Yuying Sang, Dong Wang, Yikun Li, Handa Zhang, Mingshou Fan, Ziyi Zhang
Drought stress constrains potato (Solanum tuberosum L.) production, and potassium (K) fertilization may alleviate it, but genotype-dependent responses remain unclear. Six cultivars ('V7', 'DXY', 'JZS-3', 'SY-2', 'JZS-12', 'ZJ-7') were grown under four treatments: low K with normal irrigation (T1) or drought (T2), and K application with normal irrigation (T3) or drought (T4). Dry matter in roots, stems, leaves, and tubers was measured at 50-110 days after planting, starch content at 70-110 days, and final yield recorded. Drought (T2) reduced yield by 28.6-52.3% versus T1; K under drought (T4) recovered yield by 12.8-41.5%. Starch decreased by 18.5-35.2% under drought but was restored to 82.6-94.3% of T1 levels with K. SY-2 showed the highest biomass and yield across treatments, while V7 was most affected. Based on yield responses, cultivars fell into four categories: K-efficient/drought-tolerant (SY-2), K-responsive/drought-tolerant (DXY), K-non-responsive/drought-tolerant (JZS-12), and K-inefficient/drought-sensitive (V7). K application mitigates drought-induced losses, but benefits are genotype-dependent. This classification supports genotype-specific K recommendations in water-limited systems, and SY-2 is a valuable genetic resource for breeding for K-use efficiency and drought tolerance. Physiological assessments of leaf relative water content and stomatal conductance confirmed that drought treatment effectively induced water stress and revealed that genotype-specific stomatal regulation underpinned the differential yield responses to K fertilization under drought.