Zhihua Mu, Shuya Yang, Ke Deng, Tiancang Na, Heng Guo, Yun Zhou, Long Zhao, Jian Wang

2026Tropical Plants

DOI: 10.48130/tp-0026-0008

Abstract

Root and tuber crops (RTCs), such as potato, cassava, and sweet potato, are globally critical staple foods and exhibit substantial potential for carbon sequestration. Their unique source-sink-flow synergy, high photosynthetic efficiency, and underground carbon storage capacity make them pivotal for climate change mitigation. However, RTCs face inherent bottlenecks: inefficient C3 photosynthesis with photorespiratory losses, source-sink imbalance, and inadequate low-carbon management practices. To address these limitations, this review synthesizes genetic engineering strategies (e.g., optimizing Rubisco function, introducing C4/CAM pathway elements, enhancing sink strength via AGPase and sugar transporters), and improved field management (e.g., balanced fertilization, crop rotation, biochar application, and IoT-based precision agriculture). These integrated approaches synergistically boost carbon fixation, optimize carbon allocation, and strengthen soil carbon sinks. RTCs thus represent a promising avenue to reconcile food security with carbon neutrality goals, providing actionable pathways for developing climate-resilient and sustainable agricultural systems globally.

Citation format

MU, Zhihua, et al. Engineering tuber crops for carbon sequestration: Genetic improvement strategies and technological advances. Tropical Plants, 2026.