyping platforms. Here, we argue that current phenotyping methods may be excellent tools for functional validation of previously discovered traits but have limited predictive value in stress biology. We also propose that bridging the mismatch between omics technologies and phenotyping is the only way to account for cell‐specific operation of key genes conferring stress tolerance and implementing them in breeding programmes. Some practical examples using cell‐based phenotyping tools such as fluorescence dyes or electrophysiological methods are given, and current limitations and prospects of cell‐based phenotyping are discussed.

Read PDF

Similar papers

Review Open access Sep 2026

Plant stress biology and climate‐resilient crop improvement: Integrating physiology, genomics, and breeding

Global agricultural systems are increasingly threatened by abiotic and biotic stresses, including drought, heat, salinity, flooding, pathogens, insect pests, and weeds, all of which substantially reduce crop productivity and yield stability. Climate change is expected to intensify the frequency and severity of these...

W. Yali · 0 citations
Review Open access Aug 2026

Applications of Plant Bioinformatics in Crop Improvement and Stress Tolerance

This review comprehensively discusses the applications of plant bioinformatics in crop improvement and stress tolerance, highlighting major computational approaches, databases, tools, and emerging trends.

Anika Tabassum · 0 citations
Aug 2026

Biotechnological Approaches for Developing Stress-Tolerant Crop Varieties

As climate change intensifies abiotic stressors—including drought, salinity, and extreme temperatures—global food security faces an unprecedented challenge. Traditional breeding methods, while foundational, often lack the speed and precision required to keep pace with rapid environmental shifts. Biotechnological approa...

Research Author · 0 citations
Review Open access Aug 2026

Phenomics and High-Throughput Phenotyping of Photosynthetic Traits for Improving Abiotic Stress Resilience in Wheat and Rice

This review critically synthesizes recent advances in photosynthesis-related traits, phenomics, HTP technologies, and their integration with genomics and AI-assisted breeding, highlighting current challenges, knowledge gaps, and future opportunities for developing climate-resilient wheat and rice cultivars and promotin...

A. Yadav, Anuradha Singh, Saurabh Pandey et al. · 0 citations
Review Sep 2026

CAM Plants under Global Climate Change: Genetic, Metabolic, and Ecophysiological Aspects

A comprehensive analysis of the molecular, metabolic, physiological, and ecological characteristics of CAM plants is provided, with the aim of predicting ecophysiological responses and evaluating the prospects for practical application of CAM traits in agriculture under global climate change.

Z. Rakhmankulova, M. Prokofieva, E. Shuyskaya · 0 citations
Review Open access Aug 2026

Heat stress impact on rice reproductive processes: challenges and new approaches

How recent advances in breeding strategies, functional genomics and genome-editing technologies, particularly CRISPR-based approaches, are providing new opportunities to enhance reproductive resilience to heat stress is discussed.

Miguel Moreira, Ana Rita Queirós, Ana Ventura et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.